Field of the Invention
[0001] The present invention belongs to the field of machinery, is especially suitable for
the field of digging machinery or engineering machinery, and particularly relates
to an efficient impact blanking digging method without material clamping and an efficient
impact blanking digging machine without material clamping.
Background of the Invention
[0002] The existing impact type digging impact mechanisms as punching and cutting digging
equipment, impact heading equipment, bucket excavating equipment and the like is generally
a double-layer impact mechanism or a multilayer impact mechanism. For the structural
form of the double-layer or multilayer impact mechanism on the digging equipment,
the structural forms of an inner-layer impact mechanism and an outer-layer impact
mechanism are generally uniform structures or similar structures. Therefore, in a
material impacting process of the impact mechanisms, a material clamped between the
impact mechanisms cannot be discharged. Namely, after being dug by the inner-layer
impact mechanism close to a material layer, the material is clamped between the inner
and outer-layer impact mechanisms and cannot be discharged, a material block failing
to be discharged is extruded into broken materials, thus reducing the lump material
rate of the produced material and increasing the operation resistance of the impact
mechanisms, and the material block failing to be discharged causes break-off of the
impact mechanisms to damage the application performance of the equipment and even
prevent continuous production if the case is serious.
[0003] In order to solve the above-mentioned problems, the present invention provides an
efficient impact blanking digging method without material clamping and an efficient
impact blanking digging machine without material clamping.
Summary of the Invention
[0004] The present invention provides an efficient impact blanking digging method without
material clamping, including the following steps: an impact blanking mechanism and
the like are arranged on the machine body of a digging machine, wherein the impact
blanking mechanism includes an outer-layer material impact mechanism and/or an inner-layer
material impact mechanism and the like, the outer-layer material impact mechanism
and the inner-layer material impact mechanism are arranged side by side, the outer-layer
material impact mechanism includes outer-layer material impact teeth and the like,
the arrangement of the outer-layer material impact teeth is conductive to blanking
the outer-layer material of a material layer to be dug, the outer-layer material impact
teeth are conductive to enabling the material blanked by the inner-layer material
impact mechanism to flow out from the gaps of the outer-layer material impact teeth
and/or a discharge hole is reserved on the outer-layer material impact mechanism to
enable the material blanked by the inner-layer material impact mechanism to flow out
from the discharge hole of the outer-layer material impact mechanism, the inner-layer
material impact mechanism includes inner-layer material impact teeth and the like,
and the inner-layer material impact mechanism and/or the outer-layer material impact
mechanism cooperate to realize impact blanking and discharging.
[0005] The present invention further provides an efficient impact blanking digging machine
without material clamping used for implementing the efficient impact blanking digging
method without material clamping, including a machine body, a walking mechanism and
the like, wherein the efficient impact blanking digging machine without material clamping
further includes an impact blanking mechanism and the like, the walking mechanism
is arranged at the front part, the rear part or the lower part and the like of the
machine body, the impact blanking mechanism is connected with the machine body, the
impact blanking mechanism includes an outer-layer material impact mechanism and/or
an inner-layer material impact mechanism and the like, the outer-layer material impact
mechanism and the inner-layer material impact mechanism are arranged adjacently, the
outer-layer material impact mechanism includes outer-layer material impact teeth and
the like, the inner-layer material impact mechanism includes inner-layer material
impact teeth and the like, the arrangement of the outer-layer material impact teeth
is conductive to blanking the outer-layer material of a material layer to be dug and
is conductive to enabling the material blanked by the inner-layer material impact
teeth to flow out from the gaps of the outer-layer material impact teeth and/or the
outer-layer material impact mechanism is provided with a discharge hole to enable
the material blanked by the inner-layer material impact mechanism to flow out from
the discharge hole of the outer-layer material impact mechanism, and the inner-layer
material impact mechanism and/or the outer-layer material impact mechanism cooperate
to realize impact blanking and discharging.
[0006] The arrangement and/or shape of the outer-layer material impact teeth is conductive
to blanking the outer-layer material of the material layer to be dug and is conductive
to enabling the material blanked by the inner-layer material impact teeth to flow
out from the gaps of the outer-layer material impact teeth.
[0007] The outer-layer material impact mechanism includes an outer-layer material impact
tooth frame and the like, wherein the outer-layer material impact teeth and the outer-layer
material impact tooth frame are movably connected or are integrated.
[0008] The inner-layer material impact mechanism includes an inner-layer material impact
tooth frame and the like, wherein the inner-layer material impact teeth and the inner-layer
material impact tooth frame are movably connected or are integrated.
[0009] The outer-layer material impact teeth include one or more rows of impact teeth and
the like. The inner-layer material impact teeth include one or more rows of impact
teeth and the like. The impact teeth include a front row of impact teeth and/or a
rear row of impact teeth and the like.
[0010] The front row of impact teeth and/or rear row of impact teeth include impact teeth
with non material clamping shapes, wherein the impact teeth with non material clamping
shapes are conductive to discharging the material blanked by the front row impact
teeth and/or rear row impact teeth and the like and are conductive to continuous digging,
discharging and the like.
[0011] The arrangement and/or shape of the front row of impact teeth of the same outer-layer
material impact tooth is conductive to enabling the material shoveled off by the rear
row of impact teeth to flow out from the gaps of the front row of impact teeth.
[0012] The front row of impact teeth and the rear row of impact teeth form a length difference,
the length difference is equal to an impact stroke or the length difference is larger
than the impact stroke or the length difference is smaller than the impact stroke,
and the like, the front row of impact teeth and/or the rear row of impact teeth are
used for impacting a material wall into a step shape to break the structural strength
of the material wall, and during secondary impact, the front row of impact teeth and/or
the rear row of impact teeth are used for blanking through a free surface formed by
the step-shaped material wall, in order to reduce the impact resistance, reduce the
granularity of the material block and facilitate the outflow of the material.
[0013] The outer-layer material impact teeth and the outer-layer material impact tooth frame
and/or the inner-layer material impact teeth and the inner-layer material impact tooth
frame are connected by means of a bolt, a catching groove, a pin, a pin shaft, an
eccentric connecting element, an inserting hole, a jaw and/or a taper sleeve and the
like.
[0014] The arrangement and/or shape of the inner-layer material impact teeth is conductive
to blanking and cleaning a material surface, so as to form the material surface into
a necessary shape.
[0015] The outer-layer material impact teeth include a main outer-layer material impact
tooth and/or an outer-layer material top face cleaning tooth and/or an outer-layer
material bottom surface cleaning tooth and the like.
[0016] The outer-layer material impact teeth include a main outer-layer material impact
tooth and/or an outer-layer material top face cleaning tooth and/or an outer-layer
material bottom surface cleaning tooth and the like, and the main outer-layer material
impact tooth and/or the outer-layer material top face cleaning tooth and/or the outer-layer
material bottom surface cleaning tooth and the like are used for cleaning the top
face and/or the bottom surface of the material wall while blanking.
[0017] The inner-layer material impact teeth include a main inner-layer material impact
tooth and/or an inner-layer material top face cleaning tooth and/or an inner-layer
material bottom surface cleaning tooth and the like.
[0018] The inner-layer material impact teeth include a main inner-layer material impact
tooth and/or an inner-layer material top face cleaning tooth and/or an inner-layer
material bottom surface cleaning tooth and the like, and the main inner-layer material
impact tooth and/or the inner-layer material top face cleaning tooth and/or the inner-layer
material bottom surface cleaning tooth and the like are used for cleaning the material
wall while blanking to facilitate retaining and protecting, in order to ensure the
successful pass of the machine body to perform continuous digging.
[0019] The inner-layer material impact teeth and/or the inner-layer material impact tooth
frame and the like incline towards the material wall for certain angles, to help the
inner-layer material impact teeth to obliquely cut the material wall.
[0020] The outer-layer material impact mechanism includes an outer-layer impact stroke component
and the like, and the outer-layer material impact teeth and/or the outer-layer material
impact tooth frame and the like are symmetrically arranged at two ends of the outer-layer
impact stroke component.
[0021] The outer-layer material impact mechanism includes an outer-layer impact stroke component
and the like, and the outer-layer material impact teeth and/or the outer-layer material
impact tooth frame and the like are asymmetrically arranged at two ends of the outer-layer
impact stroke component.
[0022] The outer-layer material impact mechanism includes an outer-layer impact stroke component
and the like, and the outer-layer material impact teeth and/or the outer-layer material
impact tooth frame and the like are arranged at one end of the outer-layer impact
stroke component. The outer-layer impact stroke component and the outer-layer material
impact tooth frame are movably connected or are integrated.
[0023] The inner-layer material impact mechanism includes an inner-layer impact stroke component
and the like, and the inner-layer material impact teeth and/or the inner-layer material
impact tooth frame and the like are symmetrically arranged at two ends of the inner-layer
impact stroke component.
[0024] The inner-layer material impact mechanism includes an inner-layer impact stroke component
and the like, and the inner-layer material impact teeth and/or the inner-layer material
impact tooth frame and the like are asymmetrically arranged at two ends of the inner-layer
impact stroke component.
[0025] The inner-layer material impact mechanism includes an inner-layer impact stroke component
and the like, and the inner-layer material impact teeth and/or the inner-layer material
impact tooth frame and the like are arranged at one end of the inner-layer impact
stroke component. The inner-layer impact stroke component and the inner-layer material
impact tooth frame are movably connected or are integrated.
