CN117662909A - Protection assembly of transmission pipeline and transmission pipeline system - Google Patents

Protection assembly of transmission pipeline and transmission pipeline system Download PDF

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Publication number
CN117662909A
CN117662909A CN202311490601.0A CN202311490601A CN117662909A CN 117662909 A CN117662909 A CN 117662909A CN 202311490601 A CN202311490601 A CN 202311490601A CN 117662909 A CN117662909 A CN 117662909A
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CN
China
Prior art keywords
transmission pipeline
inflatable
inflation
inflatable membrane
inflated
Prior art date
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Pending
Application number
CN202311490601.0A
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Chinese (zh)
Inventor
芮守祯
曹小康
贾正帅
何茂栋
董春辉
刘紫阳
胡文达
靳李富
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Beijing Jingyi Automation Equipment Co Ltd
Original Assignee
Beijing Jingyi Automation Equipment Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Beijing Jingyi Automation Equipment Co Ltd filed Critical Beijing Jingyi Automation Equipment Co Ltd
Priority to CN202311490601.0A priority Critical patent/CN117662909A/en
Publication of CN117662909A publication Critical patent/CN117662909A/en
Pending legal-status Critical Current

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Abstract

The invention relates to the technical field of heat preservation of liquid transmission pipelines of integrated circuit temperature control equipment, in particular to a protection component of a transmission pipeline and a transmission pipeline system. The protection assembly of the transmission pipeline according to the invention comprises: the inflatable diaphragm is used for forming an inflatable protection layer of the transmission pipeline, an inflatable cavity is arranged in the inflatable diaphragm, the inflatable diaphragm has an inflated state and a contracted state, in the inflated state, the inflatable cavity is inflated, and the inflatable diaphragm is inflated to be larger; in the contracted state, the inflatable cavity is deflated and the inflatable membrane is contracted. According to the protection component of the transmission pipeline, the transmission pipeline is protected by arranging the inflatable diaphragm, so that the influence of extrusion on the transmission pipeline can be effectively reduced. The inflatable diaphragm can be in an inflated state, an interval space is provided for the transmission pipeline through the inflatable cavity, and gas in the inflatable cavity can provide a good heat insulation environment for the transmission pipeline, so that the heat insulation effect of the transmission pipeline is improved, and the service life of the transmission pipeline is prolonged.

Description

Protection assembly of transmission pipeline and transmission pipeline system
Technical Field
The invention relates to the technical field of heat preservation of liquid transmission pipelines of integrated circuit temperature control equipment, in particular to a protection component of a transmission pipeline and a transmission pipeline system.
Background
With the development of technology, the transmission pipeline has wide application range in various industries, taking the integrated circuit manufacturing industry as an example, and with the development of integrated circuit manufacturing process, the temperature range of processes such as etching and the like is between-120 ℃ and 200 ℃, and the integrated circuit temperature control equipment needs to control the temperature of main process equipment through the transmission pipeline. The heat-insulating structure of the transmission pipeline adopts rubber-plastic heat-insulating cotton or aviation heat-insulating material and the like. In the process of transportation, laying and installation of the transmission pipeline, the situation that the heat insulation structure of the transmission pipeline is extruded is difficult to avoid, the heat insulation effect is reduced due to extrusion deformation of the heat insulation structure, condensed water is easy to generate in the transmission pipeline at low temperature, and carbonization of heat insulation materials is easy to cause particle pollution and the like at high temperature. And the transmission pipeline is usually arranged along the height of the floor, so that the maintenance transmission pipeline relates to high-altitude operation, and the maintenance and the replacement are inconvenient. If the thickness of the insulation structure is increased directly on the transmission pipeline, the cost is high.
Disclosure of Invention
The present invention is directed to solving at least one of the technical problems existing in the related art. Therefore, the invention provides a protection component of a transmission pipeline, which is used for solving the defect that a heat insulation structure is easy to extrude in the prior art.
The invention also provides a transmission pipeline system.
