Field of the invention
[0001] The invention relates to continuous casting machines, and more particularly, to a
device and method for adding flux slag to a mold of a continuous casting machine.
Background art
[0002] Automatically adding slag to a mold is very important for ensuring the quality of
the billet. One approach for adding slag is to use a compressed gas spraying slag
method to add flux slag to the mold.
[0003] However, in the process of implementing the invention, the inventors found that there
is a problem of non-uniform distribution of the slag when the compressed gas spraying
slag method is used to add flux slag.
Summary
[0004] It is an object of the invention to provide a device for adding flux slag to a mold
of a continuous casting machine, which can uniformly add slag. It is a further object
of the invention to provide a method for adding flux slag to a mold of a continuous
casting machine, which can uniformly add slag.
[0005] Therefore, on the one hand, the invention provides a device for adding flux slag
to a mold of a continuous casting machine, which includes a slag hopper for containing
flux slag; a flux slag distributor having a spiral conveyor for conveying the flux
slag and a plurality of ration chambers arranged in a pipe shell length direction
of the spiral conveyor with slag spraying ports; a flux slag pipeline assembly for
connecting the slag hopper with the spiral conveyor; a compressed gas supply device
for supplying compressed gas to each of the ration chambers for blowing the flux slag;
and a controller for controlling the spiral conveyor and the compressed gas supply
device.
[0006] In one embodiment, the slag hopper is disposed on a tundish operating platform of
the continuous casting machine, the flux slag distributor is located on a cover of
the mold.
[0007] In one embodiment, the flux slag pipeline assembly includes a down slag tube, an
electric control adding slag valve and a manual adding slag valve connected to each
other.
[0008] In one embodiment, the flux slag pipeline assembly further includes a first quick
connector and a second quick connector installed at top and bottom sides of the down
slag tube; a roller being disposed at another end of the flux slag distributor far
away from the flux slag pipeline assembly; and the spiral conveyor has fixtures for
supporting the weight of the spiral conveyor and the ration chambers.
[0009] In one embodiment, the spiral conveyor includes a transporting slag tube, a transporting
slag screw rod located in the transporting slag tube, a receiving slag box located
at a front end of the transporting slag tube, a slag collecting and discharging box
located at a terminal end of the transporting slag tube, and a power unit for driving
the transporting slag screw rod to rotate.
[0010] In one embodiment, the plurality of ration chambers includes at least two ration
chambers with different volumes.
[0011] In one embodiment, the compressed gas supply device includes a gas tank, a first
pressure branch and a second pressure branch at least connected to the gas tank, and
a gas distribution tube connected to the first pressure branch and the second pressure
branch.
[0012] In one embodiment, the gas distribution tube includes a plurality of pressure distribution
tubes, a plurality of compressed air branch tubes connected to each of the pressure
distribution tubes, a plurality of compressed air branch ducts connected to each of
the compressed air branch tubes; wherein each of the pressure distribution tubes has
the control valves set therein, and each compressed air branch ducts is communicated
with corresponding ration chambers.
[0013] In one embodiment, open frequency of the control valves and/or speed of the spiral
conveyor for conveying the flux slag are controlled by the controller.
[0014] On the other hand, the invention provides a method for adding flux slag to a mold
of a continuous casting machine, which includes following steps: 1) arranging a group
of slag spraying ports along a long side of a copper mouth of the mold; and 2) causing
the flux slag being uniformly distributed in the range of a section of a molten steel
of the mold where the flux slag falls by adjusting the pressure of a compressed gas
which blows the flux slag during each of the slag spraying ports spraying slag.
[0015] In one embodiment, a pressure value of the compressed gas is adjustable between a
first predetermined pressure value and a second predetermined pressure value; wherein
the compressed gas of the first predetermined pressure value causes the flux slag
to fall on one surface which is close to an inner arc and is of the molten steel of
the mold; the compressed gas of the second predetermined pressure value causes the
flux slag to fall on one surface which is close to an outside arc and is of the molten
steel of the mold.
[0016] Further, the compressed gas has a first predetermined pressure vale, a second predetermined
pressure, and a third predetermined pressure vale between the first and second predetermined
pressure vales.
[0017] Preferably, the different predetermined pressure vales of the compressed gas are
implemented through corresponding pressure adjusting branches, and opening or closing
of each pressure controlling branch is controlled by control valves of the each pressure
controlling branch.