[0026] The outer-layer material impact mechanism includes an outer-layer impact stroke component
and the like, the outer-layer material impact teeth and/or the outer-layer material
impact tooth frame are arranged at one end of the outer-layer impact stroke component,
and a counterweight member is arranged at the other end of the outer-layer impact
stroke component.
[0027] The inner-layer material impact mechanism includes an inner-layer impact stroke component
and the like, the inner-layer material impact teeth and/or the inner-layer material
impact tooth frame are arranged at one end of the inner-layer impact stroke component,
and a counterweight member is arranged at the other end of the inner-layer impact
stroke component.
[0028] The outer-layer material impact tooth frame includes a rear supporting seat, an outer-layer
material impact tooth supporting frame and the like, the rear supporting seat and
the outer-layer material impact tooth supporting frame and the like form a discharge
hole, and there is one or multiple discharge holes.
[0029] The discharge hole includes an arched discharge hole and/or a cambered discharge
hole and/or a square discharge hole and/or a trapezoidal discharge hole and/or a triangular
discharge hole and/or a polygonal discharge hole and/or a deformed discharge hole
and the like.
[0030] The height of the rear supporting seat is smaller than or equal to or larger than
the height of the outer-layer material impact tooth supporting frame.
[0031] The rear supporting seat and the outer-layer material impact tooth supporting frame
are movably connected or are integrated.
[0032] The impact blanking mechanism includes a power box body and the like, the rear supporting
seat is provided with a rear supporting seat material baffle and the like, and the
rear supporting seat material baffle is arranged along the surface of the power box
body and relatively reciprocates along the surface of the power box body.
[0033] The impact blanking mechanism includes a power box body and the like, the inner-layer
material impact mechanism includes an inner-layer tooth seat and the like, the inner-layer
tooth seat is provided with an inner-layer tooth seat material baffle and the like,
and the inner-layer tooth seat material baffle is arranged along the surface of the
power box body and relatively reciprocates along the surface of the power box body.
[0034] The impact blanking mechanism includes an impact actuator and the like, a breakage-proof
impact actuator structure and the like are arranged between the impact actuator and
the outer-layer material impact tooth frame and/or the inner-layer material impact
tooth frame, the breakage-proof impact actuator structure includes a rotary breakage-proof
impact actuator structure or a separated breakage-proof impact actuator structure
or a buffering breakage-proof impact actuator structure and the like, the impact actuator
is used for driving the outer-layer material impact teeth and/or the inner-layer material
impact teeth to impact, an impact counteraction force is applied to the breakage-proof
impact actuator structure, and the rotary breakage-proof impact actuator structure
rotates or the separated breakage-proof impact actuator structure separately isolates
or the buffering breakage-proof impact actuator structure buffers and the like to
prevent the impact counteraction force from breaking off and damaging the impact actuator.
[0035] The outer-layer impact stroke component includes outer-layer reciprocating guide
rods and the like, the outer-layer reciprocating guide rods are symmetrically or asymmetrically
arranged on the outer-layer material impact tooth frame, the outer-layer reciprocating
guide rods are symmetrically arranged to enlarge the correction force of the outer-layer
material impact tooth frame to maintain the reciprocating impact balance of the outer-layer
material impact tooth frame, in order to prevent the break-off of the outer-layer
material impact tooth frame and the impact actuator.
[0036] The inner-layer impact stroke component includes inner-layer reciprocating guide
rods and the like, the inner-layer reciprocating guide rods are symmetrically or asymmetrically
arranged on the inner-layer material impact tooth frame, the outer-layer reciprocating
guide rods are symmetrically arranged to enlarge the correction force of the inner-layer
material impact tooth frame to maintain the reciprocating impact balance of the inner-layer
material impact tooth frame, in order to prevent the break-off of the inner-layer
material impact tooth frame and the impact actuator.
[0037] The machine body includes a hydraulic system and/or an electric system and/or a water
mist spray system and the like.
[0038] The machine body includes a rotary disk and the like, the rotary disk is arranged
at the upper part and/or the lower part and the like of the machine body, when the
rotary disk is arranged at the upper part of the machine body, the impact blanking
mechanism is arranged on the rotary disk, the rotary disk drives the impact blanking
mechanism to rotate to perform impact blanking in multiple directions, when the rotary
disk is arranged at the lower part of the machine body, the impact blanking mechanism
is arranged on the machine body, the rotary disk drives the machine body to rotate,
and the machine body drives the impact blanking mechanism to rotate to perform impact
blanking in multiple directions.
[0039] Compared with the existing digging equipment, the utility model has the following
beneficial effects:
- 1) the arrangement of the outer-layer material impact teeth is conductive to blanking
the outer-layer material of the material layer to be dug, the outer-layer material
impact teeth are conductive to enabling the material blanked by the inner-layer material
impact mechanism to flow out from the gaps of the outer-layer material impact teeth
and/or the discharge hole is reserved on the outer-layer material impact mechanism
to enable the material blanked by the inner-layer material impact mechanism to flow
out from the discharge hole of the outer-layer material impact mechanism, the inner-layer
material impact mechanism and the outer-layer material impact mechanism cooperate
to realize impact blanking and discharging, so that the problem that the material
clamped between the impact blanking mechanisms cannot be discharged to cause continuous
digging failure of the digging machine is solved, successful digging, blanking, discharging
and material loading of the impact blanking digging machine are achieved, and the
digging efficiency is improved;
- 2) since the discharge hole is arranged between the rear supporting seat and the outer-layer
material impact tooth supporting frame, the outer-layer material impact teeth are
arranged on the outer-layer material impact tooth supporting frame, to reduce the
lengths of the outer-layer material impact teeth and reduce the break-off of the impact
tooth seat and the impact teeth due to the excessive lengths of the outer-layer material
impact teeth;
- 3) the structural forms of the multiple impact teeth arranged side by side are different,
so that the break-off of the impact mechanisms caused by material clamping of the
impact teeth is avoided;
- 4) damping of an impact blanking mechanism driving device caused by material clamping
is reduced to facilitate safe operation of the equipment;
- 5) when the impact blanking mechanism impacts the material wall, the outer-layer material
impact mechanism and the inner-layer material impact mechanism are applied with a
balanced stress, in order to reduce the impact break-off damage of a power shaft;
- 6) multiple rows of impact teeth are arranged on the outer-layer material impact tooth
frame and/or the inner-layer material impact tooth frame, in order to ensure the granularity
of the dug material to be adapted to transportation or use;
- 7) multiple layers of impact mechanisms are adopted to improve the working efficiency,
increase the digging breadth and improve the digging yield;
- 8) the multiple layers of impact mechanisms are used for blanking the material to
be dug in layers to reasonably utilize the power and ensure the strength of the equipment;
- 9) the outer-layer material impact mechanism is only used for blanking a material
layer needing blanking without cleaning the side face of the material layer, thereby
reducing the energy consumption caused by surface cleaning;
- 10) the arrangement and/or shape of the inner-layer material impact teeth is conductive
to blanking and cleaning the material surface, so as to form the material surface
into the necessary shape to facilitate retaining and protecting and to ensure the
successful pass of the machine body to perform continuous digging;
- 11) the inner-layer material impact teeth and/or the inner-layer material impact tooth
frame and the like incline towards the material wall for certain angles, to help the
inner-layer material impact teeth to obliquely cut the material wall;
- 12) the reciprocating guide rods are symmetrically arranged on the outer-layer material
impact tooth frame and/or the inner-layer material impact tooth frame, the symmetrically
arranged reciprocating guide rods enlarge the correction force of the outer-layer
material impact tooth frame and/or the inner-layer material impact tooth frame to
maintain the reciprocating impact balance of the outer-layer material impact tooth
frame and/or the inner-layer material impact tooth frame, in order to prevent the
break-off of the outer-layer material impact tooth frame and/or the inner-layer material
impact tooth frame and the impact actuator;
- 13) the outer-layer material impact tooth frame and/or the inner-layer material impact
tooth frame are respectively arranged at the two ends of the reciprocating guide rods
to balance the weights at the two ends of the reciprocating guide rods, reduce the
break-off of the reciprocating guide rods resulting from unbalanced weights and achieve
reverse digging without reversing the machine body;
- 14) the material baffle is arranged at the rear end of the rear supporting seat to
prevent the material from entering a shovel tooth supporting frame and the power box
body, protect the reciprocating impact component and improve the performance and the
service life of the equipment;
- 15) the breakage-proof impact actuator structure is arranged between the impact actuator
and the outer-layer material impact tooth frame and/or the inner-layer material impact
tooth frame, the impact actuator is used for driving the outer-layer material impact
teeth and/or the inner-layer material impact teeth to impact, the impact counteraction
force is applied on the breakage-proof impact actuator structure, and the rotary breakage-proof
impact actuator structure rotates or the separated breakage-proof impact actuator
structure separately isolates or the buffering breakage-proof impact actuator structure
buffers and the like to prevent the impact counteraction force from breaking off and
damaging the impact actuator, and an impact counteraction break-off collapsing force
is decomposed and separated before being transferred onto the impact actuator and
the machine body, so that the service life of the entire machine is greatly prolonged;
- 16) when the rotary disk is arranged at the upper part of the machine body, the impact
blanking mechanism is arranged on the rotary disk, the rotary disk drives the impact
blanking mechanism to rotate to perform impact blanking in multiple directions, when
the rotary disk is arranged at the lower part of the machine body, the impact blanking
mechanism is arranged on the machine body, the rotary disk drives the machine body
to rotate, and the machine body drives the impact blanking mechanism to rotate to
perform impact blanking in multiple directions, so that the digging flexibility of
the impact blanking mechanism is greatly improved, the digging width and range are
increased and the digging efficiency is enhanced;
- 17) the distances from the front row of impact teeth and the rear row of impact teeth
to the power box body are arranged to be different to impact a coal wall into a step
shape, thereby greatly decreasing the web of one impact of each impact tooth, effectively
decomposing the pressure stress of the material wall, reducing the impact resistance,
improving working efficiency and saving power consumption.