According to an embodiment of the first aspect of the present invention, a protection assembly for a transmission line includes:
the inflatable membrane is used for forming an inflatable protection layer of the transmission pipeline, an inflatable cavity is arranged in the inflatable membrane, the inflatable membrane has an inflated state and a contracted state, the inflatable cavity is inflated in the inflated state, and the inflatable membrane is inflated to be large; in the contracted state, the inflatable cavity is deflated and the inflatable membrane is contracted.
According to the protection component of the transmission pipeline, the transmission pipeline is protected by arranging the inflatable diaphragm, so that the influence of extrusion on the transmission pipeline can be effectively reduced. The inflatable diaphragm can be in an inflated state, an interval space is provided for the transmission pipeline through the inflatable cavity, the gas in the inflatable cavity can provide a good heat insulation environment for the transmission pipeline, and the heat insulation effect of the transmission pipeline is improved, so that the service life of the transmission pipeline is prolonged, the maintenance cost is reduced, and the heat insulation requirement of liquid transmission of the integrated circuit temperature control equipment is met. In the transportation or storage state, the inflatable membrane can be in a contracted state, so that the occupied space and the occupied space are reduced.
According to one embodiment of the invention, the protection assembly of the transfer line further comprises an air pump adapted to supply air to the inflation lumen to switch the inflation diaphragm between the inflated state and the contracted state.
According to one embodiment of the invention, in the inflated state, the air pump causes a continuous flow of gas from the inflation chamber.
According to an embodiment of the present invention, the gas in the air pump may be at least one of dry air and nitrogen.
According to one embodiment of the invention, the inflatable membrane is provided with an inflatable cavity, and the inflatable cavity is communicated with the inflatable ring.
According to one embodiment of the invention, the number of the air charging openings is even, and the air charging openings are symmetrically arranged along the central axis of the mounting ring.
According to one embodiment of the invention, the air charging port is provided with an air valve, and the air valve controls the on-off of the air charging cavity.
According to a second aspect of the present invention, there is provided a transmission line system including:
a transmission line;
the protection component of the transmission pipeline is characterized in that the inflatable diaphragm is sleeved on the transmission pipeline.
According to one embodiment of the invention, the transfer line system further comprises a thermal insulation structure disposed between the line and the inflatable membrane.
According to one embodiment of the invention, the thermal insulation structure is at least one of a fiber material thermal insulation structure, an organic plastic thermal insulation structure and a rubber plastic thermal insulation structure.
Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention.
Drawings
In order to more clearly illustrate the invention or the technical solutions of the prior art, the following description will briefly explain the drawings used in the embodiments or the description of the prior art, and it is obvious that the drawings in the following description are some embodiments of the invention, and other drawings can be obtained according to the drawings without inventive effort for a person skilled in the art.
FIG. 1 is a schematic illustration of an assembled configuration of an inflatable membrane and a transfer line provided in one embodiment of the present invention;
FIG. 2 is a schematic cross-sectional view of an inflatable membrane and transfer line in an inflated state, according to one embodiment of the present invention;
FIG. 3 is a schematic cross-sectional view of an inflatable membrane in a contracted state and a transfer line provided by one embodiment of the present invention;
FIG. 4 is a schematic diagram of an assembled structure of a transmission pipeline system according to an embodiment of the present invention;
FIG. 5 is a schematic view of a deformed frame sleeved on a transmission pipeline and in an open state according to another embodiment of the present invention;
FIG. 6 is a schematic view of a deformed frame sleeved on a transmission pipeline and in a contracted state according to another embodiment of the present invention;
FIG. 7 is a schematic view of a partially enlarged structure at A provided in FIG. 5;
FIG. 8 is a schematic view of a connection assembly according to another embodiment of the present invention;
FIG. 9 is a schematic cross-sectional view of a connection assembly according to another embodiment of the present invention connected to another connection assembly;
FIG. 10 is a schematic view of a connection board according to another embodiment of the present invention;
fig. 11 is a schematic structural view of a fixing member mounted to a deformation frame according to another embodiment of the present invention.
