Support structure, cooling system, stress release system installation method and stress release method

By setting a support plate with a lower coefficient of friction on the support structure and a rigid connection with the cooling system, the problem of stress not being released is solved, and the stability of the support and the performance of the cooling system are improved.

CN121025867APending Publication Date: 2025-11-28TIANJIN LATINO ENVIRONMENTAL TECH CO LTD
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Patent Information

Application Number
CN202511204953.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-27
Publication Date
2025-11-28

AI Technical Summary

Technical Problem

When the existing support structure is not horizontal, the stress between the target to be supported and the support structure cannot be released, which affects the connection stability and may cause damage to both the support structure and the target to be supported.

Method used

By attaching one end of the target to the support structure and setting a support plate with a lower coefficient of friction at the attachment point, stress is released by the sliding and suspension structure of the support plate, and stress in the cooling pipe is released by the hard connection in the cooling system.

Benefits of technology

It improves the stability of the support process, ensures the integrity of the support structure and the target to be supported, and enhances the heat exchange capacity of the cooling system.

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Abstract

The invention discloses a supporting structure, a cooling system, a stress release system mounting method and a stress release method. The supporting structure comprises a top and a bottom. The top comprises a supporting piece, a first supporting plate and a second supporting plate. The supporting piece is provided with a first hooking end and a second hooking end; an intersection angle between the plane where the surface of the first hanging end is located and the plane where the surface of the second hanging end is located ranges from 90 degrees to 180 degrees; the first supporting plate is fixedly connected to the surface of the first hanging end, and the second supporting plate is fixedly connected to the surface of the second hanging end; the friction coefficient of the first supporting plate and the second supporting plate is smaller than that of the surface of the corresponding hooking end. The bottom comprises a first bottom end and a second bottom end; the distance between the first bottom end and the second bottom end is larger than the distance between the first hanging end and the second hanging end. According to the supporting structure, stress release is achieved, and therefore the integrity of the supporting structure and the to-be-supported target is guaranteed.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of mechanical structure, in particular to a supporting structure, a cooling system, a stress releasing system installation method and a releasing method. BACKGROUND

[0002] The supporting structure is usually used for supporting a target to be supported. In the case that the support of the target to be supported by the supporting structure is non-horizontal support, some fixing or limiting methods are usually taken to prevent the target to be supported from sliding off the supporting structure.

[0003] However, the target to be supported usually generates stress between the fixed part or the connecting part of the supporting structure due to thermal expansion and contraction and other reasons. In the case that the stress cannot be released, the connection stability between the target to be supported and the supporting structure is usually affected, and the target to be supported and the supporting structure itself are also usually expanded or torn.

[0004] That is to say, the current supporting structure affects the stability of the support and damages the integrity of the supporting structure itself and the target to be supported when supporting the target to be supported due to the fact that the stress cannot be released. SUMMARY

[0005] The purpose of the present application is to provide a supporting structure, a cooling system, a stress releasing system installation method and a releasing method, which can release the stress generated by deformation from at least two directions by sliding between one end of the target to be supported and the supporting plate and suspending the other end during the deformation of the target to be supported by hanging the one end of the target to be supported on the supporting structure and setting a supporting plate with a smaller friction coefficient at the hanging part during the support of the target to be supported. Finally, the stability during the support can be improved, and the integrity of the supporting structure itself and the target to be supported can be ensured to the greatest extent.

[0006] In a first aspect, the present application provides a supporting structure, which comprises a top part and a bottom part; the top part comprises a supporting piece, a first supporting plate and a second supporting plate; the supporting piece has a first hanging end and a second hanging end; the angle between the plane where the surface of the first hanging end is located and the plane where the surface of the second hanging end is located ranges from 90° to 180°; the first supporting plate is fixedly connected to the surface of the first hanging end, and the second supporting plate is fixedly connected to the surface of the second hanging end; the friction coefficient of the first supporting plate and the second supporting plate is smaller than the friction coefficient of the surface of the corresponding hanging end; the bottom part comprises a first bottom end and a second bottom end; the distance between the first bottom end and the second bottom end is greater than the distance between the first hanging end and the second hanging end.

[0007] The support structure, by only hanging the one end of the target to be supported thereon, with the rest of the target to be supported suspended, and by arranging the first support plate and the second support plate with smaller friction coefficients at the first hanging end and the second hanging end respectively, when the target to be supported deforms, the stress generated by the deformation can be released from the other end of the target to be supported, and by the smaller friction between the hanging part of the target to be supported and the support plate, the stress generated by the deformation can also be released by the sliding of the hanging part of the target to be supported on the support plate. Finally, the stability of the support structure in supporting the target to be supported is improved, and the integrity of the support structure itself and the target to be supported is also ensured to the greatest extent.

[0008] In combination with the first aspect, the support structure further comprises a first support rod and a second support rod; the upper end of the first support rod is connected to the upper end of the second support rod; the lower end of the first support rod and the lower end of the second support rod are arranged on the target support surface respectively; the top is located at the connection of the first support rod and the second support rod, the first bottom end is located at the lower end of the first support rod, and the second bottom end is located at the lower end of the second support rod.

[0009] The support structure, by connecting the upper ends of the first support rod and the second support rod, arranging the lower ends on the target support surface, and arranging the support member at the connection of the first support rod and the second support rod, achieves the support of the support member, and the structure formed by the first support rod and the second support rod, such as a support frame, is in the shape of an "A" or a triangle, etc. Since such shapes have stability, the stability of the first support rod and the second support rod in supporting the support member is improved.

[0010] In combination with the first aspect, the first support rod is provided with a first gasket between the upper end and the lower end, and the first gasket is located on the side of the first support rod facing away from the second support rod; the friction coefficient of the first gasket is smaller than that of the side of the first support rod facing away from the second support rod.

[0011] The support structure, by arranging the first gasket and the second gasket on the first support rod and the second support rod respectively, can provide certain support to the suspended end of the target piece to be supported or the part between the suspended end and the hanging end of the target piece to be supported when the target piece to be supported is hung on the support structure. That is, the gravity of the target piece to be supported is borne by the first gasket and the second gasket in addition to the part borne by the support piece. In addition, the friction between the target piece to be supported and the first gasket and the second gasket is relatively small due to the relatively small friction coefficient of the first gasket and the second gasket, so that the constraint on the expansion and contraction of the target piece to be supported in the direction of the intersection of the first hanging end and the second hanging end is relieved to a greater extent, thereby releasing stress. Finally, the ease of deformation of the target piece to be supported hung on the support structure is improved, and the stability of the support result of the support structure on the target piece to be supported is further improved, and the integrity of the support structure itself and the target piece to be supported is ensured to a greater extent.