Brief Description of the Drawings
[0040]
Fig. 1 is a front view of an efficient impact blanking digging machine without material
clamping in embodiment 1;
Fig. 2 is a top view of an efficient impact blanking digging machine without material
clamping in embodiment 1;
Fig. 3 is a schematic diagram of a structure of an outer-layer material impact mechanism
of an efficient impact blanking digging machine without material clamping in embodiment
1;
Fig. 4 is a schematic diagram of a structure of an inner-layer material impact mechanism
of an efficient impact blanking digging machine without material clamping in embodiment
1;
Fig. 5 is a schematic diagram of installation of impact teeth of an efficient impact
blanking digging machine without material clamping in embodiment 1;
Fig. 6 is a front view of an efficient impact blanking digging machine without material
clamping in embodiment 2;
Fig. 7 is a top view of an efficient impact blanking digging machine without material
clamping in embodiment 2;
Fig. 8 is a schematic diagram of an overlooking structure of an impact blanking digging
mechanism in embodiment 2;
Fig. 9 is a schematic diagram of installation of impact teeth of an efficient impact
blanking digging machine without material clamping in embodiment 2;
Fig. 10 is a front view of an efficient impact blanking digging machine without material
clamping in embodiment 3;
Fig. 11 is a top view of an efficient impact blanking digging machine without material
clamping in embodiment 3;
Fig. 12 is a schematic diagram of an overlooking structure of an impact blanking digging
mechanism in embodiment 3;
Fig. 13 is a schematic diagram of a structure of an outer-layer material impact mechanism
of an efficient impact blanking digging machine without material clamping in embodiment
3;
Fig. 14 is a schematic diagram of a structure of an inner-layer material impact mechanism
of an efficient impact blanking digging machine without material clamping in embodiment
3;
Fig. 15 is a schematic diagram of installation of impact teeth of an efficient impact
blanking digging machine without material clamping in embodiment 3;
Fig. 16 is a schematic diagram of a front view structure of an impact blanking digging
mechanism in embodiment 4;
Fig. 17 is a schematic diagram of an overlooking structure of an impact blanking digging
mechanism in embodiment 4;
Fig. 18 is a schematic diagram of a front view structure of an impact blanking digging
mechanism in embodiment 5;
Fig. 19 is a schematic diagram of a structure of an outer-layer material impact mechanism
of an efficient impact blanking digging machine without material clamping in embodiment
6;
Fig. 20 is a schematic diagram of a structure of an inner-layer material impact mechanism
of an efficient impact blanking digging machine without material clamping in embodiment
6;
Fig. 21 is a front view of an efficient impact blanking digging machine without material
clamping in embodiment 7;
Fig. 22 is a schematic diagram of an overlooking structure of an impact blanking digging
mechanism in embodiment 7;
Fig. 23 is a schematic diagram of a structure of an outer-layer material impact mechanism
of an efficient impact blanking digging machine without material clamping in embodiment
7;
Fig. 24 is a schematic diagram of a structure of an inner-layer material impact mechanism
of an efficient impact blanking digging machine without material clamping in embodiment
7;
Fig. 25 is a schematic diagram of installation of impact teeth of an efficient impact
blanking digging machine without material clamping in embodiment 7;
Fig. 26 is a front view of an efficient impact blanking digging machine without material
clamping in embodiment 8.
[0041] In the figures, 1 represents a machine body, 2 represents a walking mechanism, 3
represents an impact blanking mechanism, 4 represents an outer-layer material impact
mechanism, 4.1 represents an outer-layer material impact tooth, 4.2 represents an
outer-layer material impact tooth frame, 4.2.1 represents a rear supporting seat,
4.2.2 represents an outer-layer material impact tooth supporting frame, 4.3 represents
an outer-layer impact stroke component, 4.3.1 represents an outer-layer reciprocating
guide rod, 5 represents an inner-layer material impact mechanism, 5.1 represents an
inner-layer material impact tooth, 5.2 represents an inner-layer material impact tooth
frame, 5.3 represents an inner-layer impact stroke component, 5.3.1 represents an
inner-layer reciprocating guide rod, 5.4 represents an inner-layer tooth seat, 6 represents
a pin, 7 represents an impact actuator, 8 represents a discharge hole, 9 represents
a catching groove, 10 represents an impact tooth, 11 represents a front row of impact
teeth, 12 represents a rear row of impact teeth, 13 represents a main outer-layer
material impact tooth, 14 represents an outer-layer material top face cleaning tooth,
15 represents an outer-layer material bottom face cleaning tooth, 16 represents a
main inner-layer material impact tooth, 17 represents an inner-layer material top
face cleaning tooth, 18 represents an inner-layer material bottom face cleaning tooth,
19 represents a rear supporting seat material baffle, 20 represents a power box body,
21 represents a breakage-proof impact actuator structure, 21.1 represents a rotary
breakage-proof impact actuator structure, 21.2 represents a separated breakage-proof
impact actuator structure, 21.3 represents a buffering breakage-proof impact actuator
structure, 22 represents a counterweight member, 23 represents a pin shaft, 24 represents
a rotary disk and 25 represents an inner-layer material side face cleaning tooth.
Detailed Description of the Embodiments
Embodiment 1
[0042] As shown in Fig. 1 to Fig. 5, an efficient impact blanking digging machine without
material clamping used for implementing an efficient impact blanking digging method
without material clamping, includes a machine body 1, a walking mechanism 2, an impact
blanking mechanism 3 and the like, wherein the walking mechanism 2 is arranged at
the front part and the rear part and the like of the machine body 1, the impact blanking
mechanism 3 is connected with the machine body 1, the impact blanking mechanism 3
includes an outer-layer material impact mechanism 4 and an inner-layer material impact
mechanism 5 and the like, the outer-layer material impact mechanism 4 and the inner-layer
material impact mechanism 5 are arranged adjacently, the outer-layer material impact
mechanism 4 includes outer-layer material impact teeth 4.1 and the like, the inner-layer
material impact mechanism 5 includes inner-layer material impact teeth 5.1 and the
like, the arrangement of the outer-layer material impact teeth 4.1 is conductive to
blanking the outer-layer material of a material layer to be dug and is conductive
to enabling the material blanked by the inner-layer material impact teeth 5.1 to flow
out from the gaps of the outer-layer material impact teeth 4.1, and the inner-layer
material impact mechanism 5 and the outer-layer material impact mechanism 4 cooperate
to realize impact blanking and discharging.
[0043] The arrangement and/or shape of the outer-layer material impact teeth 4.1 is conductive
to blanking the outer-layer material of the material layer to be dug and is conductive
to enabling the material blanked by the inner-layer material impact teeth 5.1 to flow
out from the gaps of the outer-layer material impact teeth 4.1.
[0044] The outer-layer material impact mechanism 4 includes an outer-layer material impact
tooth frame 4.2 and the like, wherein the outer-layer material impact teeth 4.1 and
the outer-layer material impact tooth frame 4.2 are movably connected and can also
be integrated.
[0045] The inner-layer material impact mechanism 5 includes an inner-layer material impact
tooth frame 5.2 and the like, wherein the inner-layer material impact teeth 5.1 and
the inner-layer material impact tooth frame 5.2 are movably connected and can also
be integrated.
[0046] The outer-layer material impact teeth 4.1 and the outer-layer material impact tooth
frame 4.2 and/or the inner-layer material impact teeth 5.1 and the inner-layer material
impact tooth frame 5.2 are connected by means of a pin 6 and can also be connected
by means of a bolt, a catching groove, a pin shaft, an eccentric connecting element,
an inserting hole, a jaw and/or a taper sleeve and the like.
[0047] The outer-layer material impact mechanism 4 includes an outer-layer impact stroke
component 4.3 and the like, and the outer-layer material impact teeth 4.1 and the
outer-layer material impact tooth frame 4.2 are symmetrically arranged at the two
ends of the outer-layer impact stroke component 4.3.
[0048] The outer-layer impact stroke component 4.3 and the outer-layer material impact tooth
frame 4.2 are movably connected and can also be integrated.
[0049] The inner-layer material impact mechanism 5 includes an inner-layer impact stroke
component 5.3 and the like, and the inner-layer material impact teeth 5.1 and/or the
inner-layer material impact tooth frame 5.2 are symmetrically arranged at the two
ends of the inner-layer impact stroke component 5.3.
[0050] The inner-layer impact stroke component 5.3 and the inner-layer material impact tooth
frame 5.2 are movably connected and can also be integrated.