[0018] Preferably, each pressure adjusting branch is connected to the same gas supplying
source, and size of the pressure in each pressure adjusting branch is realized by
a pressure reducing valve reducing pressure.
[0019] Preferably, dividing each group of spraying slag ports into a plurality of small
groups and distributing the compressed gas to each small group of spraying slag ports
through distributing conduits, wherein a valve is respectively set in each of the
distributing conduits to control opening or closing of the each of the distributing
conduits, and the compressed gas is alternately supplied to each small group of spraying
slag ports by controlling the open frequency of the valves.
[0020] Preferably, a supplying time of compressed gas of each small group of spraying slag
ports is determined by a time interval between opening and closing the valves of the
distributing conduits.
[0021] The device and method for adding flux slag to mold of continuous casting machine
of the invention, by means of arranging a group of slag spraying ports along a long
side of a copper mouth of the mold and controlling slag spraying ports speeds, the
flux slag is uniformly distributed over one surface close to the inner arc of the
molten steel in the mold and over one surface close to the outside arc of the molten
steel in the mold, thereby uniformly adding the slag.
[0022] In addition to the above described purposes, characteristics, advantages, the invention
further has other purposes, characteristics, advantages. The other purposes, characteristics,
effects of the invention are hereinafter further explained in details with reference
to drawings.
Brief description of the drawings
[0023] The accompanying drawings which constitute a part of the specification and are used
for further understanding of the invention illustrate a preferred embodiment of the
invention and, together with the specification, serve to explain the principles of
the invention, in which:
Fig. 1 shows a device for adding flux slag to mold of continuous casting machine according
to the invention;
Fig. 2 shows a schematic partially enlarged view of a flux slag distributor of the
device for adding flux slag to mold of continuous casting machine of Fig. 1;
Fig. 3 shows a section view of the device for adding flux slag to mold of continuous
casting machine of Fig. 1 taken along line A-A;
Fig. 4 shows a schematic partially enlarged view of the flux slag distributor of the
device for adding flux slag to mold of continuous casting machine of Fig. 3;
Fig. 5 shows a section view of the device for adding flux slag to mold of continuous
casting machine of Fig. 1 taken along line B-B;
Fig. 6 shows a system control diagram of the device for adding flux slag to mold of
continuous casting machine of Fig. 1.
Detailed description of examples
[0024] In order to make objects, technical solutions and advantages of the invention clear,
the invention is hereinafter further explained in details with reference to embodiments
and drawings.
[0025] Figs. 1-5 are schematic structure views of a device for adding flux slag to mold
of continuous casting machine according to the invention. Referring to Figs. 1-5,
the device for adding flux slag to mold of continuous casting machine of the invention
includes a slag hopper 101, a flux slag pipeline assembly, a flux slag distributor,
a compressed gas supply device and a controller 103.
[0026] Each of the components will be described in the following in details, respectively.
When referring to exterior characteristics of the device of the invention, please
refer to Figs. 1-2; when referring to interior characteristics of the device of the
invention, please refers to Figs. 3-5.
[0027] The slag hopper 101 is used to contain flux slag 112, and is disposed on a tundish
operating platform 110. The slag hopper 101 has a slag outlet at its bottom.
[0028] The flux slag pipeline assembly, also called flux slag transfer pipeline, is used
to connect the slag hopper 101 which is located above with the flux slag distributor
which is located below, for the flux slag passing there through under control.
[0029] The flux slag pipeline assembly includes an electric control adding slag ball valve
105a
1, a pneumatic clamping valve 105b, a quick connector 105c
1, a down slag tube 105d, a manual adding slag ball valve 105a
2, and a quick connector 105c
2.
[0030] The quick connector 105c
1 and the quick connector 105c
2 are connected to opposite ends of the down slag tube 105d, respectively, for facilitating
quickly disassemble the down slag tube 105d to remove the flux slag distributor.
[0031] Not all of the valves of the above flux slag pipeline assembly are necessary, and
can be selected according to the needs, for example, the pneumatic clamping valve
105b can be omitted. The flux slag pipeline assembly can also have other device or
equipment, for example, sensors for weight measurement, vibration devices for vibrating
to assist down slag and so on.
[0032] The flux slag distributor, also called flux slag distributing assembly, is used to
provide a plurality of slag spraying ports having controlled slag spraying speeds.
These slag spraying ports are arranged a long side of the copper mouth of the mold
to uniformly add slag to the molten steel in the mold.