[0012] In a second aspect, the application provides a cooling system, comprising a first cooling tube bundle, a second cooling tube bundle, and the support structure described in the first aspect; the first cooling tube bundle comprises a plurality of first cooling tubes, and the second cooling tube bundle comprises a plurality of second cooling tubes; the plurality of first cooling tubes are hung on the first support plate of the support structure and arranged in a first direction; the first direction intersects the length direction of the first cooling tube and is parallel to the plane in which the first support plate of the support structure is located; the plurality of second cooling tubes are hung on the second support plate of the support structure and arranged in a second direction; the second direction intersects the length direction of the second cooling tube and is parallel to the plane in which the second support plate of the support structure is located.

[0013] The cooling system has the same beneficial effects as the first aspect or any one of the optional embodiments of the first aspect, which will not be repeated here.

[0014] In combination with the second aspect, optionally, part or the whole of the first cooling tube located at the middle position in the first direction among the plurality of first cooling tubes is hard connected with the support structure; and part or the whole of the second cooling tube located at the middle position in the second direction among the plurality of second cooling tubes is hard connected with the support structure.

[0015] The cooling system, through the hard connection between the first cooling pipe at the intermediate position and the support structure, causes the first cooling pipes on both sides of the hard connection to be stressed in the first direction, and respectively releases the stress by expanding in the first direction and in the direction away from the first cooling pipe of the hard connection. In other words, the first cooling pipe on the left side of the hard connection releases stress by expanding to the left side, and the first cooling pipe on the right side of the hard connection releases stress by expanding to the right side. Avoiding the free and random expansion of the first cooling pipes in the first cooling pipe bundle in the direction of expansion, which contradicts each other. The hard connection between the second cooling pipe at the intermediate position and the support structure is also a similar process and beneficial effect. Finally, it further improves the ease of deformation of the first cooling pipe bundle and the second cooling pipe bundle, and accordingly further improves the connection stability between each part in the cooling system, and more greatly ensures the integrity of the support structure, the first cooling pipe bundle and the second cooling pipe bundle. So as to ensure the heat exchange capacity of the cooling system.

[0016] In a third aspect, the application provides a stress release system installation method, wherein the stress release system comprises a support frame, a support piece, a first support plate, a second support plate, a first hanging piece and a second hanging piece; the support piece comprises a first hanging end and a second hanging end; the method comprises:

[0017] Assembling the support frame and the support piece, and respectively installing the first support plate and the second support plate on the surface of the first hanging end and the surface of the second hanging end of the support piece to form a support structure; wherein the friction coefficient of the first support plate and the second support plate is less than the friction coefficient of the surface of the corresponding hanging end; installing the bottom of the support frame on a target support surface and adjusting the top of the support frame to be horizontal; and respectively hanging the first hanging piece and the second hanging piece on the first hanging end and the second hanging end.

[0018] The stress release system installation method has the same beneficial effects as the second aspect or any one of the optional embodiments of the second aspect, which will not be repeated here.

[0019] With reference to the third aspect, optionally, the support frame comprises a first support rod and a second support rod; the assembling the support frame and the support member and mounting the first support plate and the second support plate on the surface of the first hanging end and the surface of the second hanging end of the support member respectively to form a support structure comprises: disposing a first gasket between the upper end and the lower end of the first support rod and on the side of the first support rod facing away from the second support rod; and disposing a second gasket between the upper end and the lower end of the first support rod and on the side of the first support rod facing away from the second support rod; wherein the friction coefficient of the first gasket is smaller than the friction coefficient of the side of the first support rod facing away from the second support rod, and the friction coefficient of the second gasket is smaller than the friction coefficient of the side of the second support rod facing away from the second support rod.

[0020] The stress release system installation method described above, by respectively disposing the first gasket and the second gasket on the first support rod and the second support rod, makes the suspended end of the first gasket and the second gasket or the part between the suspended end and the hanging end of the first gasket and the second gasket respectively provide certain support in the case that the first gasket and the second gasket are respectively hung on the support structure. That is, in addition to a part of the gravity of the first gasket and the second gasket being borne by the support member, the remaining part is borne by the first gasket and the second gasket. In addition, due to the relatively small friction coefficient of the first gasket and the second gasket, the friction between the first gasket and the second gasket is also relatively small, so that the first gasket and the second gasket are more greatly relieved from the constraint on expansion and contraction in the direction along the intersection of the first hanging end and the second hanging end in the case of temperature change, thereby releasing stress. Finally, the ease of deformation of the first gasket and the second gasket hung on the support structure is improved, and the stability of the support structure in supporting the first gasket and the second gasket is also further improved, and the integrity of the support structure itself, the first hanging member and the second hanging member is more greatly ensured.

[0021] With reference to the third aspect, optionally, the assembling the first hanging member and the second hanging member on the first hanging end and the second hanging end respectively comprises: disposing a third gasket and a fourth gasket on the side of the second end of the first hanging member facing the support frame and the side of the second end of the second hanging member facing the support frame respectively; wherein the friction coefficient of the third gasket is smaller than the friction coefficient of the second end of the first hanging member, and the friction coefficient of the fourth gasket is smaller than the friction coefficient of the second end of the second hanging member; and the first hanging member and the second hanging member are hung on the first hanging end and the second hanging end respectively.

[0022] The stress release system installation method, by setting the third gasket and the fourth gasket on the first hanging piece and the second hanging piece respectively, can provide certain support to the suspended end of the first hanging piece and the second hanging piece or the part between the suspended end and the hanging end when the first hanging piece and the second hanging piece are respectively hung on the support structure. That is, the gravity of the first hanging piece and the second hanging piece can be borne by the third gasket and the fourth gasket in addition to the part borne by the support. In addition, since the friction coefficient of the third gasket and the fourth gasket is relatively small, the constraint on the expansion and contraction of the first hanging piece and the second hanging piece in the direction of the first hanging end and the second hanging end is further relieved, so that the stress can be released more easily by expansion and contraction. Finally, the stability of the support result in supporting the first hanging piece and the second hanging piece is further improved, and the integrity of the support structure itself, the first hanging piece and the second hanging piece is further ensured.

[0023] In combination with the third aspect, optionally, the first hanging piece includes a plurality of first cooling pipes, and the second hanging piece includes a plurality of second cooling pipes; the first hanging piece and the second hanging piece are respectively hung on the first hanging end and the second hanging end, including: arranging and hanging the plurality of first cooling pipes on the first hanging end in a first direction; the first direction intersects the length direction of the first cooling pipe and is parallel to the plane where the first support plate is located; arranging and hanging the plurality of second cooling pipes on the second hanging end in a second direction; the second direction intersects the length direction of the second cooling pipe and is parallel to the plane where the second support plate is located; hard connecting part or all of one of the plurality of first cooling pipes located at the middle position in the first direction to the support frame; and hard connecting part or all of one of the plurality of second cooling pipes located at the middle position in the second direction to the support frame.