[0051] The outer-layer impact stroke component 4.3 includes outer-layer reciprocating guide
rods 4.3.1 and the like, the outer-layer reciprocating guide rods 4.3.1 are symmetrically
arranged on the outer-layer material impact tooth frame 4.2, the outer-layer reciprocating
guide rods 4.3.1 are symmetrically arranged to enlarge the correction force of the
outer-layer material impact tooth frame 4.2 to maintain the reciprocating impact balance
of the outer-layer material impact tooth frame 4.2, in order to prevent the break-off
of the outer-layer material impact tooth frame 4.2 and the impact actuator 7, and
the outer-layer reciprocating guide rods can also be asymmetrically arranged.
[0052] The inner-layer impact stroke component 5.3 includes inner-layer reciprocating guide
rods 5.3.1 and the like, the inner-layer reciprocating guide rods 5.3.1 are symmetrically
arranged on the inner-layer material impact tooth frame 5.2, the outer-layer reciprocating
guide rods 4.3.1 are symmetrically arranged to enlarge the correction force of the
inner-layer material impact tooth frame 5.2 and to maintain the reciprocating impact
balance of the inner-layer material impact tooth frame 5.2, in order to prevent the
break-off of the inner-layer material impact tooth frame 5.2 and the impact actuator
7, and the outer-layer reciprocating guide rods can also be asymmetrically arranged.
[0053] The machine body 1 includes a hydraulic system and/or an electric system and/or a
water mist spray system and the like.
Embodiment 2
[0054] As shown in Fig. 6 to Fig. 9, an efficient impact blanking digging machine without
material clamping used for implementing an efficient impact blanking digging method
without material clamping, includes a machine body 1, a walking mechanism 2, an impact
blanking mechanism 3 and the like, wherein the walking mechanism 2 is arranged at
the front part and the rear part and the like of the machine body 1, the impact blanking
mechanism 3 is connected with the machine body 1, the impact blanking mechanism 3
includes an outer-layer material impact mechanism 4 and/or an inner-layer material
impact mechanism 5 and the like, the outer-layer material impact mechanism 4 and the
inner-layer material impact mechanism 5 are arranged adjacently, the outer-layer material
impact mechanism 4 includes outer-layer material impact teeth 4.1 and the like, the
inner-layer material impact mechanism 5 includes inner-layer material impact teeth
5.1 and the like, the arrangement of the outer-layer material impact teeth 4.1 is
conductive to blanking the outer-layer material of a material layer to be dug and
is conductive to enabling the material blanked by the inner-layer material impact
teeth 5.1 to flow out from the gaps of the outer-layer material impact teeth 4.1,
the outer-layer material impact mechanism 4 is provided with a discharge hole 8 to
enable the material blanked by the inner-layer material impact mechanism 5 to flow
out from the discharge hole 8 of the outer-layer material impact mechanism 4, and
the inner-layer material impact mechanism 5 and the outer-layer material impact mechanism
4 cooperate to realize impact blanking and discharging.
[0055] The outer-layer material impact tooth frame 4.2 includes a rear supporting seat 4.2.1,
an outer-layer material impact tooth supporting frame 4.2.2 and the like, the rear
supporting seat 4.2.1 and the outer-layer material impact tooth supporting frame 4.2.2
form the discharge hole 8, and the number of the discharge hole 8 is one, and can
also be two or more and the like. The discharge hole 8 includes an arched discharge
hole and the like, and can also be a square discharge hole and/or a cambered discharge
hole and/or a trapezoidal discharge hole and/or a triangular discharge hole and/or
a polygonal discharge hole and/or a deformed discharge hole and the like.
[0056] The height of the rear supporting seat 4.2.1 is smaller than the height of the outer-layer
material impact tooth supporting frame 4.2.2 and can also be equal to or larger than
the height of the outer-layer material impact tooth supporting frame 4.2.2.
[0057] The rear supporting seat 4.2.1 and the outer-layer material impact tooth supporting
frame 4.2.2 are integrated and can also be movably connected.
[0058] The inner-layer material impact tooth frame 5.2 inclines towards the material wall
for a certain angle, to help the inner-layer material impact teeth 5.1 to obliquely
cut the material wall.
[0059] The outer-layer material impact teeth 4.1 and the outer-layer material impact tooth
frame 4.2 and/or the inner-layer material impact teeth 5.1 and the inner-layer material
impact tooth frame 5.2 are connected by means of a catching groove 9 and can also
be connected by means of a bolt, a pin, a pin shaft, an eccentric connecting element,
an inserting hole, a jaw and/or a taper sleeve and the like.
[0060] Others are the same as those in embodiment 1.
Embodiment 3
[0061] As shown in Fig. 10 to Fig. 15, an efficient impact blanking digging machine without
material clamping used for implementing an efficient impact blanking digging method
without material clamping, includes a machine body 1, a walking mechanism 2, an impact
blanking mechanism 3 and the like, wherein the walking mechanism 2 is arranged at
the front part or the rear part or the bottom or the like of the machine body 1, the
impact blanking mechanism 3 is connected with the machine body 1, the impact blanking
mechanism 3 includes an outer-layer material impact mechanism 4 and an inner-layer
material impact mechanism 5 and the like, the outer-layer material impact mechanism
4 and the inner-layer material impact mechanism 5 are arranged adjacently, the outer-layer
material impact mechanism 4 includes outer-layer material impact teeth 4.1 and the
like, the inner-layer material impact mechanism 5 includes inner-layer material impact
teeth 5.1 and the like, the arrangement of the outer-layer material impact teeth 4.1
is conductive to blanking the outer-layer material of a material layer to be dug and
is conductive to enabling the material blanked by the inner-layer material impact
teeth 5.1 to flow out from the gaps of the outer-layer material impact teeth 4.1 and/or
the outer-layer material impact mechanism 4 is provided with a discharge hole 8 to
enable the material blanked by the inner-layer material impact mechanism 5 to flow
out from the discharge hole 8 of the outer-layer material impact mechanism 4 and the
like, and the inner-layer material impact mechanism 5 and the outer-layer material
impact mechanism 4 cooperate to realize impact blanking and discharging.
[0062] The outer-layer material impact teeth 4.1 include more than a row of impact teeth
10 and the like, or one row of impact teeth can also be arranged.
[0063] The inner-layer material impact teeth 5.1 include more than a row of impact teeth
10 and the like, or one row of impact teeth can also be arranged.
[0064] The impact teeth 10 include a front row of impact teeth 11 and a rear row of impact
teeth 12 and the like.
[0065] The front row of impact teeth 11 and/or the rear row of impact teeth 12 include impact
teeth 10 with non material clamping shapes, wherein the impact teeth 10 with non material
clamping shapes are conductive to discharging the material blanked by the front row
impact teeth 11 and/or the rear row impact teeth 12 and are conductive to continuous
digging and discharging.
[0066] The arrangement and shape of the front row of impact teeth 11 of the same outer-layer
material impact tooth 4.1 are conductive to enabling the material shoveled off by
the rear row of impact teeth 12 to flow out from the gaps of the front row of impact
teeth 11.
[0067] The front row of impact teeth 11 and the rear row of impact teeth 12 form a length
difference, the length difference is equal to an impact stroke or the length difference
is larger than the impact stroke or the length difference is smaller than the impact
stroke, the front row of impact teeth 11 and the rear row of impact teeth 12 are used
for impacting a material wall into a step shape to break the structural length of
the material wall, and during secondary impact, the front row of impact teeth 11 and
the rear row of impact teeth 12 are used for blanking through a free surface formed
by the step-shaped material wall, in order to reduce the impact resistance, reduce
the granularity of the material block and facilitate the outflow of the material.
[0068] The outer-layer material impact teeth 4.1 and the outer-layer material impact tooth
frame 4.2 and/or the inner-layer material impact teeth 5.1 and the inner-layer material
impact tooth frame 5.2 are connected by means of an inserting hole and can also be
connected by means of a bolt, a catching groove, a pin, a pin shaft, an eccentric
connecting element, a jaw and/or a taper sleeve and the like.
[0069] The arrangement and/or shape of the inner-layer material impact teeth 5.1 is conductive
to blanking and cleaning a material surface, so as to form the material surface into
a necessary shape.
[0070] The outer-layer material impact teeth 4.1 include a main outer-layer material impact
tooth 13 and/or an outer-layer material top face cleaning tooth 14 and/or an outer-layer
material bottom surface cleaning tooth 15 and the like.
[0071] The outer-layer material impact teeth 4.1 include a main outer-layer material impact
tooth 13 and/or an outer-layer material top face cleaning tooth 14 and/or an outer-layer
material bottom surface cleaning tooth 15 and the like, and the main outer-layer material
impact tooth 13 and/or the outer-layer material top face cleaning tooth 14 and/or
the outer-layer material bottom surface cleaning tooth 15 and the like are used for
cleaning the top face and/or the bottom surface of the material wall while blanking.
[0072] The inner-layer material impact teeth 5.1 include a main inner-layer material impact
tooth 16 and/or an inner-layer material top face cleaning tooth 17 and/or an inner-layer
material bottom surface cleaning tooth 18 and/or an inner-layer material side face
cleaning tooth 25 and the like.