[0033] The flux slag distributor specifically includes a spiral conveyor and a group of
ration chambers 106j installed in the spiral conveyor.
[0034] The above mentioned spiral conveyor includes a motor 106a, a speed-down box 106b,
a coupling assembly 106c, a receiving slag box 106f, a transporting slag tube 106g,
a transporting slag screw rod 106d located in the transporting slag tube 106g, a bearing
seal assembly 106e
1 located in a front end of the transporting slag screw rod 106d, a bearing seal assembly
106e
2 located in a rear end of the transporting slag screw rod 106d, and a slag collecting
and discharging box 106h located at a terminal end of the transporting slag tube 106g.
[0035] The above mentioned receiving slag box 106f is connected to the quick connector 105c
2 to receive the flux slag from the slag hopper 101. The flux slag entering into the
receiving slag box 106f is transported forward through the transporting slag screw
rod 106d. The transporting slag screw rod 106d is driven to rotate by the motor 106a
through the speed-down box 106b and the coupling assembly 106c.
[0036] The motor 106a is best to be an adjustable-speed motor such as stepper motor, so
that the rotation speed of the transporting slag screw rod 106d can be adjusted. Of
course, the driving motor 106a can also be a general motor or other power units for
driving screw rotation, such as hydraulic motor and the like.
[0037] Each ration chamber 106j is communicated with the transporting slag tube 106g through
a discharging slag tube 106i, to receive the flux slag from the transporting slag
tube 106g. Each ration chamber 106j has a pipe segment with an expanded cross-sectional
area to accumulate the flux slag. A terminal end of the pipe segment forms slag spraying
ports 106k. Each ration chamber 106j is supplied with compressed gas through compressed
air branch ducts 107d to blow the flux slag in the ration chamber out through the
slag spraying ports 106k.
[0038] In the embodiment shown in the figures, the spiral conveyor has 15 ration chambers;
in other embodiments the number of the ration chambers 106j can be increased or decreased
according to needs such as the length of the long side of the copper mouth of the
mold, for example, 10, 12, 14, 16, 18, 20, 21, 22, 25, 30 and so on.
[0039] The volume of the above mentioned each ration chamber for accumulating the flux slag
can vary from each other, so that different amounts of slag are blown to the mold
at the same time for adding slag. At this time, it is very useful for the ration chambers
to be detachably installed on the transporting slag tube 106g. Moreover, the ration
chambers can be made in the form with an adjustable volume.
[0040] The spiral conveyor can further have two or more fixtures 108 for supporting, to
support the weight of the whole spiral conveyor when adding the slag. A roller 109
is disposed at an end of the spiral conveyor. A bottom of the roller 109 is higher
than bottoms of the fixtures 8. During the process of adding slag, the roller is not
in contact with a cover of the mold. When the spiral conveyor is removed, an end of
the spiral conveyor where the slag enters into is lifted up, the roller then contacts
with the cover 111; one operator can remove the flux slag distributing assembly from
the mold cover.
[0041] The compressed gas supply device is used to supply compressed gas to each ration
chamber 106j to blow the flux slag in the ration chamber out through the slag spraying
ports 106k. The compressed gas is not limited to air, and can also be gas such as
nitrogen which can avoid oxidation of molten steel.
[0042] The compressed gas supply device includes a gas tank 102, a gas control cabinet 104
having different pressure branches, and a gas distribution tube for providing compressed
gas to each ration chamber.
[0043] The above mentioned gas control cabinet 104 includes an electronic control high pressure
ball valve 104a, a pressure reducing valve 104b
1 and high pressure electromagnetic valve 104c
1 branch (first pressure branch), a pressure reducing valve 104b
2 and a low pressure electromagnetic valve 104c
2 (second pressure branch), an electromagnetic valve 104d
1 for controlling the high pressure gas branch tube 107c
1, an electromagnetic valve 104d
2 for controlling the high pressure gas branch tube 107c
2, and an electromagnetic valve 104d
3 for controlling the high pressure gas branch tube 107c
3. The high pressure electromagnetic valve 104c
1 and the low pressure electromagnetic valve 104c
2 are interlocked, that is, one opens the other closes. The electromagnetic valve 104d
1, electromagnetic valve 104d
2 and electromagnetic valve 104d
3 can be interlocked, that is, one opens another two close.