[0024] The stress release system installation method, through the hard connection between the first cooling pipe at the intermediate position and the support structure, causes the first cooling pipes on both sides of the first cooling pipe at the hard connection to be stressed in the first direction, and respectively releases the stress by expanding in the first direction and in the direction away from the first cooling pipe at the hard connection. In other words, the first cooling pipe on the left side of the hard connection releases stress by expanding to the left side, and the first cooling pipe on the right side of the hard connection releases stress by expanding to the right side. The free and random expansion of the first cooling pipes in the first cooling pipe bundle is avoided. The hard connection between the second cooling pipe at the intermediate position and the support structure is also similar in process and beneficial effect. Finally, the ease of deformation of the first cooling pipe bundle and the second cooling pipe bundle is further improved, and the connection stability between the various components in the cooling system is also further improved, and the integrity of the support structure, the first cooling pipe bundle and the second cooling pipe bundle is ensured to a greater extent. The heat exchange capacity of the cooling system is ensured.

[0025] In a fourth aspect, the application provides a release method applied to a stress release system; wherein the stress release system comprises a support member, a first support plate, a second support plate, a plurality of first hanging members and a plurality of second hanging members; the plurality of first hanging members are arranged in a first direction and hung on the first support plate, and the plurality of second hanging members are arranged in a second direction and hung on the second support plate; wherein the first direction intersects the length direction of the first hanging member and is parallel to the plane of the first support plate; the second direction intersects the length direction of the second hanging member and is parallel to the plane of the second support plate; the method comprises:

[0026] Based on the hanging between the first end of the first hanging member and the first support plate and the suspension of the second end of the first hanging member, the stress generated in the length direction of the first hanging member is released to the second end of the first hanging member; based on the hanging between the first end of the second hanging member and the second support plate and the suspension of the second end of the second hanging member, the stress generated in the length direction of the second hanging member is released to the second end of the second hanging member; based on the hanging between the plurality of first hanging members and the first support plate, the stress generated in the first direction by the plurality of first hanging members is released to the contact surface of the first support plate; and based on the hanging between the plurality of second hanging members and the second support plate, the stress generated in the second direction by the plurality of second hanging members is released to the contact surface of the second support plate.

[0027] The release method has the same beneficial effects as the third aspect or any one of the optional embodiments of the third aspect, which will not be repeated here.

[0028] In summary, the support structure, cooling system, stress release system installation method and release method provided by the present application have the following advantages. The support structure is hung on one end of the target to be supported, and the rest is suspended. A first support plate and a second support plate with a smaller friction coefficient are arranged at the first hanging end and the second hanging end, respectively. The stress generated by deformation can be released from the other end of the target to be supported, and the stress can also be released by sliding the hanging part on the support plate. The stability of the support result is improved, and the integrity of the support structure and the target to be supported is also ensured. The first support rod and the second support rod are provided with a first gasket and a second gasket, respectively. The friction between the target to be supported and the first gasket and the second gasket is relatively small due to the relatively small friction coefficient of the first gasket and the second gasket. Therefore, when the temperature of the target to be supported changes, the target to be supported can expand and shrink along the direction of the junction of the first hanging end and the second hanging end, thereby releasing stress. The first cooling pipe (second cooling pipe) on the left side of the hard connection is expanded to the left to release stress, and the first cooling pipe (second cooling pipe) on the right side of the hard connection is expanded to the right to release stress. The free expansion of the first cooling pipe in the first cooling pipe bundle (second cooling pipe) is avoided, and the stress generated by the first cooling pipe bundle and the second cooling pipe bundle is further increased, thereby further improving the heat exchange capacity of the cooling system. BRIEF DESCRIPTION OF DRAWINGS

[0029] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed in the embodiments. It should be understood that the following drawings only show some embodiments of the present application, and therefore should not be considered as a limitation on the scope. For those skilled in the art, other related drawings can also be obtained without creative labor.

[0030] Figure 1 A first perspective view of the support structure provided by the embodiments of the present application;

[0031] Figure 2 A first front view of the support structure provided by the embodiments of the present application;

[0032] Figure 3 A perspective view of the support member in the support structure provided by the embodiments of the present application;

[0033] Figure 4 A front view of the support member in the support structure provided by the embodiments of the present application;

[0034] Figure 5A second perspective view of the support structure provided by the embodiments of the present application;

[0035] Figure 6 A second front view of the support structure provided by the embodiments of the present application;

[0036] Figure 7 A perspective view of the cooling system provided by the embodiments of the present application;

[0037] Figure 8 A front view of the cooling system provided by the embodiments of the present application;

[0038] Figure 9 A flow chart of the stress release system installation method provided by the embodiments of the present application;

[0039] Figure 10 A first flow chart of step S150 in the stress release system installation method provided by the embodiments of the present application;

[0040] Figure 11 A second flow chart of step S150 in the stress release system installation method provided by the embodiments of the present application;

[0041] Figure 12 A flow chart of the release method provided by the embodiments of the present application.

[0042] Icon: 100, support structure; 110, top; 111, support piece; 1111, first hanging end; 1112, second hanging end; 112, first support plate; 113, second support plate; 120, bottom; 121, first bottom end; 122, second bottom end; 131, first support rod; 132, second support rod; 141, first gasket piece; 142, second gasket piece; 10, cooling system; 210, first cooling pipe; 211, third gasket piece; 220, second cooling pipe; 221, fourth gasket piece. DETAILED DESCRIPTION

[0043] In order to make the objects, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some but not all of the embodiments of the present application. The components of the embodiments of the present application described and shown in the drawings herein can be arranged and designed in various different configurations.

[0044] Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the claimed present application, but only represents selected embodiments of the present application. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in the present application without creative labor are within the scope of protection of the present application.

[0045] It should be noted that similar reference numbers and letters refer to similar items in the following drawings, and therefore, once an item is defined in one drawing, it need not be further defined and explained in subsequent drawings.

[0046] In the description of the present application, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship in which the product of the application is usually placed during use, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application. In addition, the terms "first", "second", "third" and the like are only used to distinguish the description and cannot be understood as indicating or implying relative importance.

[0047] In addition, the terms "horizontal", "vertical" and the like do not mean that the components must be absolutely horizontal or vertical, but can be slightly inclined. For example, "horizontal" only means that it is more horizontal relative to "vertical", and does not mean that the structure must be completely horizontal, but can be slightly inclined.

[0048] In the description of the present application, it should also be noted that unless otherwise explicitly specified and limited, the terms "provided", "mounted", "connected", "connected" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium; it can be the communication between two elements inside. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0049] Taking the parallel flow tube bundle and the counterflow tube bundle in the traditional air cooling island as an example, the tube bundle fixedly installed on the support frame may cause the tube bundle to expand or contract due to the presence or absence of steam inside the tube bundle, changes in external environment temperature, etc. The specific direction of expansion and contraction includes but is not limited to the arrangement direction of the tube bundle and the length direction of the tube bundle. Since multiple parts of the tube bundle in the traditional air cooling island are fixedly connected with the support frame, for example, both ends of each cooling pipe are fixedly connected with the support frame. Therefore, in the case of thermal expansion and contraction of the tube bundle, the tube bundle is extremely likely to be expanded or torn. Ultimately, the heat exchange capacity of the air cooling island is reduced.