Reference numerals:
10. an inflatable membrane; 11. an air-filling cavity;
20. an air pump;
30. a mounting ring; 31. an inflation inlet; 32. an air valve;
100. a deformation frame; 101. a protection space; 110. a connection assembly; 111. a connecting plate; 112. a connecting member; 113. a mounting hole; 114. clamping springs; 115. a limit boss; 116. an elastic member; 117. a limit step; 118. a stop block; 119. a limit groove;
120. a connecting ring;
130. a support member;
200. a fixing member;
300. and a transmission pipeline.
Detailed Description
Embodiments of the present invention are described in further detail below with reference to the accompanying drawings and examples. The following examples are illustrative of the invention but are not intended to limit the scope of the invention.
In the description of the embodiments of the present invention, it should be noted that the terms "center", "longitudinal", "lateral", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. indicate orientations or positional relationships based on the orientations or positional relationships shown in the drawings, are merely for convenience in describing the embodiments of the present invention and simplifying the description, and do not indicate or imply that the apparatus or elements referred to must have a specific orientation, be configured and operated in a specific orientation, and thus should not be construed as limiting the embodiments of the present invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and are not to be construed as indicating or implying relative importance.
In the description of the embodiments of the present invention, it should be noted that, unless explicitly specified and limited otherwise, the terms "connected" and "connected" are to be construed broadly, and may be, for example, fixed or removable, wherein the fixed connection may include an integral connection; can be mechanically or electrically connected; can be directly connected or indirectly connected through an intermediate medium. The specific meaning of the above terms in embodiments of the present invention will be understood in detail by those of ordinary skill in the art.
In embodiments of the invention, unless expressly specified and limited otherwise, a first feature "up" or "down" on a second feature may be that the first and second features are in direct contact, or that the first and second features are in indirect contact via an intervening medium. Moreover, a first feature being "above," "over" and "on" a second feature may be a first feature being directly above or obliquely above the second feature, or simply indicating that the first feature is level higher than the second feature. The first feature being "under", "below" and "beneath" the second feature may be the first feature being directly under or obliquely below the second feature, or simply indicating that the first feature is less level than the second feature.
In the description of the present specification, a description referring to terms "one embodiment," "some embodiments," "examples," "specific examples," or "some examples," etc., means that a particular feature, structure, material, or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the embodiments of the present invention. In this specification, schematic representations of the above terms are not necessarily directed to the same embodiment or example. Furthermore, the particular features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples. Furthermore, the different embodiments or examples described in this specification and the features of the different embodiments or examples may be combined and combined by those skilled in the art without contradiction.
Referring to fig. 1 to 3, the protection component of the transmission pipeline 300 according to the embodiment of the first aspect of the present invention includes an inflatable membrane 10, the inflatable membrane 10 is used to form an inflatable protection layer of the transmission pipeline 300, an inflatable chamber 11 is disposed inside the inflatable membrane 10, the inflatable membrane 10 has an inflated state and a contracted state, in the inflated state, the inflatable chamber 11 is inflated, and the inflatable membrane 10 expands; in the contracted state, the inflation lumen 11 is deflated and the inflation diaphragm 10 is contracted.
According to the protection component of the transmission pipeline 300, the transmission pipeline 300 is protected by arranging the inflatable membrane 10, so that the influence of extrusion on the transmission pipeline 300 can be effectively reduced. The inflatable membrane 10 can be in an inflated state, an interval space is provided for the transmission pipeline 300 through the inflatable cavity 11, the gas in the inflatable cavity 11 can provide a good heat insulation environment for the transmission pipeline 300, and the heat insulation effect of the transmission pipeline 300 is improved, so that the service life of the transmission pipeline 300 is prolonged, the maintenance cost is reduced, and the heat insulation requirement of liquid transmission of the integrated circuit temperature control equipment is met. In the transport or storage state, the inflatable membrane 10 may also be in a contracted state, reducing floor and space occupation.