[0073] The inner-layer material impact teeth 5.1 include a main inner-layer material impact
tooth 16 and/or an inner-layer material top face cleaning tooth 17 and/or an inner-layer
material bottom surface cleaning tooth 18 and/or an inner-layer material side face
cleaning tooth 25 and the like, and the main inner-layer material impact tooth 16
and/or the inner-layer material top face cleaning tooth 17 and/or the inner-layer
material bottom surface cleaning tooth 18 and/or the inner-layer material side face
cleaning tooth 25 and the like are used for cleaning the material wall while blanking
to facilitate retaining and protecting, in order to ensure the successful pass of
the machine body 1 to perform continuous digging.
[0074] The inner-layer material impact tooth frame 5.2 inclines towards the material wall
for a certain angle, to help the inner-layer material impact teeth 5.1 to obliquely
cut the material wall.
[0075] The outer-layer material impact mechanism 4 includes an outer-layer impact stroke
component 4.3 and the like, and the outer-layer material impact teeth 4.1 and/or the
outer-layer material impact tooth frame 4.2 are symmetrically arranged at the two
ends of the outer-layer impact stroke component 4.3.
[0076] The outer-layer impact stroke component 4.3 and the outer-layer material impact tooth
frame 4.2 are movably connected or are integrated.
[0077] The inner-layer material impact mechanism 5 includes an inner-layer impact stroke
component 5.3 and the like, and the inner-layer material impact teeth 5.1 and/or the
inner-layer material impact tooth frame 5.2 are symmetrically arranged at the two
ends of the inner-layer impact stroke component 5.3.
[0078] The inner-layer impact stroke component 5.3 and the inner-layer material impact tooth
frame 5.2 are movably connected or are integrated.
[0079] The outer-layer material impact tooth frame 4.2 includes a rear supporting seat 4.2.1,
an outer-layer material impact tooth supporting frame 4.2.2 and the like, the rear
supporting seat 4.2.1 and the outer-layer material impact tooth supporting frame 4.2.2
form the discharge hole 8, and the number of the discharge hole 8 is two, and can
also be one or more.
[0080] The discharge hole 8 includes an arched discharge hole and can also include a cambered
discharge hole and/or a square discharge hole and/or a trapezoidal discharge hole
and/or a triangular discharge hole and/or a polygonal discharge hole and/or a deformed
discharge hole. The height of the rear supporting seat 4.2.1 is smaller than the height
of the outer-layer material impact tooth supporting frame 4.2.2 and can also be equal
to or larger than the height of the outer-layer material impact tooth supporting frame
4.2.2.
[0081] The rear supporting seat 4.2.1 and the outer-layer material impact tooth supporting
frame 4.2.2 are movably connected or are integrated.
[0082] The impact blanking mechanism 3 includes a power box body 20 and the like, the rear
supporting seat is provided with a rear supporting seat material baffle 19 and the
like, and the rear supporting seat material baffle 19 is arranged along the surface
of the power box body 20 and relatively reciprocates along the surface of the power
box body 20.
[0083] The impact blanking mechanism 3 includes a power box body 20 and the like, the inner-layer
material impact mechanism 5 includes an inner-layer tooth seat 5.4 and the like, the
inner-layer tooth seat 5.4 is provided with an inner-layer tooth seat material baffle
19 and the like, and the inner-layer tooth seat material baffle 19 is arranged along
the surface of the power box body 20 and relatively reciprocates along the surface
of the power box body 20.
[0084] The impact blanking mechanism 3 includes an impact actuator 7 and the like, a breakage-proof
impact actuator structure 21 and the like are arranged between the impact actuator
7 and the outer-layer material impact tooth frame 4.2 and/or the inner-layer material
impact tooth frame 5.2, the breakage-proof impact actuator structure 21 includes a
rotary breakage-proof impact actuator structure 21.1 and can also adopt a separated
breakage-proof impact actuator structure or a buffering breakage-proof impact actuator
structure and the like, the impact actuator 7 is used for driving the outer-layer
material impact teeth 4.1 and/or the inner-layer material impact teeth 5.1 to impact,
an impact counteraction force is applied on the breakage-proof impact actuator structure
21, and the rotary breakage-proof impact actuator structure 21.1 rotates to prevent
the impact counteraction force from breaking off and damaging the impact actuator
7.
[0085] The outer-layer impact stroke component 4.3 includes outer-layer reciprocating guide
rods 4.3.1 and the like, the outer-layer reciprocating guide rods 4.3.1 are symmetrically
arranged on the outer-layer material impact tooth frame 4.2, the outer-layer reciprocating
guide rods 4.3.1 are symmetrically arranged to enlarge the correction force of the
outer-layer material impact tooth frame 4.2 to maintain the reciprocating impact balance
of the outer-layer material impact tooth frame 4.2, in order to prevent the break-off
of the outer-layer material impact tooth frame 4.2 and the impact actuator 7.
[0086] The inner-layer impact stroke component 5.3 includes inner-layer reciprocating guide
rods 5.3.1 and the like, the inner-layer reciprocating guide rods 5.3.1 are symmetrically
arranged on the inner-layer material impact tooth frame 5.2, the outer-layer reciprocating
guide rods 4.3.1 are symmetrically arranged to enlarge the correction force of the
inner-layer material impact tooth frame 5.2 and to maintain the reciprocating impact
balance of the inner-layer material impact tooth frame 5.2, in order to prevent the
break-off of the inner-layer material impact tooth frame 5.2 and the impact actuator
7.
Embodiment 4
[0087] As shown in Fig. 16 to Fig. 17, the outer-layer material impact mechanism 4 includes
an outer-layer impact stroke component 4.3 and the like, the outer-layer material
impact teeth 4.1 and/or the outer-layer material impact tooth frame 4.2 are arranged
at one end of the outer-layer impact stroke component 4.3, and a counterweight member
22 is arranged at the other end of the outer-layer impact stroke component 4.3.
[0088] The inner-layer material impact mechanism 5 includes an inner-layer impact stroke
component 5.3 and the like, the inner-layer material impact teeth 5.1 and/or the inner-layer
material impact tooth frame 5.2 and the like are arranged at one end of the inner-layer
impact stroke component 5.3, and a counterweight member 22 and the like are arranged
at the other end of the inner-layer impact stroke component 5.3.
[0089] The outer-layer material impact tooth frame 4.2 includes a rear supporting seat 4.2.1,
an outer-layer material impact tooth supporting frame 4.2.2 and the like, the rear
supporting seat 4.2.1 and the outer-layer material impact tooth supporting frame 4.2.2
form a discharge hole 8, and the number of the discharge hole 8 is one, and can also
be more.
[0090] The discharge hole 8 includes a square discharge hole and the like, and can also
be an arched discharge hole and/or a cambered discharge hole and/or a trapezoidal
discharge hole and/or a triangular discharge hole and/or a polygonal discharge hole
and/or a deformed discharge hole and the like.
[0091] The height of the rear supporting seat 4.2.1 is equal to the height of the outer-layer
material impact tooth supporting frame 4.2.2 and can also be larger than or smaller
than the height of the outer-layer material impact tooth supporting frame 4.2.2.
[0092] The impact blanking mechanism 3 includes an impact actuator 7 and the like, a breakage-proof
impact actuator structure 21 and the like are arranged between the impact actuator
7 and the outer-layer material impact tooth frame 4.2 and/or the inner-layer material
impact tooth frame 5.2, the breakage-proof impact actuator structure includes a separated
breakage-proof impact actuator structure 21.2 and the like or a rotary breakage-proof
impact actuator structure or a buffering breakage-proof impact actuator structure
and the like, the impact actuator 7 is used for driving the outer-layer material impact
teeth 4.1 and/or the inner-layer material impact teeth 5.1 to impact, an impact counteraction
force is applied on the breakage-proof impact actuator structure 21, and the separated
breakage-proof impact actuator structure 21.2 separately isolates to prevent the impact
counteraction force from breaking off and damaging the impact actuator 7.
[0093] The outer-layer impact stroke component 4.3 includes outer-layer reciprocating guide
rods 4.3.1 and the like, the outer-layer reciprocating guide rods 4.3.1 are asymmetrically
arranged on the outer-layer material impact tooth frame 4.2 to maintain the reciprocating
impact balance of the outer-layer material impact tooth frame 4.2, in order to prevent
the break-off of the outer-layer material impact tooth frame 4.2 and the impact actuator
7.
[0094] The inner-layer impact stroke component 5.3 includes inner-layer reciprocating guide
rods 5.3.1 and the like, the inner-layer reciprocating guide rods 5.3.1 are asymmetrically
arranged on the inner-layer material impact tooth frame 5.2 to maintain the reciprocating
impact balance of the inner-layer material impact tooth frame 5.2, in order to prevent
the break-off of the inner-layer material impact tooth frame 5.2 and the impact actuator
7.
[0095] Others are the same as those in embodiment 3.
Embodiment 5
[0096] As shown in Fig. 18, the outer-layer material impact tooth frame 4.2 includes a rear
supporting seat 4.2.1, an outer-layer material impact tooth supporting frame 4.2.2
and the like, the rear supporting seat 4.2.1 and the outer-layer material impact tooth
supporting frame 4.2.2 form a discharge hole 8, and the number of the discharge hole
8 is two, and can also be one or more.
[0097] The discharge hole 8 includes a trapezoidal discharge hole and the like, and can
also be an arched discharge hole and/or a cambered discharge hole and/or a square
discharge hole and/or a triangular discharge hole and/or a polygonal discharge hole
and/or a deformed discharge hole and the like.