[0050] Therefore, the present application provides a support structure 100, a cooling system 10, a stress release system installation method and a release method to solve the above problems. Specifically, please refer to the embodiments provided by the present application and the drawings in the specification.

[0051] Please refer to Figures 1 to 4 , Figure 1 is a first perspective view of the support structure 100 provided by an embodiment of the present application; Figure 2 is a first front view of the support structure 100 provided by an embodiment of the present application; Figure 3 is a perspective view of the support member 111 in the support structure 100 provided by an embodiment of the present application; Figure 4 is a front view of the support member 111 in the support structure 100 provided by an embodiment of the present application. The support structure 100 provided by an embodiment of the present application can include a top portion 110 and a bottom portion 120. The top portion 110 can include a support member 111, a first support plate 112, and a second support plate 113. The support member 111 can have a first hanging end 1111 and a second hanging end 1112. The intersection angle between the plane where the surface of the first hanging end 1111 is located and the plane where the surface of the second hanging end 1112 is located can be θ, which can be in the range of 90° to 180°. The first support plate 112 can be fixedly connected to the surface of the first hanging end 1111, and the second support plate 113 can be fixedly connected to the surface of the second hanging end 1112. The friction coefficient of the first support plate 112 and the second support plate 113 can be less than the friction coefficient of the surface of the corresponding hanging end. The bottom portion 120 can include a first bottom end 121 and a second bottom end 122. The distance between the first bottom end 121 and the second bottom end 122 can be L1, and the distance between the first hanging end 1111 and the second hanging end 1112 can be L2. L1 can be greater than L2.

[0052] The cross section of the support member 111 can be in the shape of a "Y" character, and the first hanging end 1111 and the second hanging end 1112 can each be in the shape of a flat plate. The intersection angle of the planes where they are respectively located can be in the range of 90° to 180°. In the case where the intersection angle is 180°, it generally means that the surface of the first hanging end 1111 is coplanar with the surface of the second hanging end 1112, so that the cross section of the support member 111 is generally in the shape of a "T" character. The hanging positions between the first hanging end 1111 and the second hanging end 1112 and the target to be supported are generally horizontal support of the corresponding positions on the target to be supported. In the case where the intersection angle is 90°, the cross section of the support member 111 is still in the shape of a "Y" character, and the hanging positions between the first hanging end 1111 and the second hanging end 1112 and the target to be supported are generally non-horizontal support of the corresponding positions on the target to be supported. In summary, no matter what angle value the intersection angle is between 90° and 180°, it can achieve the hanging of the target to be supported on the support member 111.

[0053] As an optional embodiment, the support structure 100 can further comprise a support frame, the bottom 120 of the support frame can be arranged to be mounted on a target support surface, and the bottom 120 of the support structure 100 can be the bottom 120 of the support frame. The support frame can specifically have an "A" shape, a triangular shape, or other shapes that are narrow at the top and wide at the bottom. The support member 111 can be mounted on the top 110 of the support frame. The specific mounting method can be through screw mounting or by welding the support member 111 to the top 110 of the support frame.

[0054] The first support plate 112 and the second support plate 113 can be made of low-friction materials, such as polytetrafluoroethylene, ultra-high molecular weight polyethylene (UHMWPE), polyoxymethylene (POM), nylon (PA series), polyimide (PI), graphite or graphite-based composites, molybdenum disulfide, or a material composed of at least two of the above-listed materials. As long as the friction coefficient of these materials is lower than that of the surfaces of the first and second hanging ends 1111 and 1112, the restriction on the expansion and contraction of the target object to be supported can be further released. Generally, the lower the lower limit of the friction coefficient, the better, as long as the required support strength is met. The support member 111 can be made of metal materials, such as carbon steel (e.g., with a surface coating for corrosion resistance), stainless steel (e.g., 304, 316L, etc., with good corrosion resistance), aluminum alloy (which can meet the lightweight requirement well), and high-strength alloy steel (which has good high-temperature resistance). The first and second support plates 112 and 113 made of polytetrafluoroethylene generally have a lower surface friction coefficient than the surfaces of the hanging ends made of metal or alloy. Therefore, the first and second support plates 112 and 113 can also be made of other materials with a lower surface friction coefficient.

[0055] Taking the tube bundle in an air-cooled island as an example, the cooling tube bundle can be arranged in a direction perpendicular to the cross-section of the support member 111, and the upper ends of the cooling tubes of the cooling tube bundle can be hung on the first and second hanging ends 1111 and 1112, respectively, and the lower ends of the cooling tubes can be suspended on the support structure 100. In the case of thermal expansion and contraction of the cooling tube bundle due to internal steam and external environmental temperature changes, the expansion and contraction directions mainly include two, the first is the length direction of the cooling tube, and the second is the expansion and contraction of the entire cooling tube bundle in the arrangement direction due to changes in the thickness of the cooling tube. Regarding the first, since the lower end of the cooling tube is suspended on the support structure 100, the expansion and contraction in the length direction of the cooling tube can be released by moving the lower end of the cooling tube; regarding the second, since the cooling tube bundle is specifically hung on the corresponding support plate of the hanging end, and the friction coefficient of the support plate is relatively small, the specific part of the cooling tube bundle hung on the hanging end can slide on the first or second support plate 112 or 113, thereby releasing the stress in the arrangement direction of the cooling tube.

[0056] In the above implementation process, by attaching only one end of the target to be supported and suspending the rest, and by setting a first support plate 112 and a second support plate 113 with a lower coefficient of friction at the first attachment end 1111 and the second attachment end 1112 respectively, when the target deforms, the stress generated by the deformation can be released from the other end of the target due to the attachment at only one end and the suspension of the rest. Furthermore, the low friction between the attachment part of the target and the support plate allows the stress generated by the deformation to be released through the sliding of the attachment part on the support plate. Ultimately, this improves the stability of the support structure in supporting the target and also ensures the integrity of both the support structure 100 and the target to be supported to the greatest extent possible.

[0057] Please continue to refer to Figure 1 and Figure 2 In some optional embodiments, the support structure 100 may further include a first support rod 131 and a second support rod 132. The upper end of the first support rod 131 may be connected to the upper end of the second support rod 132. The lower ends of the first support rod 131 and the lower ends of the second support rod 132 may be respectively disposed on the target support surface. The top 110 may be located at the connection between the first support rod 131 and the second support rod 132, the first bottom end 121 may be located at the lower end of the first support rod 131, and the second bottom end 122 may be located at the lower end of the second support rod 132.

[0058] The first support rod 131 and the second support rod 132 can be made of metal or alloy. In conjunction with the optional embodiments described above, the first support rod 131 and the second support rod 132 can form a support frame in the shape of a triangle or an "A" shape. Of course, the "A" shape or triangle shape of the support frame can be the shape of its cross-section. Therefore, there can be multiple first support rods 131 and multiple second support rods 132. The arrangement direction of the first support rod 131 and the second support rod 132 can be parallel to the arrangement direction of the cooling pipes described above.