[0044] The above mentioned gas distribution tube includes the high pressure gas branch tubes
107c
1, 107c
2 and 107c
3, high pressure gas distribution tubes 107b
1, 107b
2 and 107b
3, and a plurality of high pressure gas branch ducts 107d. The high pressure gas branch
tubes 107c
1, 107c
2 and 107c
3 are controlled to open or close by the electromagnetic valve 104d
1, electromagnetic valve 104d
2 and electromagnetic valve 104d
3, respectively.
[0045] The above mentioned gas tank 102 can further have a pneumatic valve gas supplying
tube 107e, to provide actuation gas for the pneumatic clamping valve 105b so as to
control opening or closing of the pneumatic clamping valve 105b.
[0046] The above mentioned compressed gas supply device can provide two different kinds
of compressed gas with high pressure or low pressure; in other embodiments, the gas
control cabinet can also have a third pressure branch, thereby providing a compressed
gas of third type of pressure. Of course, in other embodiments, a pressure continuously
adjustable device such as high pressure pump can also be provided. Further, in the
compressed gas supply device, open frequency of each control valve, switching between
the valves and the like are controlled by the controller 103. However, the above described
compressed gas supply device are only preferable embodiment, can also be other structures.
The controller 103 will be described in the following in details.
[0047] The controller 103 is placed in a tundish car rail column 115, and provides control
signals to components that are needed to be controlled. With reference to Fig. 1 and
Fig. 6, the controller 103 controls the motor 106a of the spiral conveyor and the
gas control cabinet 104 to control the rotation speed of the motor 106a and open frequency
of each control valve and switching between the valves of the gas control cabinet
104. Optionally, the controller 103 can automatically control according to pre-determined
states, and can also work according to input conditions from input devices such as
sensors, keyboards and the like.
[0048] The running state of the device for adding flux slag to mold of continuous casting
machine of the invention will be described in the following. Referring to Figs. 1-6,
the flux slag 112 located in the slag hopper 101 which is on the tundish operating
platform, enters into the receiving slag box 106f of the flux slag distributing assembly
106 which is located at an inner arc side of the mold cover 111, through the electric
control adding slag ball valve 105a
1, the pneumatic clamping valve 105b, the quick change coupler 105c
1, the gravity down slag tube 105a
1, the manual adding slag ball valve 105a
2, and the quick change coupler 105c
2.
[0049] Through the speed-down box 106b and the transporting slag screw rod 106d, the motor
106a supplies the flux slag in the receiving slag box 106f to the ration chambers
106j distributed along the length side of the mold via the transporting slag tube
106g and the discharging slag tube 106i.
[0050] After high pressure gas through the gas tank 102, a high pressure gas supplying tube
107a and the electronic control high pressure ball valve 104a of the gas control cabinet
104, the high pressure gas is divided into two branches: one branch through the pressure
reducing valve 104b
1 and the high pressure electromagnetic valve 104c
1 provides high pressure gas, other branch through the pressure reducing valve 104b
2 and the low pressure electromagnetic valve 104c
2 provides low pressure gas; the two branches converge into one and then is divided
into three branches, which are respectively through the electromagnetic valve 104d
1 and the high pressure gas branch tube 107c
1, the electromagnetic valve 104d
2 and the high pressure gas branch tube 107c
2, the electromagnetic valve 104d
3 and the high pressure gas branch tube 107c
3, and then supplied to the high pressure gas distribution tubes 107b
1, 107b
2 and 107b
3, of which each is respectively divided into 5 branches of high pressure gas branch
ducts 107d connected to the ration chambers 106j.
[0051] When the electronic control high pressure ball valve 104a and the high pressure electromagnetic
valve 104c open, high pressure gas blows the flux slag in the ration chambers 106j
out to one surface which is close to the outside arc and is of the molten steel 114
of the mold 113. When the electronic control high pressure ball valve 104a and the
low pressure electromagnetic valve 104c
2 open, low pressure gas blows the flux slag in the ration chambers 106j out to one
surface which is close to the inner arc and is of the molten steel 114 of the mold
113. Therefore, a uniform slag covering layer 112 is formed on the surface of the
molten steel. The pipeline assembly has the pneumatic clamping valve 105b. When the
clamping electromagnetic valve 104e of the gas control cabinet 104 opens, the clamping
valve 105b closes, the flux slag pipeline assembly 105 stops conveying slag. Electric
signals for controlling all the above mentioned components are provided by the controller
103 which is placed in the tundish car rail column 115.