It can be appreciated that the inflation cavity 11 is inflated, so that the inflation diaphragm 10 can expand greatly, the transmission pipeline 300 can be completely wrapped by the inflation protecting layer, the inflation diaphragm 10 can form an inflation protecting layer around the transmission pipeline 300, and the inflation protecting layer can effectively absorb and disperse external extrusion force, so that the influence of external factors such as impact, extrusion or abrasion on the transmission pipeline 300 can be effectively reduced. Meanwhile, the gas in the air filling cavity 11 can provide a good heat insulation environment for the transmission pipeline 300, the heat loss can be effectively reduced in the heat insulation environment, and the heat insulation effect of the transmission pipeline 300 is improved. For liquid transmission of the integrated circuit temperature control equipment, the improvement of the heat preservation effect can ensure the temperature stability of the liquid in the transmission process, thereby ensuring the normal operation of the integrated circuit. Even if the heat insulating material provided on the outside of the transfer line 300 is seriously damaged, the transfer line 300 can maintain a good heat insulating effect by the inflation chamber 11 of the inflation diaphragm 10. The problems of condensed water generated by the transmission pipeline 300 at low temperature, granular pollution generated by carbonization of the heat insulation material of the transmission pipeline 300 at high temperature and the like are avoided.
It will be appreciated that the inflatable membrane 10 may be reduced in space when it is in a contracted state. This is advantageous for transporting and storing the transfer piping, and more transfer piping 300 provided with the inflatable membrane 10 can be accommodated in a limited space, improving space utilization efficiency.
When the transmission pipeline 300 provided with the inflatable membrane 10 is installed, the contracted state of the inflatable membrane 10 enables the transmission pipeline 300 to be more flexible, different layout and configuration requirements can be more easily met, for example, when the transmission pipeline 300 needs to be installed at a relatively narrow installation position, the inflatable cavity 11 can be subjected to air leakage treatment, and part of air in the inflatable cavity 11 is discharged, so that the volume of the inflatable membrane 10 is reduced, the installation is simpler, and meanwhile, the protection effect can be achieved.
Referring to fig. 4, the protection assembly of the transmission line 300 further includes an air pump 20, and the air pump 20 is adapted to supply air to the inflation chamber 11 to switch the inflation diaphragm 10 between the inflated state and the contracted state according to an embodiment of the present invention.
It will be appreciated that automatic switching of the state of the inflatable membrane 10 may be achieved by the air pump 20 providing air to the inflatable chamber 11. The air pump 20 can rapidly inflate or deflate the inflation lumen 11, thereby rapidly switching the state of the inflation diaphragm 10. The state of the inflatable membrane 10 can be flexibly and rapidly adjusted according to actual requirements, for example, the inflatable membrane can be switched to a contracted state to reduce space occupation during transportation, and can be switched to an inflated state to provide protection during use.
According to one embodiment of the present invention, the air pump 20 continuously flows the air of the inflation chamber 11 in the inflated state. It will be appreciated that air has a low coefficient of thermal conductivity, but that air's thermal conductivity increases with increasing temperature, as high temperatures can cause increased movement of air molecules, thereby increasing the rate of heat transfer. The air pump 20 is arranged, so that the air in the air cavity can continuously flow, heat in the air is taken away, and the air in the air cavity can keep good heat insulation effect.
According to one embodiment of the present invention, the gas in the air pump 20 may be at least one of dry air and nitrogen. The dry air and nitrogen have good stability or inertness, are not easy to react with other substances, and are low in manufacturing cost, and are suitable for being used as the gas in the air charging chamber 11.