[0098] The height of the rear supporting seat 4.2.1 is smaller than the height of the outer-layer
material impact tooth supporting frame 4.2.2 and can also be larger than or equal
to the height of the outer-layer material impact tooth supporting frame 4.2.2.
[0099] The impact blanking mechanism 3 includes an impact actuator 7 and the like, a breakage-proof
impact actuator structure and the like are arranged between the impact actuator 7
and the outer-layer material impact tooth frame 4.2 and/or the inner-layer material
impact tooth frame 5.2, the breakage-proof impact actuator structure 21 includes a
buffering breakage-proof impact actuator structure 21.3 and the like or a rotary breakage-proof
impact actuator structure or a separated breakage-proof impact actuator structure
and the like, the impact actuator 7 is used for driving the outer-layer material impact
teeth 4.1 and/or the inner-layer material impact teeth 5.1 to impact, an impact counteraction
force is applied on the breakage-proof impact actuator structure 21, and the buffering
breakage-proof impact actuator structure 21.3 buffers to prevent the impact counteraction
force from breaking off and damaging the impact actuator 7.
[0100] Others are the same as those in embodiment 3.
Embodiment 6
[0101] As shown in Fig. 19 to Fig. 20, the outer-layer material impact mechanism 4 includes
an outer-layer impact stroke component 4.3 and the like, the outer-layer material
impact teeth 4.1 and/or the outer-layer material impact tooth frame 4.2 and the like
are asymmetrically arranged at the two ends of the outer-layer impact stroke component
4.3.
[0102] The outer-layer material impact mechanism 4 includes an outer-layer impact stroke
component 4.3 and the like, the outer-layer material impact teeth 4.1 and the like
are arranged at one end of the outer-layer impact stroke component 4.3, and the outer-layer
material impact tooth frame 4.2 and the like are arranged at the other end of the
outer-layer impact stroke component 4.3.
[0103] The outer-layer impact stroke component 4.3 and the outer-layer material impact tooth
frame 4.2 are movably connected or are integrated.
[0104] The inner-layer material impact mechanism 5 includes an inner-layer impact stroke
component 5.3 and the like, the inner-layer material impact teeth 5.1 and/or the inner-layer
material impact tooth frame 5.2 and the like are asymmetrically arranged at the two
ends of the inner-layer impact stroke component 5.3.
[0105] The inner-layer material impact mechanism 5 includes an inner-layer impact stroke
component 5.3 and the like, the inner-layer material impact teeth 5.1 and the like
are arranged at one end of the inner-layer impact stroke component 5.3, and the inner-layer
material impact tooth frame 5.2 and the like are arranged at the other end.
[0106] The inner-layer impact stroke component 5.3 and the inner-layer material impact tooth
frame 5.2 are movably connected or are integrated.
[0107] The outer-layer material impact tooth frame 4.2 includes a rear supporting seat 4.2.1,
an outer-layer material impact tooth supporting frame 4.2.2 and the like, the rear
supporting seat 4.2.1 and the outer-layer material impact tooth supporting frame 4.2.2
form a discharge hole 8, and the number of the discharge holes 8 is one or more.
[0108] The discharge hole 8 includes a triangular discharge hole and the like, and can also
be an arched discharge hole and/or a cambered discharge hole and/or a square discharge
hole and/or a polygonal discharge hole and/or a deformed discharge hole and the like.
[0109] The height of the rear supporting seat 4.2.1 is smaller than the height of the outer-layer
material impact tooth supporting frame 4.2.2 and can also be equal to or larger than
the height of the outer-layer material impact tooth supporting frame 4.2.2.
[0110] The rear supporting seat and the outer-layer material impact tooth supporting frame
4.2.2 are movably connected or are integrated.
[0111] Others are the same as those in embodiment 3.
Embodiment 7
[0112] As shown in Fig. 21 to Fig. 25, an efficient impact blanking digging machine without
material clamping used for implementing an efficient impact blanking digging method
without material clamping, includes a machine body 1, a walking mechanism 2, an impact
blanking mechanism 3 and the like, wherein the walking mechanism 2 is arranged at
the lower part of the machine body 1, the impact blanking mechanism 3 is connected
with the machine body 1, the impact blanking mechanism 3 includes an outer-layer material
impact mechanism 4 and an inner-layer material impact mechanism 5 and the like, the
outer-layer material impact mechanism 4 and the inner-layer material impact mechanism
5 are arranged adjacently, the outer-layer material impact mechanism 4 includes outer-layer
material impact teeth 4.1 and the like, the inner-layer material impact mechanism
5 includes inner-layer material impact teeth 5.1 and the like, the arrangement of
the outer-layer material impact teeth 4.1 is conductive to blanking the outer-layer
material of a material layer to be dug and is conductive to enabling the material
blanked by the inner-layer material impact teeth 5.1 to flow out from the gaps of
the outer-layer material impact teeth 4.1 and/or the outer-layer material impact mechanism
4 is provided with a discharge hole to enable the material blanked by the inner-layer
material impact mechanism 5 to flow out from the discharge hole of the outer-layer
material impact mechanism 4, and the inner-layer material impact mechanism 5 and the
outer-layer material impact mechanism 4 cooperate to realize impact blanking and discharging.
The arrangement and/or shape of the outer-layer material impact teeth 4.1 is conductive
to blanking the outer-layer material of the material layer to be dug and is conductive
to enabling the material blanked by the inner-layer material impact teeth 5.1 to flow
out from the gaps of the outer-layer material impact teeth 4.1.
[0113] The outer-layer material impact mechanism 4 includes an outer-layer material impact
tooth frame 4.2 and the like, and the outer-layer material impact teeth 4.1 and the
outer-layer material impact tooth frame 4.2 are movably connected or are integrated.
[0114] The inner-layer material impact mechanism 5 includes an inner-layer material impact
tooth frame 5.2 and the like, and the inner-layer material impact teeth 5.1 and the
inner-layer material impact tooth frame 5.2 are movably connected or are integrated.
[0115] The outer-layer material impact teeth 4.1 include more than a row of impact teeth
10 and the like, or one row of impact teeth 10 can also be arranged.
[0116] The inner-layer material impact teeth 5.1 include more than a row of impact teeth
10, or one row of impact teeth 10 can also be arranged.
[0117] The impact teeth 10 include a front row of impact teeth 11 and a rear row of impact
teeth 12 and the like.
[0118] The front row of impact teeth 11 and/or the rear row of impact teeth 12 include impact
teeth 10 with non material clamping shapes, wherein the impact teeth 10 with non material
clamping shapes are conductive to discharging the material blanked by the front row
impact teeth 11 and/or the rear row impact teeth 12 and the like and are conductive
to continuous digging and discharging.
[0119] The arrangement and shape of the front row of impact teeth 11 of the same outer-layer
material impact tooth 4.1 is conductive to enabling the material shoveled off by the
rear row of impact teeth 12 to flow out from the gaps of the front row of impact teeth
11.
[0120] The front row of impact teeth 11 and the rear row of impact teeth 12 form a length
difference, the length difference is equal to an impact stroke or the length difference
is larger than the impact stroke or the length difference is smaller than the impact
stroke, the front row of impact teeth 11 and the rear row of impact teeth 12 are used
for impacting a material wall into a step shape to break the structural length of
the material wall, and during secondary impact, the front row of impact teeth 11 and
the rear row of impact teeth 12 are used for blanking through a free surface formed
by the step-shaped material wall, in order to reduce the impact resistance, reduce
the granularity of the material block and facilitate the outflow of the material.
[0121] The outer-layer material impact teeth 4.1 and the outer-layer material impact tooth
frame 4.2 and/or the inner-layer material impact teeth 5.1 and the inner-layer material
impact tooth frame 5.2 and the like are connected by means of a pin shaft 23 and can
also be connected by means of a bolt, a catching groove, a pin, an eccentric connecting
element, a jaw and/or a taper sleeve and the like.
[0122] The outer-layer material impact teeth 4.1 include a main outer-layer material impact
tooth 13 and the like, and can also include an outer-layer material top face cleaning
tooth 14 and/or an outer-layer material bottom surface cleaning tooth 15 and the like.
[0123] The inner-layer material impact teeth 5.1 include a main inner-layer material impact
tooth 16 and the like, and can also include an inner-layer material top face cleaning
tooth 17 and/or an inner-layer material bottom surface cleaning tooth 18 and/or an
inner-layer material side face cleaning tooth 25 and the like.
[0124] The main inner-layer material impact tooth 16 and/or the inner-layer material top
face cleaning tooth 17 and/or the inner-layer material bottom surface cleaning tooth
18 and/or the inner-layer material side face cleaning tooth 25 and the like are used
for cleaning the material wall while blanking to facilitate retaining and protecting,
in order to ensure the successful pass of the machine body 1 to perform continuous
digging.