[0052] Through the above description, it can be seen the device for adding flux slag to
mold of continuous casting machine of the invention obtains the following effects:
[0053] The controller controls rotating speeds of the screw in the spiral transporting slag
tube driven by the motor and the open frequency of the control valves of the transporting
flux slag tube and the high pressure gas supplying tube, the speed of adding slag
can be adjusted according to the optimal consumption amount of the slag by the mold.
[0054] The volume of each of the ration chambers distributed along the length side of copper
mouth of the mold can be adjusted according to consumption rate of the slag by the
surface of the molten steel where it locates.
[0055] The slag hopper, the controller and the control valves of the slag tube of the device
for adding slag are installed on a suitable position far away from the mold cover,
other components go by the general name of flux slag distributing assembly which has
a compact structure and a light weight and are installed on the cover.
[0056] The existing automatically adding slag device uses a pendular tube for adding slag.
The disadvantage of the pendular tube for adding slag is that the tube for adding
slag is too long and a screw rod thereof is long to ten meters which takes up large
area of the cast-steel platform of the mold and greatly affects the normal operation
of the cast-steel platform. Another automatically adding slag device is slag hopper
moving type. The disadvantage of the slag hopper moving type is that the slag hopper
of the moving device is higher and can only be installed outside of inner arc cover
of the continuous casting machine. When the tundish car railway is in the inner arc
and close to the cover, the device for adding slag can only be installed outside of
the railway. This causes the tube for adding slag longer and taking up large area
thereby obstructing manufacturing operation, and not suitable for a continuous casting
machine with a turntable tundish.
[0057] The device for adding flux slag of the invention can be miniaturized, for example,
having a height smaller than 150 millimetres (mm), a width smaller than 350mm and
a length designed according to the cross section of the mold, the flux slag distributing
assembly is installed on the mold cover close to the copper mouth, while other bulky
components are installed at positions which are far away from the cover and do not
affect processing operation. The device for adding flux slag of the invention can
be widely used and be adapted to be used in the continuous casting machine with the
turntable tundish.
[0058] The ration chambers of the invention are distributed along the length side of the
copper mouth of the mold, the volume of each of the ration chambers can be adjusted
according to consumption rate of the slag by the surface of the molten steel where
it locates, that is, the slag is supplied according to need.
[0059] The rotating speeds of the motor which drives the screw in the spiral transporting
slag tube to spirally transport the slag, and the open frequency of the control valves
of the transporting slag tube and the gas tube are controlled by the controller according
to the consumption rate of the slag by the mold.
[0060] The gas supplying tube of the invention has the pressure reducing valves, which can
adjust the inlet gas pressure into the ration chambers to enable the flux slag blown
to the surface of the molten steel to be uniformly distributed in the range of the
section of the mold.
[0061] The flux slag distributing assembly of the invention has light weight, in one embodiment,
about 60 kilogrammes. The flux slag distributing assembly has the roller disposed
at an end thereof. During the operation of the automatically adding slag system the
roller is hanged in the air. When it is needed to remove the flux slag distributing
assembly from the mold cover after stopping work, the quick change couplers are first
pulled out from the slag tube and the gas tube, and then the end of the flux slag
distributing assembly where the slag enters into is lifted up, the roller consequently
falls to the ground, one operator can remove the flux slag distributing assembly from
the mold cover.
[0062] A method for adding flux slag to mold of continuous casting machine according to
the invention will be described in the following.
[0063] The method for adding flux slag to mold of continuous casting machine according to
the invention includes the following steps: 1) arranging a group of slag spraying
ports along a long side of the copper mouth of the mold; 2) causing the flux slag
being uniformly distributed in the range of the section of the molten steel of the
mold where the flux slag falls by adjusting the pressure of the compressed gas which
blows the flux slag during each of the slag spraying ports spraying slag.
[0064] As a selected implementing manner of adjusting the pressure of the compressed gas,
the pressure value of the above mentioned compressed gas can be adjusted between a
first predetermined pressure value and a second predetermined pressure value. The
compressed gas of the first predetermined pressure value causes the flux slag to fall
on the surface which is close to the inner arc and is of the molten steel of the mold;
the compressed gas of the second predetermined pressure value causes the flux slag
to fall on the surface which is close to the outside arc and is of the molten steel
of the mold. Further, the above mentioned compressed gas can also have a third predetermined
pressure vale between the first and second predetermined pressure vales. The above
mentioned first predetermined pressure, the second predetermined pressure, and the
spraying time can be determined by test according to specific molds.