According to one embodiment of the invention, the protection assembly of the transmission line 300 further comprises a mounting ring 30, the mounting ring 30 is connected with the inflatable membrane 10, the mounting ring 30 is provided with an inflation inlet 31, and the inflation inlet 31 is communicated with the inflation cavity 11. It can be appreciated that the mounting ring 30 can provide support for the inflatable membrane 10, and the aperture of the mounting ring 30 is larger than that of the transmission pipeline 300, so that the inflatable membrane 10 can be conveniently sleeved on the transmission pipeline 300, and the process of installing and detaching the inflatable membrane 10 is more convenient and quick. The inflation port 31 provided on the mounting ring 30 communicates with the inflation chamber 11, and the air pump 20 can supply air to the inflation chamber 11 through the inflation port 31, so that the inflation diaphragm 10 is switched between the inflated state and the contracted state.
It will be appreciated that the inflation inlet 31 is provided on one side of the mounting ring 30 to facilitate connection of the air pump 20, so that the connection operation is simpler and the complexity of the connection is reduced. Meanwhile, when the air charging port 31 is concentrated at one side, the maintenance, inspection, replacement and the like operations are more convenient.
According to an embodiment of the present invention, the number of the air charge ports 31 is an even number, and the air charge ports 31 are symmetrically arranged along the central axis of the mounting ring 30. It will be appreciated that when the inflation ports 31 are provided in an even number and symmetrically, it is possible to ensure that the inflatable membrane 10 is uniformly stressed when inflated, so that the inflation of the inflatable membrane 10 is more balanced. Since the air charging openings 31 are symmetrically arranged, the mounting ring 30 is simpler to mount and more attractive.
In some embodiments, one of the symmetrically disposed inflation ports 31 is an air inlet and the other is a gas outlet.
According to one embodiment of the invention, the air charging port 31 is provided with an air valve 32, and the air valve 32 controls the on-off of the air charging chamber 11. The air valve 32 can control the air flow of the air charging cavity 11, when the air charging or the air discharging is needed to be stopped, the air valve 32 can rapidly cut off the air flow, the control accuracy is improved, and the operation is more convenient.
Referring to fig. 1 to 4, a transmission pipeline system according to a second embodiment of the present invention includes a transmission pipeline 300 and the protection component of the transmission pipeline 300, where the inflatable membrane 10 is sleeved on at least a portion of the transmission pipeline 300.
It should be noted that, since the transmission pipeline system of the present invention includes the protection component of the transmission pipeline 300, all the technical effects of the protection component of the transmission pipeline 300 are not described herein.
According to one embodiment of the invention, the transfer line system further comprises a thermal insulation structure arranged between the line and the inflatable membrane 10. It can be appreciated that the heat insulation structure can effectively reduce heat dissipation in the transmission pipeline system and ensure the stability of the temperature of the transmission medium. The expansion and contraction of materials such as the pipeline and the inflatable diaphragm 10 caused by temperature change are reduced, and the service life is prolonged.
According to one embodiment of the invention, the thermal insulation structure is at least one of a fibrous material thermal insulation structure, an organic plastic thermal insulation structure and a rubber plastic thermal insulation structure. It is understood that the fiber material, the organic plastic material and the rubber plastic material have low heat conductivity coefficient, can effectively reduce heat transfer and provide excellent heat preservation effect. And they are lightweight and do not place a weight burden on the transfer line 300. Meanwhile, the heat insulation material has good corrosion resistance, can resist the corrosion of most chemical substances, and ensures the long-term stability and effectiveness of the heat insulation structure.
In one embodiment, referring to fig. 5 and 6, the protection assembly of the transmission line 300 includes a deformation frame 100, where the deformation frame 100 is used to form a protection space 101 of the transmission line 300; the deformed frame 100 has an expanded state and a contracted state, and the protection space 101 is reduced during switching of the expanded state toward the contracted state; the protection space 101 increases during the switching of the contracted state toward the expanded state.
The deformation frame 100 can be switched between an open state and a contracted state, and in the contracted state, the deformation frame 100 can reduce the occupied space and space, and is convenient to transport. In the open state, the protection space 101 of the transmission pipeline 300 can be increased, the transmission pipeline 300 cannot be extruded in the laying and installing process, extrusion deformation of the heat insulation layer is avoided, the transmission pipeline 300 can maintain the original heat insulation effect without increasing the thickness of the heat insulation layer through simple structure setting, the damage possibility of the transmission pipeline 300 is further reduced, and the maintenance cost of a user is reduced.
