Field of the Invention
[0001] The present invention relates to actuating cylinders domain, in particular to a cylinder
body of an actuating cylinder, a method of manufacturing the cylinder body, and a
concrete pumping apparatus having the cylinder body.
Background of the Invention
[0002] Actuating cylinders usually include hydraulic cylinders and air cylinders, and are
applied widely. For example, concrete pumping apparatuses (e.g., concrete pump trucks)
usually have a hydraulic cylinder to drive a concrete cylinder to reciprocate and
thereby deliver concrete. Presently, in concrete applications, more and more concrete
delivery work is accomplished with concrete pump trucks. As the rapid development
of the concrete machinery technology, it is required to deliver concrete to higher
and farther locations in engineering work, and the materials for components of concrete
machinery (e.g., boom, hydraulic cylinder, etc.) are developed towards a trend of
light weight and high strength. The cylinder body of any existing hydraulic cylinder
is made of alloy steel material solely. Owing to the high density of alloy steel,
the self-weight of the hydraulic cylinder is high; therefore, the boom length of the
concrete pump truck is severely limited, and the development of concrete pump trucks
is limited. It is of great significance to develop a cylinder body of a hydraulic
cylinder that can meet the strength requirement of concrete pump trucks and is light
in weight, so as to extend the boom length of concrete pump trucks. In addition, the
cylinder body of an actuating cylinder made of alloy steel solely has drawbacks such
as low fatigue resistance, low corrosion resistance and high thermal expansibility,
which limit the application of the actuating cylinder.
Summary of the Invention
[0003] An object of the present invention is to provide a cylinder body of an actuating
cylinder, which has high strength, light weight, high fatigue resistance, high corrosion
resistance and low thermal expansibility, to widen the application range of the actuating
cylinder. Another object of the present invention is to provide a method of manufacturing
the cylinder body of an actuating cylinder.
[0004] To attain the above objects, in an aspect, the present invention provides a cylinder
body of an actuating cylinder, which comprises an inner lining layer and a first fibrous
composite layer bonded on the outside of the inner lining layer, wherein, the first
fibrous composite layer is composited from a first fibrous material and a substrate
resin material.
[0005] In another aspect, the present invention provides a concrete pumping apparatus, wherein,
a cylinder body of a pumping cylinder of the concrete pumping apparatus is the cylinder
body of an actuating cylinder described above.
[0006] In another aspect, the present invention provides a method of manufacturing a cylinder
body of an actuating cylinder, comprising: an inner lining layer forming step: forming
an inner lining layer; and, a bonding step: forming a first fibrous composite layer
with a first fibrous material and a substrate resin material and bonding the first
fibrous composite layer on the outside of the inner lining layer.
[0007] In the above technical scheme, the cylinder body of an actuating cylinder comprises
an inner lining layer and a first fibrous composite layer; owing to the fact that
the fibrous composite has lighter weight when compared with existing metallic materials
with the same strength as well as has high fatigue resistance, high corrosion resistance
and low thermal expansibility, the cylinder body of an actuating cylinder has high
strength, light weight, high fatigue resistance, high corrosion resistance and low
thermal expansibility; therefore, the actuating cylinder can be applied more widely.
In addition, since the inner lining layer of the cylinder body can meet the requirements
for leak tightness of the inner wall of the cylinder body and wear resistance when
contacts with the piston, the service performance of the cylinder body will not be
degraded. Other characteristics and advantages of the present invention will be further
detailed in the embodiments hereunder.
Brief Description of the Drawings
[0008] The accompanying drawings are provided here to facilitate further understanding on
the present invention, and are a part of this document. They are used together with
the following embodiments to explain the present invention, but shall not be comprehended
as constituting any limitation to the present invention. Among the drawings:
Figure 1 is a sectional view of a cylinder body of an actuating cylinder according
to an embodiment of the present invention;
Figure 2 is a partially enlarged view of part A shown in Figure 1;
Figure 3 is a schematic diagram of the overall structure of the inner lining layer
of the cylinder body of an actuating cylinder shown in Figure 1.