[0065] As another selected implementing manner of adjusting the pressure of the compressed
gas, the spraying slag speed can be uniformly adjusted between the first predetermined
pressure vale and the second predetermined pressure vale. Apparently, the advantages
of doing so are clearer. However, two to five grades of predetermined pressure vales
are generally set to obtain uniformly distributed flux slag on the section of the
molten steel of the mold
[0066] The different predetermined pressure vales of the compressed gas can be implemented
through corresponding pressure adjusting branches. Opening or closing of each pressure
controlling branch is controlled by the control valves of the pressure controlling
branch. Further, each pressure adjusting branch is connected to the same gas supplying
source, and the size of the pressure in each pressure adjusting branch can be realized
by the pressure reducing valves reducing pressure. For example, when the pressure
of the gas supplying source is 2Mpa, a plurality of predetermined pressure values
such as 1.0Mpa, 0.4Mpa and the like can be realized after each pressure adjusting
branch uses corresponding pressure reducing valves to reduce pressure.
[0067] As a selected implementing manner of the setting of the spraying slag ports, each
group of spraying slag ports can be divided into a plurality of small groups, and
the compressed gas can be distributed to each small group of spraying slag ports through
distributing conduits. A valve is respectively set in each distributing conduit to
control opening or closing of the each distributing conduit, and compressed gas is
alternately supplied to each small group of spraying slag ports by controlling the
open frequency of the valves. Further, the spraying time of each small group of spraying
slag ports, that is, supplying time of compressed gas, can be determined by the time
interval between opening and closing the valves of the distributing conduits. At this
point, by controlling the time interval between opening and closing each valve, the
consumption amount of the flux slag by the molten steel of the mold coincides with
the spraying amount of the flux slag.
[0068] In addition, a plurality of spraying slag ports with different diameters for replacement
can be prepared, so that the diameter of each spraying slag port can be adjusted to
spray different amounts of flux slag per unit time.
[0069] The description of the reference signs of Figs. 1-6 is shown in table 1.
Table 1 description of the reference signs
| 101 |
Slag hopper |
| 102 |
Gas tank |
| 103 |
controller |
| 104 |
Gas control cabinet |
| 104a |
Electric control high pressure ball valve |
| 104b1 |
Pressure reducing valve for high pressure |
| 104b2 |
Pressure reducing valve for low pressure |
| 104c1 |
High pressure electromagnetic valve |
| 104c2 |
Low pressure electromagnetic valve |
| 104d1 |
electromagnetic valve |
| 104d2 |
| 104d3 |
| 104e |
Clamping electromagnetic valve |
| 105 |
Flux slag pipeline assembly |
| 105a1 |
Electric control adding slag ball valve |
| 105a2 |
manual adding slag ball valve |
| 105b |
Pneumatic clamping valve |
| 105c1 |
Quick connector |
| 105C2 |
| 105d |
down slag tube |
| 106 |
flux slag distributing assembly |
| 106a |
motor |
| 106b |
speed-down box |
| 106c |
coupling assembly |
| 106d |
transporting slag screw rod |
| 106e1 |
Front end bearing seal assembly |
| 106e2 |
Rear end bearing seal assembly |
| 106f |
Receiving slag box |
| 106h |
slag collecting and discharging box |
| 106j |
ration chamber |
| 106k |
slag spraying ports |
| 107a |
Compressed air supplying tube |
| 107b1 |
Compressed air distribution tube |
| 107b2 |
|
| 107b3 |
|
| 107c1 |
Compressed air branch tube |
| 107c2 |
|
| 107c3 |
|
| 107d |
Compressed air branch duct |
| 108 |
Pneumatic valve gas supplying tube |
| 109 |
Roller |
| 110 |
Tundish operating platform |
| 111 |
Mold cover |
| 112 |
Flux slag |
| 113 |
Mold |
| 114 |
Molten steel |
| 115 |
Tundish car column |
[0070] It can be appreciated by those skilled in the art that the above mentioned spraying
slag method can be completed by components or devices capable of completing this function
in the existing technology, in addition to be completed by the device of the preferred
embodiment of the invention, and is not limited to the device or components of the
preferred embodiment of the invention.