It should be noted that, the protection space 101 formed by the deformation frame 100 may be circular, triangular or other shaped structures, as long as the cross section of the transmission pipeline 300 is completely located in the protection space 101. The user can adjust the shape and size of the protection space 101 of the deformation frame 100 according to the installation requirement.
It will be appreciated that the transfer line 300 may employ a deformed frame 100 in part and an inflatable membrane 10 in part, and is not particularly limited herein.
Referring to fig. 7 and 8, according to an embodiment of the present invention, the deformation frame 100 includes a plurality of connection assemblies 110, the plurality of connection assemblies 110 are sequentially connected to form a connection ring 120, and a protection space 101 is formed inside the connection ring 120. It will be appreciated that the configuration of the attachment ring 120 may provide overall stability. The annular structure can disperse external stress, improves the compression resistance and the tensile resistance of the frame, and ensures that the frame is more stable. The protection space 101 formed inside the connection ring 120 can effectively protect the internal transmission pipeline 300, the connection ring 120 can also resist partial external impact, a relatively safe environment is provided for the transmission pipeline 300, and the influence of the external environment on the internal transmission pipeline 300 is reduced.
Referring to fig. 8 and 9, according to an embodiment of the present invention, the connection assembly 110 includes a connection plate 111 and a connection member 112, the connection member 112 is connected to a first end of the connection plate 111, a second end of the connection plate 111 is provided with a mounting hole 113, and the mounting hole 113 is adapted to be rotatably connected to the connection member 112 of an adjacent connection assembly 110. It can be appreciated that the connection assemblies 110 in the connection ring 120 are sequentially connected end to end, the mounting hole 113 at the second end of each connection assembly 110 corresponds to the connection member 112 at the first end of the adjacent connection assembly 110, and the mounting hole 113 and the connection member 112 are rotationally connected, so that the deformed frame 100 has good deformation capability, and the shape and structure of the frame can be easily changed by adjusting the relative angle of the connection assemblies 110, so as to adapt to different application requirements.
It should be noted that, the connection between the connection board 111 and the connection component 112 may be a fixed connection or a detachable connection, where the fixed connection may include an integral connection, in other words, the connection board 111 and the connection component 112 may be separate components, or the connection component 112 may be integrally formed with the connection board 111.
In one embodiment, the connection plate 111 and the connection member 112 are separate members, respectively, and the connection plate 111 is provided at both a first end and a second end with a mounting hole 113, the mounting hole 113 at the first end of the connection plate 111 is used for mounting the connection member 112, and the mounting hole 113 at the second end of the connection plate 111 is used for connecting the connection member 112 of the connection assembly 110 assembled adjacent thereto.
Referring to fig. 7, 8 and 10, the connecting assembly 110 further includes a clamp spring 114, the first end of the connecting member 112 is connected to the connecting plate 111, the second end of the connecting assembly is provided with a limiting boss 115, and the clamp spring 114 is disposed between the limiting boss 115 and the corresponding connecting plate 111. It can be appreciated that, by arranging the snap spring 114 between the limiting boss 115 and the corresponding connecting plate 111, the connection stability between the connecting part 112 and the connecting plate 111 can be greatly enhanced, and the connecting assembly 110 can still maintain tight connection when being subjected to external force or vibration due to the elasticity of the snap spring 114 and the arrangement of the limiting boss 115, is not easy to loosen, and can effectively prevent the connecting part 112 from accidentally falling off from the connecting plate 111.
It will be appreciated that the design of the snap spring 114 allows for a simpler assembly process. When the assembly is carried out, the connecting part 112 is only required to be inserted into the connecting plate 111 of the adjacent connecting assembly 110 corresponding to the connecting part, and then the clamp spring 114 is placed between the limiting boss 115 and the connecting plate 111, so that the assembly can be completed. The design improves the assembly efficiency and reduces the production cost.