Brief Description of the Symbols
[0009]
| 1 |
inner lining layer; |
2 |
first fibrous composite layer; |
| 3 |
insulating layer; |
4 |
second fibrous composite layer; |
| 11 |
middle part; |
12 |
end part; |
| 13 |
transition part; |
131 |
ramp part; |
| 132 |
raised part |
|
|
Detailed Description of the Embodiments
[0010] Hereunder the embodiments of the present invention will be detailed, with reference
to the accompanying drawings. It should be appreciated that the embodiments described
here are only provided to describe and explain the present invention, but shall not
be deemed as constituting any limitation to the present invention. As shown in Figure
1 and Figure 2, in an embodiment, the present invention provides a cylinder body of
an actuating cylinder, which comprises an inner lining layer 1 and a first fibrous
composite layer 2 bonded on the outside of the inner lining layer 1.
[0011] In the above technical scheme, the cylinder body of an actuating cylinder comprises
an inner lining layer 1 and a first fibrous composite layer 2; owing to the fact that
the fibrous composite has lighter weight when compared with existing metallic materials
with the same strength as well as has high fatigue resistance, high corrosion resistance
and low thermal expansibility, the cylinder body of an actuating cylinder has high
strength, light weight, high fatigue resistance, high corrosion resistance and low
thermal expansibility; therefore, the actuating cylinder can be applied more widely.
In addition, since the inner lining layer of the cylinder body can meet the requirements
for leak tightness of the inner wall of cylinder body and wear resistance when contacts
with the piston, the service performance of the cylinder body will not be degraded.
The inner lining layer 1 may be made of an appropriate material that can meet the
requirements for leak tightness of the inner wall of cylinder body and wear resistance
when contacts with the piston; for example, the inner lining layer 1 may be made of
an existing metallic material that is usually used to manufacture a cylinder body.
[0012] The fibrous composite material mentioned in the present invention (e.g., the fibrous
composite material of the first fibrous composite layer 2 or second fibrous composite
layer 4) refers to a material composited from a fibrous material and a substrate resin
material, i.e., a fiber reinforced resin composite material.
[0013] The first fibrous composite layer 2 may be composited from any appropriate fibrous
material and substrate resin material; for example, the fibrous material may be selected
from one or more of fiber glass, aramid fiber, super-high molecular weight polyethylene
fiber and carbon fiber. Preferably, the first fibrous composite layer 2 is made of
a carbon fiber material and a substrate resin material. Carbon fiber composite materials
have advantages such as light weight, high strength, high rigidity, high damping performance,
high fatigue resistance, high corrosion resistance, etc. The carbon fiber material
may be composited with a variety of substrate resin materials to form carbon fiber
composite materials; for example, the substrate resin material may be unsaturated
polyester, vinyl resin, phenolic resin, etc., preferably an epoxy resin system that
has good machinability, high strength and high ductility. Among the fibrous materials
that can be used to form the first fibrous composite layer 2, some are electroconductive
materials, and others are non-electroconductive materials; in case the inner lining
layer 1 and the first fibrous composite layer 2 are made of electroconductive materials
(e.g., the inner lining layer 1 is made of a metallic material, and the first fibrous
composite layer is made of a carbon fiber composite material), an insulating layer
3 is preferably arranged between the inner lining layer 1 and the first fibrous composite
layer 2. Thus, the electro-chemical corrosion between the inner lining layer 1 and
the first fibrous composite layer 2 can be prevented, and the service life of the
cylinder body of an actuating cylinder can be prolonged. The insulating layer 3 may
be made of any appropriate insulating material; for example, it may be selected from
one or more of fiber glass, aramid fiber, super-high molecular weight polyethylene
fiber and basalt fiber. For example, the insulating layer 3 may be bonded to the inner
lining layer 1 by a high-toughness adhesive.
[0014] Preferably, as shown in Figure 1 and Figure 2, a second fibrous composite layer 4
is arranged on the outside of the first fibrous composite layer 2. The second fibrous
composite layer 4 is helpful for improving impact resistance of the cylinder body
against external impacts. The second fibrous composite layer 4 may be composited from
any appropriate fibrous material and substrate resin material; for example, the fibrous
material may be selected from one or more of fiber glass, aramid fiber, super-high
molecular weight polyethylene fiber and basalt fiber. The substrate resin material
for the first fibrous composite layer 2 may be identical to or different from the
substrate resin material for the second fibrous composite layer 4.