[0071] The foregoing are only preferred embodiments of the invention and are not for use
in limiting the protection scope thereof. All modifications, equivalent replacements
or improvements in accordance with the spirit and principles of the invention shall
be included in the protection scope of the invention.
1. A device for adding flux slag to mold of continuous casting machine, comprising:
a slag hopper for containing flux slag;
a flux slag distributor having a spiral conveyor for conveying the flux slag and a
plurality of ration chambers arranged in a pipe shell length direction of the spiral
conveyor with slag spraying ports;
a flux slag pipeline assembly for connecting the slag hopper with the spiral conveyor;
a compressed gas supply device for supplying compressed gas to each of the ration
chambers for blowing the flux slag; and
a controller for controlling the spiral conveyor and the compressed gas supply device.
2. The device of claim 1, wherein the flux slag pipeline assembly includes a down slag
tube, an electric control adding slag valve and a manual adding slag valve connected
to each other.
3. The device of claim 2, wherein the flux slag pipeline assembly further includes a
first quick connector and a second quick connector installed at top and bottom sides
of the down slag tube;
a roller being disposed at another end of the flux slag distributor far away from
the flux slag pipeline assembly; and
the spiral conveyor has fixtures for supporting the weight of the spiral conveyor
and the ration chambers.
4. The device of claim 1, wherein the spiral conveyor includes a transporting slag tube,
a transporting slag screw rod located in the transporting slag tube, a receiving slag
box located at a front end of the transporting slag tube, a slag collecting and discharging
box located at a terminal end of the transporting slag tube, and a power unit for
driving the transporting slag screw rod to rotate.
5. The device of claim 1, wherein the plurality of ration chambers includes at least
two ration chambers with different volumes.
6. The device of any one of claims 1-5, wherein the compressed gas supply device includes
a gas tank, a first pressure branch and a second pressure branch at least connected
to the gas tank, and a gas distribution tube connected to the first pressure branch
and the second pressure branch.
7. The device of claim 6, wherein the gas distribution tube includes a plurality of pressure
distribution tubes, a plurality of compressed air branch tubes connected to each of
the pressure distribution tubes, a plurality of compressed air branch ducts connected
to each of the compressed air branch tubes; wherein each of the pressure distribution
tubes has the control valves set therein, and each compressed air branch ducts is
communicated with corresponding ration chambers.
8. The device of claim 7, wherein open frequency of the control valves and/or speed of
the spiral conveyor for conveying the flux slag are controlled by the controller.
9. A method for adding flux slag to mold of continuous casting machine, comprising following
steps:
1) arranging a group of slag spraying ports along a long side of a copper mouth of
the mold; and
2) causing the flux slag being uniformly distributed in the range of a section of
a molten steel of the mold where the flux slag falls by adjusting the pressure of
a compressed gas which blows the flux slag during each of the slag spraying ports
spraying slag.
10. The method of claim 9, wherein a pressure value of the compressed gas is adjustable
between a first predetermined pressure value and a second predetermined pressure value;
wherein the compressed gas of the first predetermined pressure value causes the flux
slag to fall on one surface of the molten steel of the mold which is close to an inner
arc and is; the compressed gas of the second predetermined pressure value causes the
flux slag to fall on one surface of the molten steel of the mold which is close to
an outside arc.
11. The method of claim 10, wherein the compressed gas has a first predetermined pressure
vale, a second predetermined pressure, and a third predetermined pressure vale between
the first and second predetermined pressure vales.
12. The method of claim 10 or 11, wherein the different predetermined pressure vales of
the compressed gas are implemented through corresponding pressure adjusting branches,
and opening or closing of each pressure controlling branch is controlled by control
valves of the each pressure controlling branch.
13. The method of claim 12, wherein each pressure adjusting branch is connected to the
same gas supplying source, and size of the pressure in each pressure adjusting branch
is realized by a pressure reducing valve reducing pressure.
14. The method of any one of claims 9-11, further comprising dividing each group of spraying
slag ports into a plurality of small groups and distributing the compressed gas to
each small group of spraying slag ports through distributing conduits, wherein a valve
is respectively set in each of the distributing conduits to control opening or closing
of the each of the distributing conduits, and the compressed gas is alternately supplied
to each small group of spraying slag ports by controlling the open frequency of the
valves.
15. The method of claim 14, wherein a supplying time of compressed gas of each small group
of spraying slag ports is determined by a time interval between opening and closing
the valves of the distributing conduits.