[0125] The outer-layer material impact mechanism 4 includes an outer-layer impact stroke
component 4.3 and the like, the outer-layer material impact teeth 4.1 and/or the outer-layer
material impact tooth frame 4.2 and the like are asymmetrically arranged at the two
ends of the outer-layer impact stroke component 4.3, the outer-layer material impact
teeth 4.1 and/or the outer-layer material impact tooth frame 4.2 and the like are
arranged at one end of the outer-layer impact stroke component 4.3, and the outer-layer
impact stroke component 4.3 and the outer-layer material impact tooth frame 4.2 are
movably connected or are integrated. The inner-layer material impact mechanism 5 includes
an inner-layer impact stroke component 5.3 and the like, the inner-layer material
impact teeth 5.1 and/or the inner-layer material impact tooth frame 5.2 and the like
are asymmetrically arranged at the two ends of the inner-layer impact stroke component
5.3, the inner-layer material impact teeth 5.1 and/or the inner-layer material impact
tooth frame 5.2 and the like are arranged at one end of the inner-layer impact stroke
component 5.3, and the inner-layer impact stroke component 5.3 and the inner-layer
material impact tooth frame 5.2 are movably connected or are integrated. The outer-layer
material impact tooth frame 4.2 includes a rear supporting seat 4.2.1, an outer-layer
material impact tooth supporting frame 4.2.2 and the like, the rear supporting seat
4.2.1 and the outer-layer material impact tooth supporting frame 4.2.2 form a discharge
hole 8, and the number of the discharge hole 8 is one or more.
[0126] The discharge hole 8 includes a cambered discharge hole and the like, and can also
include an arched discharge hole and/or a square discharge hole and/or a trapezoidal
discharge hole and/or a triangular discharge hole and/or a polygonal discharge hole
and/or a deformed discharge hole and the like.
[0127] The height of the rear supporting seat 4.2.1 is larger than the height of the outer-layer
material impact tooth supporting frame 4.2.2 and can also be smaller than or equal
to the height of the outer-layer material impact tooth supporting frame 4.2.2.
[0128] The rear supporting seat 4.2.1 and the outer-layer material impact tooth supporting
frame 4.2.2 are movably connected or are integrated.
[0129] The impact blanking mechanism 3 includes a power box body 20 and the like, the rear
supporting seat is provided with a rear supporting seat material baffle 19 and the
like, and the rear supporting seat material baffle 19 is arranged along the surface
of the power box body 20 and relatively reciprocates along the surface of the power
box body 20.
[0130] The impact blanking mechanism 3 includes a power box body 20 and the like, the inner-layer
material impact mechanism 5 includes an inner-layer tooth seat 5.4 and the like, the
inner-layer tooth seat 5.4 is provided with an inner-layer tooth seat material baffle
19 and the like, and the inner-layer tooth seat material baffle 19 is arranged along
the surface of the power box body 20 and relatively reciprocates along the surface
of the power box body 20.
[0131] The impact blanking mechanism 3 includes an impact actuator 7 and the like, a breakage-proof
impact actuator structure 21 and the like are arranged between the impact actuator
7 and the outer-layer material impact tooth frame 4.2 and/or the inner-layer material
impact tooth frame 5.2, the breakage-proof impact actuator structure 21 includes a
buffering breakage-proof impact actuator structure 21.3 and the like or a rotary breakage-proof
impact actuator structure or a separated breakage-proof impact actuator structure
and the like, the impact actuator 7 is used for driving the outer-layer material impact
teeth 4.1 and/or the inner-layer material impact teeth 5.1 to impact, an impact counteraction
force is applied on the breakage-proof impact actuator structure, and the buffering
breakage-proof impact actuator structure buffers to prevent the impact counteraction
force from breaking off and damaging the impact actuator 7.
[0132] The outer-layer impact stroke component 4.3 includes outer-layer reciprocating guide
rods 4.3.1 and the like, the outer-layer reciprocating guide rods 4.3.1 are symmetrically
arranged on the outer-layer material impact tooth frame 4.2, the outer-layer reciprocating
guide rods 4.3.1 are symmetrically arranged to enlarge the correction force of the
outer-layer material impact tooth frame 4.2 to maintain the reciprocating impact balance
of the outer-layer material impact tooth frame 4.2, in order to prevent the break-off
of the outer-layer material impact tooth frame 4.2 and the impact actuator 7.
[0133] The inner-layer impact stroke component 5.3 includes inner-layer reciprocating guide
rods 5.3.1 and the like, the inner-layer reciprocating guide rods 5.3.1 are symmetrically
arranged on the inner-layer material impact tooth frame 5.2, the outer-layer reciprocating
guide rods 4.3.1 are symmetrically arranged to enlarge the correction force of the
inner-layer material impact tooth frame 5.2 to maintain the reciprocating impact balance
of the inner-layer material impact tooth frame 5.2, in order to prevent the break-off
of the inner-layer material impact tooth frame 5.2 and the impact actuator 7.
[0134] The machine body 1 includes a hydraulic system and/or an electric system and/or a
water mist spray system and the like.
[0135] The machine body 1 includes a rotary disk and the like, the rotary disk is arranged
at the upper part of the machine body 1, the impact blanking mechanism 3 is arranged
on the rotary disk, the rotary disk drives the impact blanking mechanism 3 to rotate
to perform impact blanking in multiple directions, the rotary disk can also be arranged
at the lower part of the machine body 1, the impact blanking mechanism 3 is arranged
on the machine body 1, the rotary disk drives the machine body 1 to rotate, and the
machine body 1 drives the impact blanking mechanism 3 to rotate to perform impact
blanking in multiple directions.
Embodiment 8
[0136] As shown in Fig. 26, the machine body 1 includes a rotary disk and the like, the
rotary disk is arranged at the lower part of the machine body 1, the impact blanking
mechanism 3 is arranged on the machine body 1, the rotary disk drives the machine
body 1 to rotate, and the machine body 1 drives the impact blanking mechanism 3 to
rotate to perform impact blanking in multiple directions.
[0137] Others are the same as those in embodiment 7.
1. An efficient impact blanking digging method without material clamping, characterized by including the following steps: an impact blanking mechanism is arranged on the machine
body of a digging machine, wherein the impact blanking mechanism includes an outer-layer
material impact mechanism and an inner-layer material impact mechanism, the outer-layer
material impact mechanism and the inner-layer material impact mechanism are arranged
side by side, the outer-layer material impact mechanism includes outer-layer material
impact teeth, the arrangement of the outer-layer material impact teeth is conductive
to blanking the outer-layer material of a material layer to be dug, the outer-layer
material impact teeth are conductive to enabling the material blanked by the inner-layer
material impact mechanism to flow out from the gaps of the outer-layer material impact
teeth and/or a discharge hole is reserved on the outer-layer material impact mechanism
to enable the material blanked by the inner-layer material impact mechanism to flow
out from the discharge hole of the outer-layer material impact mechanism, the inner-layer
material impact mechanism includes inner-layer material impact teeth, and the inner-layer
material impact mechanism and/or the outer-layer material impact mechanism cooperate
to realize impact blanking and discharging.
2. An efficient impact blanking digging machine without material clamping used for implementing
the efficient impact blanking digging method without material clamping, includes a
machine body and a walking mechanism, and is characterized in that the efficient impact blanking digging machine without material clamping further includes
an impact blanking mechanism, the walking mechanism is arranged at the front part,
the rear part or the lower part of the machine body, the impact blanking mechanism
is connected with the machine body, the impact blanking mechanism includes an outer-layer
material impact mechanism and/or an inner-layer material impact mechanism, the outer-layer
material impact mechanism and the inner-layer material impact mechanism are arranged
adjacently, the outer-layer material impact mechanism includes outer-layer material
impact teeth, the inner-layer material impact mechanism includes inner-layer material
impact teeth, the arrangement of the outer-layer material impact teeth is conductive
to blanking the outer-layer material of a material layer to be dug and is conductive
to enabling the material blanked by the inner-layer material impact teeth to flow
out from the gaps of the outer-layer material impact teeth and/or the outer-layer
material impact mechanism is provided with a discharge hole to enable the material
blanked by the inner-layer material impact mechanism to flow out from the discharge
hole of the outer-layer material impact mechanism, and the inner-layer material impact
mechanism and the outer-layer material impact mechanism cooperate to realize impact
blanking and discharging.
3. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the arrangement and/or shape of the outer-layer material impact teeth is conductive
to blanking the outer-layer material of the material layer to be dug and is conductive
to enabling the material blanked by the inner-layer material impact teeth to flow
out from the gaps of the outer-layer material impact teeth.
4. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the outer-layer material impact mechanism includes an outer-layer material impact
tooth frame, wherein the outer-layer material impact teeth and the outer-layer material
impact tooth frame are movably connected or are integrated.
5. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the inner-layer material impact mechanism includes an inner-layer material impact
tooth frame, wherein the inner-layer material impact teeth and the inner-layer material
impact tooth frame are movably connected or are integrated.
6. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the outer-layer material impact teeth include one or more rows of impact teeth.
7. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the inner-layer material impact teeth include one or more rows of impact teeth.
8. An efficient impact blanking digging machine without material clamping according to
claim 6 or 7, characterized in that the impact teeth include a front row of impact teeth and/or a rear row of impact
teeth.
9. An efficient impact blanking digging machine without material clamping according to
claim 8, characterized in that the front row of impact teeth and/or rear row of impact teeth include impact teeth
with non material clamping shapes, wherein the impact teeth with non material clamping
shapes are conductive to discharging the material blanked by the front row impact
teeth and/or rear row impact teeth and are conductive to continuous digging and discharging.
10. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the arrangement and/or shape of the front row of impact teeth of the same outer-layer
material impact tooth is conductive to enabling the material shoveled off by the rear
row of impact teeth to flow out from the gaps of the front row of impact teeth.
11. An efficient impact blanking digging machine without material clamping according to
claim 8, characterized in that the front row of impact teeth and the rear row of impact teeth form a length difference,
the length difference is equal to an impact stroke or the length difference is larger
than the impact stroke or the length difference is smaller than the impact stroke,
the front row of impact teeth and/or the rear row of impact teeth are used for impacting
a material wall into a step shape to break the structural strength of the material
wall, and during secondary impact, the front row of impact teeth and/or the rear row
of impact teeth are used for blanking through a free surface formed by the step-shaped
material wall, in order to reduce the impact resistance, reduce the granularity of
the material block and facilitate the outflow of the material.
12. An efficient impact blanking digging machine without material clamping according to
claim 4 or 5, characterized in that the outer-layer material impact teeth and the outer-layer material impact tooth frame
and/or the inner-layer material impact teeth and the inner-layer material impact tooth
frame are connected by means of a bolt, a catching groove, a pin, a pin shaft, an
eccentric connecting element, an inserting hole, a jaw and/or a taper sleeve.
13. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the arrangement and/or shape of the inner-layer material impact teeth is conductive
to blanking and cleaning a material surface, so as to form the material surface into
a necessary shape.
14. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the outer-layer material impact teeth include a main outer-layer material impact
tooth and/or an outer-layer material top face cleaning tooth and/or an outer-layer
material bottom surface cleaning tooth.
15. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the outer-layer material impact teeth include a main outer-layer material impact
tooth and/or an outer-layer material top face cleaning tooth and/or an outer-layer
material bottom surface cleaning tooth, and the main outer-layer material impact tooth
and/or the outer-layer material top face cleaning tooth and/or the outer-layer material
bottom surface cleaning tooth are used for cleaning the top face and/or the bottom
surface of the material wall while blanking.
16. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the inner-layer material impact teeth include a main inner-layer material impact
tooth and/or an inner-layer material top face cleaning tooth and/or an inner-layer
material bottom surface cleaning tooth.
17. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the inner-layer material impact teeth include a main inner-layer material impact
tooth and/or an inner-layer material top face cleaning tooth and/or an inner-layer
material bottom surface cleaning tooth, and the main inner-layer material impact tooth
and/or the inner-layer material top face cleaning tooth and/or the inner-layer material
bottom surface cleaning tooth are used for cleaning the material wall while blanking
to facilitate retaining and protecting, in order to ensure the successful pass of
the machine body to perform continuous digging.
18. An efficient impact blanking digging machine without material clamping according to
claim 5, characterized in that the inner-layer material impact teeth and/or the inner-layer material impact tooth
frame incline towards the material wall for certain angles, to help the inner-layer
material impact teeth to obliquely cut the material wall.
19. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the outer-layer material impact mechanism includes an outer-layer impact stroke component,
and the outer-layer material impact teeth and/or the outer-layer material impact tooth
frame are symmetrically arranged at two ends of the outer-layer impact stroke component.
20. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the outer-layer material impact mechanism includes an outer-layer impact stroke component,
and the outer-layer material impact teeth and/or the outer-layer material impact tooth
frame are asymmetrically arranged at two ends of the outer-layer impact stroke component.
21. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the outer-layer material impact mechanism includes an outer-layer impact stroke component,
and the outer-layer material impact teeth and/or the outer-layer material impact tooth
frame are arranged at one end of the outer-layer impact stroke component.
22. An efficient impact blanking digging machine without material clamping according to
claim 19, 20 or 21, characterized in that the outer-layer impact stroke component and the outer-layer material impact tooth
frame are movably connected or are integrated.
23. An efficient impact blanking digging machine without material clamping according to
claim 19, 20 or 21, characterized in that the outer-layer impact stroke component includes outer-layer reciprocating guide
rods, the outer-layer reciprocating guide rods are symmetrically or asymmetrically
arranged on the outer-layer material impact tooth frame, the outer-layer reciprocating
guide rods are symmetrically arranged to enlarge the correction force of the outer-layer
material impact tooth frame to maintain the reciprocating impact balance of the outer-layer
material impact tooth frame, in order to prevent the break-off of the outer-layer
material impact tooth frame and the impact actuator.
24. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the inner-layer material impact mechanism includes an inner-layer impact stroke component,
and the inner-layer material impact teeth and/or the inner-layer material impact tooth
frame are symmetrically arranged at two ends of the inner-layer impact stroke component.
25. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the inner-layer material impact mechanism includes an inner-layer impact stroke component,
and the inner-layer material impact teeth and/or the inner-layer material impact tooth
frame are asymmetrically arranged at two ends of the inner-layer impact stroke component.
26. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the inner-layer material impact mechanism includes an inner-layer impact stroke component,
and the inner-layer material impact teeth and/or the inner-layer material impact tooth
frame are arranged at one end of the inner-layer impact stroke component.
27. An efficient impact blanking digging machine without material clamping according to
claim 24, 25 or 26, characterized in that the inner-layer impact stroke component and the inner-layer material impact tooth
frame are movably connected or are integrated.
28. An efficient impact blanking digging machine without material clamping according to
claim 24, 25 or 26, characterized in that the inner-layer impact stroke component includes inner-layer reciprocating guide
rods, the inner-layer reciprocating guide rods are symmetrically or asymmetrically
arranged on the inner-layer material impact tooth frame, the outer-layer reciprocating
guide rods are symmetrically arranged to enlarge the correction force of the inner-layer
material impact tooth frame to maintain the reciprocating impact balance of the inner-layer
material impact tooth frame, in order to prevent the break-off of the inner-layer
material impact tooth frame and the impact actuator.
29. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the outer-layer material impact mechanism includes an outer-layer impact stroke component,
the outer-layer material impact teeth and/or the outer-layer material impact tooth
frame are arranged at one end of the outer-layer impact stroke component, and a counterweight
member is arranged at the other end of the outer-layer impact stroke component.
30. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the inner-layer material impact mechanism includes an inner-layer impact stroke component,
the inner-layer material impact teeth and/or the inner-layer material impact tooth
frame are arranged at one end of the inner-layer impact stroke component, and a counterweight
member is arranged at the other end of the inner-layer impact stroke component.
31. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the outer-layer material impact tooth frame includes a rear supporting seat and an
outer-layer material impact tooth supporting frame, the rear supporting seat and the
outer-layer material impact tooth supporting frame form a discharge hole, and there
is one or multiple discharge holes.
32. An efficient impact blanking digging machine without material clamping according to
claim 31, characterized in that the discharge hole includes an arched discharge hole and/or a cambered discharge
hole and/or a square discharge hole and/or a trapezoidal discharge hole and/or a triangular
discharge hole and/or a polygonal discharge hole and/or a deformed discharge hole.
33. An efficient impact blanking digging machine without material clamping according to
claim 31, characterized in that the height of the rear supporting seat is smaller than or equal to or larger than
the height of the outer-layer material impact tooth supporting frame.
34. An efficient impact blanking digging machine without material clamping according to
claim 31, characterized in that the rear supporting seat and the outer-layer material impact tooth supporting frame
are movably connected or are integrated.
35. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the impact blanking mechanism includes a power box body, the rear supporting seat
is provided with a rear supporting seat material baffle, and the rear supporting seat
material baffle is arranged along the surface of the power box body and relatively
reciprocates along the surface of the power box body.
36. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the impact blanking mechanism includes a power box body, the inner-layer material
impact mechanism includes an inner-layer tooth seat, the inner-layer tooth seat is
provided with an inner-layer tooth seat material baffle, and the inner-layer tooth
seat material baffle is arranged along the surface of the power box body and relatively
reciprocates along the surface of the power box body.
37. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the impact blanking mechanism includes an impact actuator, a breakage-proof impact
actuator structure is arranged between the impact actuator and the outer-layer material
impact tooth frame and/or the inner-layer material impact tooth frame, the breakage-proof
impact actuator structure includes a rotary breakage-proof impact actuator structure
or a separated breakage-proof impact actuator structure or a buffering breakage-proof
impact actuator structure, the impact actuator is used for driving the outer-layer
material impact teeth and/or the inner-layer material impact teeth to impact, an impact
counteraction force is applied to the breakage-proof impact actuator structure, and
the rotary breakage-proof impact actuator structure rotates or the separated breakage-proof
impact actuator structure separately isolates or the buffering breakage-proof impact
actuator structure buffers to prevent the impact counteraction force from breaking
off and damaging the impact actuator.
38. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the machine body includes a hydraulic system and/or an electric system and/or a water
mist spray system.
39. An efficient impact blanking digging machine without material clamping according to
claim 2, characterized in that the machine body includes a rotary disk, the rotary disk is arranged at the upper
part and/or the lower part of the machine body, when the rotary disk is arranged at
the upper part of the machine body, the impact blanking mechanism is arranged on the
rotary disk, the rotary disk drives the impact blanking mechanism to rotate to perform
impact blanking in multiple directions, when the rotary disk is arranged at the lower
part of the machine body, the impact blanking mechanism is arranged on the machine
body, the rotary disk drives the machine body to rotate, and the machine body drives
the impact blanking mechanism to rotate to perform impact blanking in multiple directions.