[0015] The present invention doesn't involve any change to the overall shape of the cylinder
body of an actuating cylinder, which is to say, the overall shape of the cylinder
body of an actuating cylinder may be identical to the overall shape of the cylinder
body of any existing actuating cylinder; for example, the cylinder body of an actuating
cylinder may be generally in a hollow cylinder structure, with connecting thread and/or
an oil port arranged on both ends, wherein, the connecting thread is mainly designed
to connect an end cap of the actuating cylinder, and the oil port is mainly designed
to connect a working oil circuit of the actuating cylinder, so that the working oil
circuit can communicate with a working chamber within the cylinder body. The main
innovative ideal of the present invention lies in: the cylinder body comprises multiple
material layers, so as to improve the strength, corrosion resistance and fatigue resistance
of the cylinder body and decrease the weight and thermal expansibility of the cylinder
body. The multiple material layers of the cylinder body (e.g., the above-mentioned
inner lining layer 1, first fibrous composite layer 2, insulating layer 3 and second
fibrous composite layer 4) may have even thickness or uneven thickness respectively.
Preferably, as shown in Figure 1∼3, the inner lining layer 1 is generally in a cylindrical
shape, and comprises a middle part 11 and two end parts 12 at the sides of the middle
part 11, wherein, the thickness of the middle part 11 is smaller than the thickness
of each end part 12. The middle part 11 and two end parts 12 are arranged essentially
along the axial direction of the cylinder body, and the inner lining layer 1 is essentially
in a structure that is bigger at both ends and smaller in the middle, which is helpful
for processing and port arrangement, and provides fixing effect for the fibrous composite
material formed on the outside of the two end parts 12 and the middle part 11.
[0016] More preferably, a transition part 13 is arranged between each end part 12 and the
middle part 11, and the thickness of the transition part 13 transits from the thickness
of the end part 12 to the thickness of the middle part 11. With the transition part
13, stress concentration incurred by abrupt change of thickness can be prevented.
[0017] Preferably, an oil port and/or connecting thread is/are arranged on the end parts
12 of the inner lining layer 1, and the first fibrous composite layer 2 is arranged
on the outside of the middle part 11 and transition part 13 of the inner lining layer
1. Thus, the oil port and/or connecting thread of the cylinder body can be pre-formed
on the end parts 12 as required, and the oil part and/or connecting thread is/are
not covered by the first fibrous composite layer 2, insulating layer 3 and second
fibrous composite layer 4 (if any); therefore, the cylinder body has high machinability,
and it is unnecessary to work out additional oil port and/or connecting thread on
any other material layer (e.g., the first fibrous composite layer 2, insulating layer
3 and second fibrous composite layer 4) except for the inner lining layer 1.
[0018] The transition part 13 may have a ramp profile with uniformly transiting thickness,
or a staged profile with thickness transiting by stages, or any other appropriate
profile. More preferably, as shown in Figure 1∼3, the transition part 13 comprises
a ramp part 131 and a raised part 132 arranged on the ramp part 131, wherein, the
thickness of the ramp part 131 transits uniformly from the thickness of the end part
12 to the thickness of the middle part 11. The raised part 132 is helpful for bonding
between the inner lining layer 1 and other material layers (e.g., the first fibrous
composite layer 2) and improving the bonding force, and can prevent the inner lining
layer 1 from separated from other material layers. The raised part 132 may be one
raised continuous ring or multiple raised continuous rings (one continuous ring as
shown in Figure 3), or may be a plurality of discrete raised bars or raised ribs.
[0019] In another aspect, the present invention provides a concrete pumping apparatus, wherein,
a cylinder body of a pumping cylinder of the concrete pumping apparatus is the cylinder
body of an actuating cylinder described above.
[0020] In another aspect, the present invention provides a method of manufacturing a cylinder
body of an actuating cylinder, comprising: an inner lining layer forming step: forming
an inner lining layer 1; and, a bonding step: forming a first fibrous composite layer
2 with a first fibrous material and a substrate resin material and bonding the first
fibrous composite layer 2 on the outside of the inner lining layer 1.
[0021] In the above technical scheme, the cylinder body of an actuating cylinder comprises
an inner lining layer 1 and a first fibrous composite layer 2; owing to the fact that
the fibrous composite has lighter weight when compared with existing metallic materials
with the same strength as well as has high fatigue resistance, high corrosion resistance
and low thermal expansibility, the cylinder body of an actuating cylinder has high
strength, light weight, high fatigue resistance, high corrosion resistance and low
thermal expansibility; therefore, the actuating cylinder can be applied more widely.