Referring to fig. 8 and 9, the connecting assembly 110 further includes an elastic member 116, and the elastic member 116 is disposed between the clamp spring 114 and the connecting plate 111.
It will be appreciated that the resilient member 116 may automatically adjust and compensate to some degree for dimensional changes between the mounting plates of two adjacent connection assemblies 110 to fill in small gaps between the connection members 112 and the connection plates 111, thereby enhancing the strength of the connection.
In one embodiment, referring to fig. 8 and 10, the connection board 111 includes a stop 118 and a limiting groove 119, wherein one of the stop 118 and the limiting groove 119 is disposed at a first end of the connection board 111, and the other is disposed at a second end of the connection board 111.
The stop 118 of the connecting plate 111 is matched with the limit groove 119 of the other connecting plate 111 to limit the rotation of the two connecting plates at 0-180 degrees, and the two limit grooves form a locking structure of the deformed frame 100 in a contracted state and an expanded state to prevent the disordered rotation of the connecting assembly 120.
In one embodiment, referring to fig. 8, the mounting hole 113 is provided with a limiting step 117, a first end of the elastic member 116 abuts against the limiting step 117, and a second end of the elastic member 116 abuts against the clamp spring 114. Through setting up spacing step 117, the elastic component 116 can accurately be positioned in mounting hole 113, can locate connecting component 112 and butt on spacing step 117 with the one end cover of elastic component 116 earlier, and the other end directly butt can accomplish the installation on jump ring 114, has effectively improved assembly efficiency.
Referring to fig. 5 and 7, according to an embodiment of the present invention, an upper end surface of the connection plate 111 of any one connection assembly 110 is in contact with a lower end surface of the connection plate 111 of an adjacent connection assembly 110. It will be appreciated that the stability of the connecting ring 120 so configured is greater and enables even and efficient transfer of force from one connecting assembly 110 to another connecting assembly 110 when subjected to external forces or deformation, thereby maintaining the stability and balance of the overall structure.
According to an embodiment of the present invention, referring to fig. 5, a plurality of connection rings 120 are provided, the connection rings 120 are disposed at intervals along the axial direction of the deformation frame 100, and the connection rings 120 are connected by a support member 130. It will be appreciated that the modular design of the connection ring 120 makes maintenance and repair work relatively simple. If a certain connecting ring 120 is damaged, only the connecting ring 120 needs to be replaced, the whole frame does not need to be replaced, and the maintenance cost and time are reduced.
It can be appreciated that in the case where the upper end surface of the connection plate 111 of any one connection assembly 110 is in contact with the lower end surface of the connection plate 111 of an adjacent connection assembly 110, the spacing between the connection rings 120 axially disposed is the same, and the lengths of the support members 130 are the same, so that the same-sized support members 130 can be used, and the manufacturing cost is reduced.
The support member 130 may be a support bar or a support plate, and is not particularly limited herein.
Referring to fig. 11, the protection assembly of the transmission line 300 further includes a fixing member 200, the deformation frame 100 is mounted to the fixing member 200, and the line is fixed to the fixing member 200 according to an embodiment of the present invention. It will be appreciated that by mounting the deformation frame 100 on the fixing member 200 and fixing the pipe to the fixing member 200, the stability of the overall structure can be greatly improved. The fixing member 200 provides a firm support for the deformation frame 100 and the pipe line, preventing them from being displaced or deformed when being subjected to external force or vibration.
According to one embodiment of the present invention, the deformation frame 100 and the transmission line 300 are coaxially disposed. It will be appreciated that when the deformation frame 100 is in the contracted state, the connection plates 111 of the deformation frame 100 may abut against the transmission pipes 300, so that the transmission pipe systems are not mutually extruded during transportation, and the placement stability of each transmission pipe 300 is stronger.