[0059] In the above implementation process, a structure is used where the upper ends of the first support rod 131 and the second support rod 132 are connected, and the lower ends are set on the target support surface. A support member 111 is placed at the connection point between the first support rod 131 and the second support rod 132. This achieves support for the support member 111. Furthermore, the structure formed by the first support rod 131 and the second support rod 132, such as a support frame, is in the shape of an "A" or a triangle. Because such shapes have stability, the stability of the support provided by the first support rod 131 and the second support rod 132 for the support member 111 is improved.

[0060] Please refer toFigure 5 and Figure 6 , Figure 5 is a second perspective view of the support structure 100 provided by an embodiment of the present application; Figure 6 is a second front view of the support structure 100 provided by an embodiment of the present application. In some optional implementations, a first gasket 141 can be arranged between the upper end and the lower end of the first support rod 131, and the first gasket 141 can be located on the side of the first support rod 131 that faces away from the second support rod 132. The friction coefficient of the first gasket 141 can be less than the friction coefficient of the side of the first support rod 131 that faces away from the second support rod 132. A second gasket 142 can be arranged between the upper end and the lower end of the second support rod 132, and the second gasket 142 can be located on the side of the second support rod 132 that faces away from the first support rod 131. The friction coefficient of the second gasket 142 can be less than the friction coefficient of the side of the second support rod 132 that faces away from the first support rod 131.

[0061] The first gasket 141 can be made of a material with a low surface friction coefficient, such as polytetrafluoroethylene. The second gasket 142 can also be made of a material with a low surface friction coefficient, such as polytetrafluoroethylene. The first gasket 141 can be arranged at a position on the first support rod 131 corresponding to the suspended end of the target object to be supported, that is, in the case where the target object to be supported is hung on the support structure 100, the suspended end of the target object to be supported can be supported by the first gasket 141. Correspondingly, the second gasket 142 can also be arranged at a position on the second support rod 132 corresponding to the suspended end of the target object to be supported. In a similar case, the suspended end of the target object to be supported can be supported by the second gasket 142.

[0062] In the implementation process, the first gasket 141 and the second gasket 142 are arranged on the first support rod 131 and the second support rod 132 respectively, so that, in the case that the target object to be supported is hung on the support structure 100, the suspended end of the target object to be supported or the part between the suspended end and the hanging end can be supported by the first gasket 141 and the second gasket 142 respectively. That is, the gravity of the target object to be supported is borne by the first gasket 141 and the second gasket 142 in addition to the part borne by the support 111. In addition, because the friction coefficients of the first gasket 141 and the second gasket 142 are relatively small, the friction between the target object to be supported and the first gasket 141 and the second gasket 142 is also relatively small, so that the target object to be supported can expand or shrink along the direction of the junction of the first hanging end 1111 and the second hanging end 1112 when the temperature changes, thereby releasing stress. Finally, the ease of deformation of the target object to be supported hung on the support structure 100 is improved, and the stability of the support result of the support structure 100 on the target object to be supported is also improved, and the integrity of the support structure 100 and the target object to be supported is ensured to a greater extent.

[0063] Please refer to Figure 7 and Figure 8 , Figure 7 is a perspective view of a cooling system 10 provided by an embodiment of the present application; Figure 8 is a front view of a cooling system 10 provided by an embodiment of the present application. Based on the same concept, the present application provides a cooling system 10, which can include a first cooling pipe 210 bundle, a second cooling pipe 220 bundle, and the support structure 100 described above. The first cooling pipe 210 bundle can include a plurality of first cooling pipes 210, and the second cooling pipe 220 bundle can include a plurality of second cooling pipes 220. The plurality of first cooling pipes 210 can be hung on the first support plate 112 of the support structure 100 and can be arranged in a first direction. The first direction can intersect the length direction of the first cooling pipe 210 and can be parallel to the plane in which the first support plate 112 of the support structure 100 is located. The plurality of second cooling pipes 220 can be hung on the second support plate 113 of the support structure 100 and can be arranged in a second direction. The second direction can intersect the length direction of the second cooling pipe 220 and can be parallel to the plane in which the second support plate 113 of the support structure 100 is located.

[0064] Continuing with the example of the air cooling island described above, the cooling system 10 provided by embodiments of the present application can specifically be an air cooling island. A portion of the first cooling tubes 210 in the first cooling tube 210 bundle can be a parallel flow tube bundle, and another portion can be a counter flow tube bundle. Similarly, a portion of the second cooling tubes 220 in the second cooling tube 220 bundle can also be a parallel flow tube bundle, and another portion can also be a counter flow tube bundle. The first direction can be perpendicular to the "Y" shaped cross section of the support structure 111, and the second direction can be parallel to the first direction.

[0065] The implementation process described above can be the same as the support structure 100 described above, and will not be described again here.

[0066] Please continue to refer to Figure 7 and Figure 8 In some optional embodiments, a portion or the entirety of the first cooling tubes 210 in the first cooling tube 210 bundle that are located at the middle position in the first direction can be hard connected to the support structure 100. A portion or the entirety of the second cooling tubes 220 in the second cooling tube 220 bundle that are located at the middle position in the second direction can be hard connected to the support structure 100. Here, hard connection generally means that, in contrast to movable connection, the parts connected together cannot move relative to each other. For example: welding, screwing, bonding, and one-piece forming, etc.

[0067] Exemplarily, the specific number of the first cooling tubes 210 in the first cooling tube 210 bundle is 11. Then the first cooling tube 210 at the middle position can be the fifth first cooling tube 210, or the seventh first cooling tube 210. As a preferred embodiment, the first cooling tube 210 at the middle position can be the sixth first cooling tube 210. Of course, according to actual application conditions, those skilled in the art can also determine the first cooling tube 210 other than the above as the first cooling tube 210 at the middle position. Similarly, the second cooling tube 220 at the middle position can be similar to the first cooling tube 210 at the middle position determined above in a similar manner.

[0068] The hard connection between the first cooling pipe 210 at the middle position and the support structure 100 can be a non-movable connection mode such as welding, screwing, etc. The specific connection position can be the hanging position of the first cooling pipe 210 and the first hanging end 1111. For example, the first cooling pipe 210 has a hanging part for hanging with the first hanging end 1111, and the hanging part is connected with the first hanging end 1111 by welding, screwing, etc. The specific connection position can also be the middle part of the first cooling pipe 210, for example, the 10cm or 20cm length part of the middle of the first cooling pipe 210 is welded with the corresponding position of the first support rod 131. The specific connection position can also be one end of the first cooling pipe 210 suspended on the support structure 100, for example, the 10cm or 20cm length part of the lower end of the first cooling pipe 210. In addition, the specific connection position can also be the hard connection of the whole first cooling pipe 210 and the support structure 100, or the combination of at least two of the above positions. The second cooling pipe 220 at the middle position is hard connected with the support structure 100, which can be similar to the first cooling pipe 210 at the middle position. Figure 7 For example, it can be the 10cm or 20cm length part of the lower end of the first cooling pipe 210. In addition, the specific connection position can also be the hard connection of the whole first cooling pipe 210 and the support structure 100, or the combination of at least two of the above positions. The second cooling pipe 220 at the middle position is hard connected with the support structure 100, which can be similar to the first cooling pipe 210 at the middle position.