In addition, since the inner lining layer of the cylinder body can meet the requirements
for leak tightness of the inner wall of cylinder body and wear resistance when contacts
with the piston, the service performance of the cylinder body will not be degraded.
The inner lining layer 1 may be made of an appropriate material that can meet the
requirements for leak tightness of the inner wall of cylinder body and wear resistance
when contacts with the piston; for example, the inner lining layer 1 may be made of
an existing metallic material that is usually used to manufacture a cylinder body.
[0022] The first fibrous composite layer 2 may be composited from any appropriate fibrous
material and substrate resin material; for example, the fibrous material may be selected
from one or more of fiber glass, aramid fiber, super-high molecular weight polyethylene
fiber and carbon fiber. Preferably, in the bonding step, the first fibrous composite
layer 2 is formed from a carbon fiber and a substrate resin. Carbon fiber composite
materials have advantages such as light weight, high strength, high rigidity, high
damping performance, high fatigue resistance, high corrosion resistance, etc. The
carbon fiber material may be composited with a variety of substrate resin materials
to form carbon fiber composite materials; for example, the substrate resin material
may be unsaturated polyester, vinyl resin, phenolic resin, etc., preferably an epoxy
resin system that has good machinability, high strength and high ductility. Among
the fibrous materials that can be used to form the first fibrous composite layer 2,
some are electroconductive materials, and others are non-electroconductive materials.
Preferably, in the inner lining layer forming step, the inner lining layer 1 is formed
from a electroconductive material (e.g., a metallic material, more specifically, 27SiMn);
in the bonding step, the first fibrous composite layer 2 is formed from a electroconductive
material (e.g., a carbon fiber composite material); in addition, the manufacturing
method further comprises an insulating layer forming step: forming an insulating layer
3 on the outside of the inner lining layer 1 before the bonding step, so that the
insulating layer 3 is arranged between the inner lining layer 1 and the first fibrous
composite layer 2. Thus, the electro-chemical corrosion between the inner lining layer
1 and the first fibrous composite layer 2 can be prevented, and the service life of
the cylinder body of an actuating cylinder can be prolonged. The insulating layer
3 may be made of any appropriate insulating material; for example, it may be selected
from one or more of fiber glass, aramid fiber, super-high molecular weight polyethylene
fiber and basalt fiber. For example, the insulating layer may be formed by wrapping
a piece of fiber cloth (e.g., glass fiber cloth) on the outside of the inner lining
layer 1. For example, the insulating layer 3 may be bonded to the inner lining layer
1 by a high-toughness adhesive.
[0023] The first fibrous composite layer may be formed and bonded in an appropriate manner;
preferably, in the bonding step, a bundle of the first fibrous material dipped with
the substrate resin is wound on the outside of the inner lining layer 1 by a wet winding
process. Specifically, a bundle of continuous first fiber is dipped with prepared
epoxy resin, and then wound to the fixed inner lining layer 1 through a winding guide
head of a winding machine, so as to accomplish fiber winding. A product obtained by
wet winding gives full play to the properties of the composite material; therefore,
the product is afforded with required structural performance as far as possible, and
the forming cost is low and the process is relatively simple.
[0024] More preferably, when the bundle of the first fibrous composite material is wound,
the angle between the extension direction of the bundle of the first fibrous composite
material and the axial line of the cylinder body is 70°∼90°, i.e., the winding angle
of the first fibrous composite material is 70°∼90°. Owing to the fact that the stress
on the cylinder body in radial direction is usually 2-3 times of the stress on the
cylinder body in circumferential direction, the wrapping angle is helpful for improving
the radial strength of the cylinder body (i.e., improving the mechanical properties
of the cylinder body) and reducing the overall thickness of the cylinder body, and
thereby can provide favorable fatigue resistance performance for the cylinder body.