According to one embodiment of the present invention, the transmission line system further includes a locking mechanism (not shown) for locking the expanded state or the contracted state of the deformation frame 100. It can be appreciated that, by the locking mechanism, the deformation frame 100 can be ensured to be kept stable in the opened or contracted state, accidental folding or unfolding can be prevented, safety can be improved, frequent movement of the deformation frame 100 can be reduced, and the service life of the deformation frame 100 can be prolonged.
In one embodiment, the locking mechanism is provided on an end face of the connection plate 111, one of the connection plate 111 and the other connection plate 111 is provided with a positioning projection, and the other is provided with a first positioning groove and a second positioning groove which are provided at intervals. The deformation frame 100 is in a contracted state when the positioning protrusion is engaged with the first positioning groove, and the deformation frame 100 is in an expanded state when the positioning protrusion is engaged with the second positioning groove.
Of course, it is also possible that one of the connection plate 111 and the other connection plate 111 is provided with a positioning groove, and the other one is provided with a first positioning protrusion and a second positioning protrusion which are arranged at intervals.
It should be noted that the embodiments herein are merely examples, and the locking mechanism may be other forms.
Finally, it should be noted that: the above embodiments are only for illustrating the technical solution of the present invention, and are not limiting; although the invention has been described in detail with reference to the foregoing embodiments, it will be understood by those of ordinary skill in the art that: the technical scheme described in the foregoing embodiments can be modified or some technical features thereof can be replaced by equivalents; such modifications and substitutions do not depart from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims (10)

1. A protection assembly for a transmission line (300), comprising:
an inflatable membrane (10) for forming an inflatable protection layer of a transmission pipeline (300), wherein an inflatable cavity (11) is arranged in the inflatable membrane (10), the inflatable membrane (10) has an inflated state and a contracted state, the inflatable cavity (11) is inflated in the inflated state, and the inflatable membrane (10) is inflated to be larger; in the contracted state, the inflation lumen (11) is deflated and the inflation diaphragm (10) is contracted.
2. The protection assembly of a transfer line (300) according to claim 1, further comprising an air pump (20), the air pump (20) being adapted to provide the inflation lumen (11) with air to switch the inflation diaphragm (10) between an inflated state and a contracted state.
3. Protection assembly of a transfer line (300) according to claim 2, characterized in that in the inflated state the air pump (20) keeps the gas of the inflation chamber (11) flowing.
4. The protective assembly of a transfer line (300) of claim 2, wherein the gas in the gas pump (20) may be at least one of dry air and nitrogen.
5. The protection assembly of a transmission line (300) according to any one of claims 1 to 4, further comprising a mounting ring (30), said mounting ring (30) being connected to said inflatable membrane (10), said mounting ring (30) being provided with an inflation port (31), said inflation port (31) being in communication with said inflation lumen (11).
6. The protection assembly of a transmission line (300) according to claim 5, wherein the number of the inflation ports (31) is an even number, and the inflation ports (31) are symmetrically arranged along the central axis of the mounting ring (30).
7. Protection assembly for a transfer line (300) according to claim 5, characterized in that the inflation port (31) is provided with a gas valve (32), the gas valve (32) controlling the on-off of the inflation lumen (11).
8. A transmission line system, comprising:
a transmission line (300);
the protection assembly of a transmission line (300) according to any one of claims 1 to 7, wherein the inflatable membrane (10) is arranged around at least a part of the pipe section of the transmission line (300).
9. The protective assembly of a transfer line (300) of claim 8, wherein the transfer line system further comprises a thermal insulation structure disposed between the line and the inflatable membrane (10).
10. The protective assembly of a transmission line (300) according to claim 9, wherein the insulation is at least one of a fibrous material insulation, an organic plastic insulation, a rubber plastic insulation.
CN202311490601.0A 2023-11-09 2023-11-09 Protection assembly of transmission pipeline and transmission pipeline system Pending CN117662909A (en)

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CN202311490601.0A CN117662909A (en) 2023-11-09 2023-11-09 Protection assembly of transmission pipeline and transmission pipeline system

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