[0069] Please continue to refer to Figure 7 and Figure 8 As an optional embodiment, the second end of the first hanging part and the second end of the second hanging part are respectively provided with a third gasket 211 and a fourth gasket 221 facing the side of the support frame. The friction coefficient of the third gasket 211 is less than that of the second end of the first hanging part, and the friction coefficient of the fourth gasket 221 is less than that of the second end of the second hanging part. The third gasket 211 and the fourth gasket 221 can be made of polytetrafluoroethylene or other materials with low surface friction coefficient. The connection between the third gasket 211 and the fourth gasket 221 and the first hanging part and the second hanging part can also be screwing, bonding or hot melting, etc.

[0070] In the implementation process, the hard connection between the first cooling pipe 210 at the intermediate position and the support structure 100 causes the first cooling pipe 210 on both sides of the hard connection to be stressed in the first direction, and the stress is released by expanding in the first direction and away from the hard connection. In other words, the first cooling pipe 210 on the left side of the hard connection releases stress by expanding to the left, and the first cooling pipe 210 on the right side of the hard connection releases stress by expanding to the right. The free expansion of the first cooling pipe 210 bundle avoids the expansion directions of the first cooling pipes 210 interfering with each other. The hard connection between the second cooling pipe 220 at the intermediate position and the support structure 100 also has similar processes and benefits. Ultimately, the ease of deformation of the first cooling pipe 210 bundle and the second cooling pipe 220 bundle is further improved, and the connection stability between the components in the cooling system 10 is also further improved, and the integrity of the support structure 100, the first cooling pipe 210 bundle, and the second cooling pipe 220 bundle is ensured to a greater extent. Thus, the heat exchange capacity of the cooling system 10 is ensured.

[0071] Please refer to Figure 9 , Figure 9 is a flowchart of a stress release system installation method provided by the embodiments of the present application. Based on the same concept, the embodiments of the present application provide a stress release system installation method. The stress release system can include a support frame, a support piece, a first support plate, a second support plate, a first hanging piece, and a second hanging piece. The support piece can include a first hanging end and a second hanging end.

[0072] The connection relationship between the components in the stress release system can be similar to the cooling system described above. The first hanging piece and the second hanging piece in the embodiments of the present application can also be the same as the target piece to be supported described above in relation to the support structure.

[0073] The method can include:

[0074] Step S110: Assemble the support frame and the support piece, and install the first support plate and the second support plate on the surface of the first hanging end and the surface of the second hanging end of the support piece, respectively, to form a support structure.

[0075] In the above step S110, the friction coefficient of the first support plate and the second support plate can be less than the friction coefficient of the surface of the corresponding hanging end. The structure of the support frame can be as described above, composed of the first support rod and the second support rod connected to each other at the upper end. The connection can be screwing, clamping, or welding, etc. In addition to screwing, the assembly between the support frame and the support piece can also adopt clamping, welding, etc. The installation method of the first support plate and the second support plate can adopt such methods.

[0076] Step S130: install the bottom of the support frame to the target support surface, and adjust the top of the support frame to be horizontal.

[0077] In step S130, the target support surface can be the support surface on the air cooling island. The adjustment of the top of the support frame to be horizontal can be performed by using a level or the like.

[0078] Step S150: hang the first and second hanging members on the first and second hanging ends, respectively.

[0079] In step S150, the first and second hanging members can have hanging portions, respectively. For example, the air cooling pipes can be arranged and installed on the pipe frame in a certain manner, and the cooling pipes and the pipe frame as a whole can be hung on the support structure.

[0080] The implementation process can be the same as the cooling system described above, and thus will not be described again.

[0081] In some optional embodiments, the support frame can include first and second support rods.

[0082] Correspondingly, step S110 can include:

[0083] Step S111: disposing a first gasket member between the upper end and the lower end of the first support rod, on the side surface facing away from the second support rod, and disposing a second gasket member between the upper end and the lower end of the first support rod, on the side surface facing away from the second support rod.

[0084] In step S111, the friction coefficient of the first gasket member is less than that of the side surface of the first support rod facing away from the second support rod, and the friction coefficient of the second gasket member is less than that of the side surface of the second support rod facing away from the second support rod. The first gasket member can be made of a material with a low surface friction coefficient, such as polytetrafluoroethylene, and the second gasket member can also be made of a material with a low surface friction coefficient, such as polytetrafluoroethylene. The specific positions of the first and second gasket members can be the same as those of the target member to be supported described above with respect to the support structure. The installation methods of the first and second gasket members can be screwing, bonding, or hot melting, etc.

[0085] In the implementation process, the first and second support rods are respectively provided with the first and second gasket members, so that in the case that the first and second gasket members are respectively hung on the support structure, the suspended ends of the first and second gasket members or the positions between the suspended ends and the hung ends can be respectively provided with certain support by the first and second gasket members. That is, in addition to a part of the gravity of the first and second gasket members being borne by the support member, the remaining part is borne by the first and second gasket members. In addition, because the friction coefficients of the first and second gasket members are relatively small, the friction between the first and second gasket members is also relatively small, so that in the case that the first and second gasket members change in temperature, etc., they can more easily expand and shrink along the direction of the first and second hung ends, thereby releasing stress. Finally, the ease of deformation of the first and second gasket members hung on the support structure is improved, and the stability of the support structure in supporting the first and second gasket members is further improved, and the integrity of the support structure, the first and second gasket members is ensured to a greater extent.

[0086] Please refer to Figure 10 , Figure 10 is a first flowchart of step S150 in the stress release system installation method provided by the embodiments of the present application. In some optional embodiments, step S150 can include:

[0087] Step S151: A third gasket member and a fourth gasket member are respectively arranged on the side of the first hanging member towards the support frame and the side of the second hanging member towards the support frame. The friction coefficient of the third gasket member is less than that of the second end of the first hanging member, and the friction coefficient of the fourth gasket member is less than that of the second end of the second hanging member.

[0088] In the above step S151, the third and fourth gasket members can be made of materials such as polytetrafluoroethylene with low surface friction coefficient. The connection between the third and fourth gasket members and the first and second hanging members can also be screwing, bonding or hot melting, etc.

[0089] Step S152: The first and second hanging members are respectively hung on the first and second hanging ends.

[0090] In the above step S152, in combination with the previous description of the first and second gasket member embodiments, in the case that the first and second hanging members are respectively hung on the first and second hanging ends, the third gasket member will generally be in sliding contact with the first gasket member, and the fourth gasket member will generally be in sliding contact with the second gasket member.