Preferably, the manufacturing method further comprises: forming a second fibrous composite
layer 4 on the outside of the first fibrous composite layer 2. The second fibrous
composite layer 4 is helpful for improving impact resistance of the cylinder body
against external impacts. The second fibrous composite layer 4 may be composited from
any appropriate fibrous material and substrate resin material; for example, the fibrous
material may be selected from one or more of fiber glass, aramid fiber, super-high
molecular weight polyethylene fiber and basalt fiber. For example, the second fibrous
composite layer 4 may be formed by wrapping a piece of cloth made of a second fibrous
material on the outside of the first fibrous composite layer 2 so as to make the substrate
resin in the first fibrous composite layer 2 infiltrate into the cloth made of a second
fibrous material. Of course, when the second fibrous composite layer 4 is formed,
substrate resin may be added on the second fibrous material cloth additionally, instead
of utilizing the substrate resin in the first fibrous composite layer 2.
[0025] The present invention doesn't involve any change to the overall shape of the cylinder
body of an actuating cylinder, which is to say, the overall shape of the cylinder
body of an actuating cylinder may be identical to the overall shape of the cylinder
body of any existing actuating cylinder; for example, the cylinder body of an actuating
cylinder may be generally in a hollow cylinder structure, with connecting thread and/or
an oil port arranged on both ends. The main innovative ideal of the present invention
lies in: the cylinder body comprises multiple material layers, so as to improve the
strength, corrosion resistance and fatigue resistance of the cylinder body and decrease
the weight and thermal expansibility of the cylinder body. The multiple material layers
of the cylinder body (e.g., the above-mentioned inner lining layer 1, first fibrous
composite layer 2, insulating layer 3 and second fibrous composite layer 4) may have
even thickness or uneven thickness respectively. Preferably, the inner lining layer
forming step comprises: providing a blank of the inner lining layer that is generally
in a hollow cylinder shape; and, a machining procedure: reducing the thickness of
a part of the blank of the inner lining layer by machining (e.g., turning), so that
the inner lining layer 1 is formed to have a middle part 11 and two end parts 12 at
the sides of the middle part 11, wherein, the thickness of the middle part 11 is smaller
than the thickness of each end part 12. The middle part 11 and two end parts 12 are
arranged essentially along the axial direction of the cylinder body, and the inner
lining layer 1 is essentially in a structure that is bigger at both ends and smaller
in the middle which is helpful for processing and port arrangement, and provides fixing
effect for the fibrous composite material formed on the outside of the two end parts
12 and the middle part 11.
[0026] More preferably, in the machining procedure, a transition part 13 is formed between
each end part 12 and the middle part 11, and the thickness of the transition part
13 transits from the thickness of the end part 12 to the thickness of the middle part
11. With the transition part 13, stress concentration incurred by abrupt change of
thickness can be prevented.
[0027] More preferably, in the inner lining layer forming step, an oil port and/or connecting
thread is/are formed on the end parts 12 of the inner lining layer 1, and in the bonding
step, the first fibrous composite layer 2 is bonded on the outside of the middle part
11 and transition parts 13 of the inner lining layer 1. Thus, the oil port and/or
connecting thread of the cylinder body can be pre-formed on the end parts 12 as required,
and the oil part and/or connecting thread is/are not covered by the first fibrous
composite layer 2, insulating layer 3 and second fibrous composite layer 4 (if any);
therefore, the cylinder body has high machinability, and it is unnecessary to work
out additional oil port and/or connecting thread on any other material layer (e.g.,
the first fibrous composite layer 2, insulating layer 3 and second fibrous composite
layer 4) except for the inner lining layer 1.
[0028] The transition part 13 may have a ramp profile with uniformly transiting thickness
or a staged profile with thickness transiting by stages, or any other appropriate
profile. Preferably, in the machining procedure, the transition part 13 is formed
to have a ramp part 131 and a raised part 132 arranged on the ramp part 131, wherein,
the thickness of the ramp part 131 transits uniformly from the thickness of the end
part 12 to the thickness of the middle part 11. The raised part 132 is helpful for
bonding between the inner lining layer 1 and other material layers (e.g., the first
fibrous composite layer 2) and improving the bonding force, and can prevent the inner
lining layer 1 from separated from other material layers. The raised part 132 may
be one raised continuous ring or multiple raised continuous rings (one continuous
ring as shown in Figure 3), or may be a plurality of discrete raised bars or raised
ribs.
[0029] More preferably, the inner lining layer forming step further comprises: a sand blasting
procedure: carrying out sand blasting on the outer surface of the inner lining layer
1 formed in the machining procedure, to increase roughness of the outer surface of
the inner lining layer 1. In that way, the bonding force between the inner lining
layer 1 and other material layers (e.g., insulating layer 3, first fibrous composite
layer 2, etc.) can be increased.
[0030] Hereunder the manufacturing process of the cylinder body will be described briefly
taking the embodiment of cylinder body of an actuating cylinder shown in Figure 1∼3
as an example.
(1) Forming the inner lining layer 1 shown in Figure 3 by machining;
(3) Bonding a piece of glass fiber cloth on the outside of the middle part 11 of the
inner lining layer 1 by a high-toughness adhesive, to form an insulating layer 3;
(3) Forming a first fibrous composite layer 2 on the outside of the insulating layer
3 and the transition part 13 of the inner lining layer 1 by wet winding;
(4) Wrapping a piece of glass fiber cloth on the outside of the first fibrous composite
layer 2 so as to control the substrate resin in the first fibrous composite layer
2 infiltrate into the glass fiber cloth, to form a second fibrous composite layer
4;
(5) Loading the cylinder body into a baking oven, to accomplish forming by thermosetting.
[0031] The cylinder body of an actuating cylinder and the method of manufacturing the cylinder
body described above are applicable to different types of actuating cylinders, including
hydraulic cylinders, gas cylinders, etc.; for example, the cylinder body may be widely
used as a cylinder body of an actuating cylinder in different engineering machines,
such as concrete pump trucks, lifters, excavators, fire engines, overhead working
trucks, environmental sanitation vehicles, etc.
[0032] While some preferred embodiments of the present invention are described above with
reference to the accompanying drawings, the present invention is not limited to the
details in those embodiments. Those skilled in the art can make modifications and
variations to the technical scheme of the present invention, without departing from
the spirit of the present invention. However, all these modifications and variations
shall be deemed as falling into the protected domain of the present invention.
[0033] In addition, it should be appreciated that the technical features described in the
above embodiments can be combined in any appropriate manner, provided that there is
no conflict among the technical features in the combination. To avoid unnecessary
iteration, such possible combinations will not be described here in the present invention.
[0034] Moreover, the different embodiments of the present invention can be combined freely
as required, as long as the combinations don't deviate from the ideal and spirit of
the present invention. However, such combinations shall also be deemed as falling
into the scope disclosed in the present invention.
1. A cylinder body of an actuating cylinder, comprising an inner lining layer (1) and
a first fibrous composite layer (2) bonded on the outside of the inner lining layer
(1), wherein the first fibrous composite layer (2) is composited from a first fibrous
material and a substrate resin material.
2. The cylinder body of an actuating cylinder according to claim 1, wherein, the inner
lining layer (1) is made of a metallic material.
3. The cylinder body of an actuating cylinder according to claim 1, wherein, the inner
lining layer (1) and the first fibrous composite layer (2) are made of a electroconductive
material, and an insulating layer (3) is arranged between the inner lining layer (1)
and the first fibrous composite layer (2).
4. The cylinder body of an actuating cylinder according to claim 1, wherein, the first
fibrous composite layer (2) is composited from a carbon fiber material and a substrate
resin material.
5. The cylinder body of an actuating cylinder according to claim 1, wherein, a second
fibrous composite layer (4) is arranged on the outside of the first fibrous composite
layer (2), and the second fibrous composite layer (4) is composited from a second
fibrous material and a substrate resin material.
6. The cylinder body of an actuating cylinder according to any of claims 1∼5, wherein,
the inner lining layer (1) is generally in a cylindrical shape, and comprises a middle
part (11) and two end parts (12) at the sides of the middle part (11), and the thickness
of the middle part (11) is smaller than the thickness of each end part (12).
7. The cylinder body of an actuating cylinder according to claim 6, wherein, a transition
part (13) is respectively arranged between each end part (12) and the middle part
(11), and the thickness of the transition part (13) transits from the thickness of
the end part (12) to the thickness of the middle part (11).
8. The cylinder body of an actuating cylinder according to claim 7, wherein, the transition
part (13) comprises a ramp part (131) and a raised part (132) arranged on the ramp
part (131), and the thickness of the ramp part (131) transits uniformly from the thickness
of the end part (12) to the thickness of the middle part (11).
9. The cylinder body of an actuating cylinder according to claim 7, wherein, an oil port
and/or connecting thread is/are arranged on the end parts (12) of the inner lining
layer (1), and the first fibrous composite layer (2) is arranged on the outside of
the middle part (11) and the transition part (13) of the inner lining layer (1).