[0091] In the implementation process, the third gasket and the fourth gasket are arranged on the first hanging piece and the second hanging piece respectively, so that the suspended end of the first hanging piece and the second hanging piece or the part between the suspended end and the hanging end can be supported by the third gasket and the fourth gasket respectively when the first hanging piece and the second hanging piece are hung on the support structure. That is, the gravity of the first hanging piece and the second hanging piece can be supported by the third gasket and the fourth gasket in addition to the part supported by the support. In addition, the friction coefficient of the third gasket and the fourth gasket is relatively small, so that the constraint on the expansion and contraction of the first hanging end and the second hanging end in the direction is relieved to a greater extent, so that the stress can be released more easily by expansion and contraction. Finally, the stability of the support result of supporting the first hanging piece and the second hanging piece is further improved, and the integrity of the support structure itself, the first hanging piece and the second hanging piece is ensured to a greater extent.

[0092] Please refer to Figure 11 , Figure 11 is a second flowchart of step S150 in the stress release system installation method provided by the embodiments of the present application. In some optional embodiments, the first hanging piece can include a plurality of first cooling pipes, and the second hanging piece can include a plurality of second cooling pipes.

[0093] Correspondingly, step S150 can include:

[0094] Step S153: arranging and hanging a plurality of first cooling pipes in a first direction on the first hanging end. The first direction intersects the length direction of the first cooling pipe and is parallel to the plane where the first support plate is located.

[0095] In the above step S153, the first direction can be perpendicular to the "Y" shaped cross section of the support, and the second direction can be parallel to the first direction.

[0096] Step S154: arranging and hanging a plurality of second cooling pipes in a second direction on the second hanging end. The second direction intersects the length direction of the second cooling pipe and is parallel to the plane where the second support plate is located.

[0097] In the above step S154, the second direction can be parallel to the first direction.

[0098] Step S155: hard connecting part or all of the first cooling pipe located at the middle position in the first direction with the support frame.

[0099] In step S155, the first cooling pipes can be arranged on the pipe frame in a certain direction, then be hung on the support structure, and finally the first cooling pipe at the middle position is determined and welded with the support structure. The determination method of the first cooling pipe at the middle position and the welding position can be the same as described above.

[0100] Step S156: Hardly connect part or whole of the second cooling pipe at the middle position in the second direction with the support frame.

[0101] The specific implementation of step S156 can be similar to step S153.

[0102] It is worth mentioning that in step S150, steps S151 to S152 can be performed first, and steps S153 to S156 can be performed second. Alternatively, steps S153 to S156 can be performed first, and steps S151 to S152 can be performed second. In steps S153 to S156, the steps can be performed in numerical order or in other orders, for example, step S154, step S153, step S155, and step S156.

[0103] In the above implementation process, the hard connection between the first cooling pipe at the middle position and the support structure causes the first cooling pipes on both sides of the first cooling pipe at the middle position to be stressed in the first direction, and the stress is released by expanding in the first direction and away from the first cooling pipe at the middle position. In other words, the first cooling pipe on the left side of the hard connection releases stress by expanding to the left, and the first cooling pipe on the right side of the hard connection releases stress by expanding to the right. This avoids the free and random expansion of the first cooling pipes in the first cooling pipe bundle, in which the expansion directions of the first cooling pipes interfere with each other. The hard connection between the second cooling pipe at the middle position and the support structure also has similar process and beneficial effects. Finally, the ease of deformation of the first cooling pipe bundle and the second cooling pipe bundle is further improved, the connection stability between the components in the cooling system is also further improved, and the integrity of the support structure, the first cooling pipe bundle, and the second cooling pipe bundle is ensured to a greater extent. Thus, the heat exchange capacity of the cooling system is ensured.

[0104] Please refer to Figure 12 , Figure 12is a flowchart of the releasing method provided by the embodiments of the present application. Based on the same concept, the embodiments of the present application provide a releasing method, which can be applied to a stress releasing system. The stress releasing system can include a support, a first support plate, a second support plate, a plurality of first hanging members and a plurality of second hanging members. The plurality of first hanging members can be arranged along a first direction and hung on the first support plate, and the plurality of second hanging members can be arranged along a second direction and hung on the second support plate. The first direction can intersect the length direction of the first hanging members and can be parallel to the plane where the first support plate is located. The second direction can intersect the length direction of the second hanging members and can be parallel to the plane where the second support plate is located.

[0105] The other connection relationships between the components of the stress releasing system in the embodiments of the present application and the components that can be included can be the same as those of the stress releasing system described above.

[0106] The method can include:

[0107] Step S210: releasing the stress generated in the length direction of the first hanging member to the second end of the first hanging member based on the hanging between the first end of the first hanging member and the first support plate and the suspension of the second end of the first hanging member.

[0108] In the above step S210, that is, in the case where only one end of the first hanging member has a connection relationship with the first support plate, the remaining part has a certain degree of freedom in the length direction, so when the first hanging member generates stress in the length direction due to temperature change or the like, the stress can be released by deformation in the length direction.

[0109] Step S220: releasing the stress generated in the length direction of the second hanging member to the second end of the second hanging member based on the hanging between the first end of the second hanging member and the second support plate and the suspension of the second end of the second hanging member.

[0110] The specific implementation process and principle of the above step S220 can be similar to those of the above step S210.

[0111] Step S230: releasing the stress generated in the first direction by the plurality of first hanging members to the contact surface of the first support plate based on the hanging between the plurality of first hanging members and the first support plate.

[0112] In the above step S230, when the plurality of first hanging members generate stress parallel to the arrangement direction of the plurality of first hanging members due to temperature change or the like, the stress can be released by deformation in the arrangement direction based on the sliding contact between the hanging part of the plurality of first hanging members and the first support plate.

[0113] Step S240: Based on the hanging between the second hanging pieces and the second support plate, the stress generated by the second hanging pieces in the second direction is released to the contact surface of the second support plate.

[0114] The specific implementation process and principle of the above step S240 can be similar to the above step S230.

[0115] The above implementation process can be the same as the stress release system installation method described above, which will not be described here.

[0116] In summary, the support structure, cooling system, stress release system installation method and release method provided by the various embodiments of the present application can be hung on one end of the target to be supported, with the remaining part suspended, and a first support plate and a second support plate with a smaller friction coefficient are arranged at the first hanging end and the second hanging end respectively, so that the stress generated by the deformation can be released from the other end of the target to be supported, and the stress can be released by the sliding of the hanging part on the support plate. Finally, the stability of the support result for supporting the target to be supported is improved, and the integrity of the support structure itself and the target to be supported is also ensured to the greatest extent. By arranging the first gasket and the second gasket on the first support rod and the second support rod respectively, the friction between the target to be supported and the first gasket and the second gasket is relatively small due to the relatively small friction coefficient of the first gasket and the second gasket, so that the target to be supported can expand and shrink more easily in the direction of the intersection of the first hanging end and the second hanging end when the temperature changes, thereby releasing stress. The hard connection between the first cooling pipe (second cooling pipe) at the intermediate position and the support structure makes the first cooling pipe (second cooling pipe) on the left side of the hard connection expand to the left to release stress, and the first cooling pipe (second cooling pipe) on the right side of the hard connection expands to the right to release stress. Avoiding the free and random expansion of the first cooling pipe in the direction of expansion of each first cooling pipe in the first cooling pipe bundle, further increasing the stress generated by the first cooling pipe bundle and the second cooling pipe bundle, thereby more greatly ensuring the heat exchange capacity of the cooling system.

[0117] The above only describes the preferred embodiments of the present application and is not intended to limit the present application. Those skilled in the art can make various changes and modifications to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.

Claims

1. A support structure, characterized in that, The support structure includes a top and a bottom; The top includes a support member, a first support plate, and a second support plate; The support member has a first hook end and a second hook end; wherein the angle between the plane containing the surface of the first hook end and the plane containing the surface of the second hook end is in the range of 90° to 180°. The first support plate is fixedly connected to the surface of the first hook end, and the second support plate is fixedly connected to the surface of the second hook end; wherein, the coefficient of friction of the first support plate and the second support plate is less than the coefficient of friction of the surface of the corresponding hook end; The bottom includes a first bottom end and a second bottom end; wherein the distance between the first bottom end and the second bottom end is greater than the distance between the first hook end and the second hook end.

2. The support structure according to claim 1, characterized in that, The support structure also includes a first support rod and a second support rod; The upper end of the first support rod is connected to the upper end of the second support rod; The lower ends of the first support rod and the second support rod are respectively disposed on the target support surface; The top is located at the connection between the first support rod and the second support rod, the first bottom is located at the lower end of the first support rod, and the second bottom is located at the lower end of the second support rod.

3. The support structure according to claim 2, characterized in that, A first pad is provided between the upper and lower ends of the first support rod, and the first pad is located on the side of the first support rod facing away from the second support rod. The coefficient of friction of the first pad is less than the coefficient of friction of the side of the first support rod facing away from the second support rod; A second pad is provided between the upper and lower ends of the second support rod, and the second pad is located on the side of the second support rod facing away from the second support rod. The coefficient of friction of the second pad is less than the coefficient of friction of the side of the second support rod facing away from the second support rod.

4. A cooling system, characterized in that, It includes a first cooling tube bundle, a second cooling tube bundle, and a support structure according to any one of claims 1 to 3; The first cooling tube bundle includes a plurality of first cooling tubes, and the second cooling tube bundle includes a plurality of second cooling tubes; The plurality of first cooling pipes are hung on the first support plate of the support structure and arranged along a first direction; wherein, the first direction intersects the length direction of the first cooling pipes and is parallel to the plane of the first support plate of the support structure. The plurality of second cooling pipes are hung on the second support plate of the support structure and arranged along the second direction; wherein the second direction intersects the length direction of the second cooling pipes and is parallel to the plane of the second support plate of the support structure.

5. The cooling system according to claim 4, characterized in that, Part or all of the first cooling tube located at the middle position in the first direction in the first cooling tube bundle is rigidly connected to the support structure; A portion or the entirety of the second cooling pipe located at the middle position in the second direction is rigidly connected to the support structure.

6. A method for installing a stress relief system, characterized in that, in, The stress relief system includes a support frame, a support member, a first support plate, a second support plate, a first connector, and a second connector; the support member includes a first connector end and a second connector end; The method includes: The support frame and support member are assembled, and the first support plate and the second support plate are respectively installed on the surface of the first hook end and the surface of the second hook end of the support member to form a support structure; wherein, the friction coefficient of the first support plate and the second support plate is less than the friction coefficient of the surface of the corresponding hook end. Install the bottom of the support frame onto the target support surface, and adjust the top of the support frame to be level; and The first and second connectors are respectively attached to the first and second connector ends.

7. The method according to claim 6, characterized in that, in, The support frame includes a first support rod and a second support rod; The assembly of the support frame and the support member, and the installation of the first support plate and the second support plate on the surfaces of the first and second hanging ends of the support member, respectively, to form a support structure, includes: A first pad is provided between the upper and lower ends of the first support rod and on the side facing away from the second support rod; and a second pad is provided between the upper and lower ends of the first support rod and on the side facing away from the second support rod. Wherein, the friction coefficient of the first pad is less than the friction coefficient of the side of the first support rod facing away from the second support rod, and the friction coefficient of the second pad is less than the friction coefficient of the side of the second support rod facing away from the second support rod.

8. The method according to claim 6, characterized in that, The step of attaching the first and second connectors to the first and second connectors respectively includes: A third pad and a fourth pad are respectively provided on the side of the second end of the first connector facing the support frame and on the side of the second connector facing the support frame; wherein, the friction coefficient of the third pad is less than the friction coefficient of the second end of the first connector, and the friction coefficient of the fourth pad is less than the friction coefficient of the second end of the second connector. The first connector and the second connector are respectively attached to the first connector end and the second connector end.

9. The method according to claim 6, characterized in that, in, The first connector includes a plurality of first cooling pipes, and the second connector includes a plurality of second cooling pipes; The step of attaching the first and second connectors to the first and second connectors respectively includes: The plurality of first cooling pipes are arranged in a first direction and hung on the first hanging end; wherein, the first direction intersects the length direction of the first cooling pipe and is parallel to the plane of the first support plate. The plurality of second cooling pipes are arranged in a second direction and hung on the second hanging end; wherein, the second direction intersects the length direction of the second cooling pipes and is parallel to the plane of the second support plate. A portion or all of one of the plurality of first cooling pipes located at the middle position in the first direction is rigidly connected to the support frame; and A portion or the entirety of one of the plurality of second cooling tube bundles located at the middle position in the second direction is rigidly connected to the support frame.

10. A release method, characterized in that, This invention is applied to a stress relief system. The stress relief system includes a support member, a first support plate, a second support plate, a plurality of first hooks, and a plurality of second hooks. The plurality of first hooks are arranged along a first direction and hooked onto the first support plate, and the plurality of second hooks are arranged along a second direction and hooked onto the second support plate. The first direction intersects the length direction of the first hooks and is parallel to the plane of the first support plate; the second direction intersects the length direction of the second hooks and is parallel to the plane of the second support plate. The method includes: Based on the connection between the first end of the first connector and the first support plate, and the suspension of the second end of the first connector, the stress generated by the first connector in its length direction is released to the second end of the first connector. Based on the connection between the first end of the second hanger and the second support plate, and the suspension of the second end of the second hanger, the stress generated by the second hanger in its length direction is released to the second end of the second hanger. Based on the connection between the plurality of first hooks and the first support plate, the stress generated by the plurality of first hooks in the first direction is released to the contact surface with the first support plate; and Based on the connection between the plurality of second hooks and the second support plate, the stress generated by the plurality of second hooks in the second direction is released to the contact surface with the second support plate.