10. A concrete pumping apparatus, wherein, a cylinder body of a pumping cylinder of the
concrete pumping apparatus is the cylinder body of an actuating cylinder as set forth
in any of claims 1∼9.
11. A method of manufacturing a cylinder body of an actuating cylinder, comprising:
an inner lining layer forming step: forming an inner lining layer (1); and
a bonding step: forming a first fibrous composite layer (2) composited from a first
fibrous material and a substrate resin material, and bonding the first fibrous composite
layer (2) on the outside of the inner lining layer (1).
12. The method of manufacturing a cylinder body of an actuating cylinder according to
claim 11, wherein, in the inner lining layer forming step, the inner lining layer
(1) is formed from a metallic material.
13. The method of manufacturing a cylinder body of an actuating cylinder according to
claim 11, wherein:
in the inner lining layer forming step, the inner lining layer (1) is formed from
a electroconductive material;
in the bonding step, the first fibrous composite layer (2) is formed from a electroconductive
material; and
the method further comprises an insulating layer forming step: forming an insulating
layer (3) on the outside of the inner lining layer (1) before the bonding step, so
that the insulating layer (3) is arranged between the inner lining layer (1) and the
first fibrous composite layer (2).
14. The method of manufacturing a cylinder body of an actuating cylinder according to
claim 11, wherein, in the bonding step, the first fibrous composite layer (2) is composited
from a carbon fiber material and a substrate resin material.
15. The method of manufacturing a cylinder body of an actuating cylinder according to
claim 11, wherein, in the bonding step, a bundle of the first fibrous material dipped
with the substrate resin is wound on the outside of the inner lining layer (1) by
a wet winding process.
16. The method of manufacturing a cylinder body of an actuating cylinder according to
claim 15, wherein, when the bundle of first fibrous material is wound, the angle between
the extension direction of the bundle of the first fibrous material and the axial
direction of the cylinder body is 70°∼90°.
17. The method of manufacturing a cylinder body of an actuating cylinder according to
claim 11, further comprising: forming a second fibrous composite layer (4) on the
outside of the first fibrous composite layer (2).
18. The method of manufacturing a cylinder body of an actuating cylinder according to
claim 17, wherein, the second fibrous composite layer (4) is formed by wrapping a
piece of cloth made of a second fibrous material on the outside of the first fibrous
composite layer (2) so as to make the substrate resin in the first fibrous composite
layer (2) infiltrate into the cloth made of a second fibrous material.
19. The method of manufacturing a cylinder body of an actuating cylinder according to
any of claims 11∼18, wherein, the inner lining layer forming step comprises:
providing a blank of the inner lining layer that is generally in a hollow cylinder
shape; and
a machining procedure: reducing the thickness of a part of the blank of the inner
lining layer by machining, so that the inner lining layer (1) is formed to have a
middle part (11) and two end parts (12) at the sides of the middle part (11), wherein,
the thickness of the middle part (11) is smaller than the thickness of each end part
(12).
20. The method of manufacturing a cylinder body of an actuating cylinder according to
claim 19, wherein, in the machining procedure, a transition part (13) is respectively
formed between each end part (12) and the middle part (11), and the thickness of the
transition part (13) transits from the thickness of the end part (12) to the thickness
of the middle part (11).
21. The method of manufacturing a cylinder body of an actuating cylinder according to
claim 20, wherein, in the machining procedure, the transition part (13) is formed
to have a ramp part (131) and a raised part (132) arranged on the ramp part (131),
and the thickness of the ramp part (131) transits uniformly from the thickness of
the end part (12) to the thickness of the middle part (11).
22. The method of manufacturing a cylinder body of an actuating cylinder according to
claim 20, wherein, the inner lining layer forming step further comprises a sand blasting
procedure, in the sand blasting procedure, carrying out sand blasting on the outer
surface of the inner lining layer (1) formed in the machining procedure, to increase
roughness of the outer surface of the inner lining layer (1).
23. The method of manufacturing a cylinder body of an actuating cylinder according to
claim 19, wherein:
in the inner lining layer forming step, an oil port and/or connecting thread is/are
formed on the end parts (12) of the inner lining layer (1);
in the bonding step, the first fibrous composite layer (2) is bonded on the outside
of the middle part (11) and transition parts (13) of the inner lining layer (1).