Docking device and test equipment
By designing a floating module connection device with both horizontal and vertical floating range, the problems of deviation and operational difficulties when the high-fidelity test docking device is vertically docked with the sorting machine or probe station are solved, achieving higher precision and more convenient docking.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- CHANGMAI SEMICONDUCTOR (CHENGDU) CO LTD
- Filing Date
- 2022-12-29
- Publication Date
- 2026-07-31
AI Technical Summary
Existing high-fidelity testing docking devices suffer from large deviations and operational difficulties when docking with sorting machines or probe stations in the vertical direction.
A docking device comprising a docking module, a heat insulation module, a floating module, and a support module was designed. The floating mechanism of the floating module has floating amounts in both horizontal and vertical directions. Through the movable connection between the floating mechanism and the fixed mechanism, the docking device can achieve floating connection in different directions, reducing the influence of gravity.
It effectively avoids deviations when the docking device is vertically docked with the sorting machine or probe station, reduces the difficulty of connection operation, and improves docking accuracy and ease of operation.
Smart Images

Figure CN115754386B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of packaging and testing technology, and in particular to a docking device and testing equipment. Background Technology
[0002] Existing high-fidelity testing docking devices require a mother plate to connect with a sorting machine or prober. The docking of the mother plate with the sorting machine or prober is crucial, and there are typically two docking methods: horizontal docking and vertical docking. The floating mechanism on the mother plate of existing high-fidelity testing docking devices only allows for horizontal floating. When the mother plate docks vertically with the sorting machine or prober, there is a large docking deviation, requiring secondary adjustments and making operation difficult. Summary of the Invention
[0003] The purpose of this invention is to provide a docking device and testing equipment to alleviate the technical problems of large deviation or difficult operation when high-fidelity testing docking devices are docked with sorting machines or probe stations in the vertical direction in the prior art.
[0004] To solve the above-mentioned technical problems, the technical solution provided by the present invention is as follows:
[0005] In a first aspect, the present invention provides a docking device comprising a docking module, a heat insulation module, a floating module, and a support module;
[0006] The docking module is installed on the heat insulation module and includes a fixing plate for mounting the connector;
[0007] The floating module includes a floating mechanism and a fixed mechanism, the floating mechanism being movably connected to the fixed mechanism, and the floating mechanism having a floating amount in both the horizontal and vertical directions;
[0008] The heat insulation module is installed on the floating mechanism, and the fixing mechanism is installed on the support module.
[0009] Optionally, the floating mechanism includes a first floating component, a second floating component, and a floating element;
[0010] The heat insulation module is connected to the floating component at intervals;
[0011] The floating end of the first floating component and the floating end of the second floating component are both connected to the floating part, the fixed end of the second floating component is installed on the first floating component, and the fixed end of the first floating component is installed on the fixing mechanism.
[0012] When the floating component is in a horizontal state, the floating end of the first floating component supports the floating component; when the floating component is in a vertical state, the floating end of the second floating component supports the floating component.
[0013] Optionally, the first floating component includes a first elastic element, a limiting block, and a base;
[0014] The base is mounted on the fixing mechanism, and the base and the fixing mechanism form a receiving cavity for accommodating the first elastic member and the limiting block;
[0015] One end of the limiting block is located inside the receiving cavity and abuts against the first elastic member, while the other end of the limiting block is located outside the receiving cavity and is connected to the floating member;
[0016] When the end of the first elastic member away from the limiting block abuts against the fixing mechanism, and the floating member is in the horizontal state, the first elastic member is arranged in the vertical direction.
[0017] Optionally, the second floating component includes a second elastic element and a connector;
[0018] The connector is disposed opposite to the floating component, with one end sleeved on the second elastic component and the other end connected to the side wall of the first floating component.
[0019] The end of the second elastic member that is away from the connecting member abuts against the floating member, and when the floating member is in the vertical state, the second elastic member is arranged in the vertical direction.
[0020] Optionally, the floating mechanism further includes a locking assembly;
[0021] The locking assembly is connected to the fixed end of the floating component and the first floating assembly, respectively.
[0022] Optionally, the locking assembly includes a locking plate, a locking post, and a column, wherein the column is fixedly installed on the fixed end of the first floating assembly;
[0023] One end of the locking pin is connected to the locking plate and is set at an angle to the locking plate, while the other end passes through the floating member and is connected to the upright.
[0024] Optionally, multiple floating mechanisms and multiple fixed mechanisms are provided, and the multiple floating mechanisms are movably connected to the multiple fixed mechanisms in a one-to-one correspondence;
[0025] The floating module also includes a crossbeam, with its two ends connected to the two floating mechanisms respectively, and the heat insulation module is installed on the crossbeam.
[0026] Optionally, the support module includes a housing mechanism and a base plate mechanism;
[0027] The heat insulation module is embedded in the outer shell mechanism, the outer shell mechanism is covered by the base plate mechanism, the floating module is located inside the outer shell mechanism, and the fixing mechanism of the floating module is installed on the base plate mechanism;
[0028] The outer shell mechanism and the base plate mechanism enclose a first cavity. The heat insulation module includes a first air blowing component located inside the first cavity for delivering gas into the first cavity.
[0029] Optionally, the outer casing mechanism is provided with an unlocking hole and a cover plate. The unlocking hole is correspondingly provided with the floating mechanism to facilitate locking or unlocking the floating mechanism, and the cover plate is provided on the unlocking hole.
[0030] Optionally, the heat insulation module includes a windbreak assembly, a heat insulation assembly, and a heat insulation sheet;
[0031] The windbreak assembly is located inside the first cavity and surrounds the outer periphery of the first air blowing element;
[0032] The heat insulation component is located on the side of the windproof component away from the base plate mechanism, and the heat insulation sheet is sandwiched between the heat insulation component and the windproof component. A second cavity is formed between the heat insulation component and the heat insulation sheet, and a second air blowing component is provided in the second cavity.
[0033] Optionally, the housing mechanism is provided with a connection hole and a seal, and the heat insulation module passes through the connection hole to connect with the floating mechanism;
[0034] One end of the seal is connected to the outer wall of the heat insulation module, and the other end is connected to the inner wall of the connection hole.
[0035] Secondly, the testing equipment provided by the present invention includes a connector, a positioning component, and a docking device as described in any of the above claims;
[0036] The positioning component includes a positioning pin or positioning pin hole provided in the connector, and a positioning pin hole or positioning pin corresponding to the fixing plate of the docking device.
[0037] The cross-sectional dimension of the locating pin hole is larger than the cross-sectional dimension of the locating pin.
[0038] Based on the above technical solutions, the technical effects achievable by this invention can be analyzed as follows:
[0039] The docking device provided by this invention includes a docking module, a heat insulation module, a floating module, and a support module. The docking module is installed on the heat insulation module and includes a fixing plate for mounting a connector. The floating module includes a floating mechanism and a fixing mechanism, which are movably connected. The floating mechanism has horizontal and vertical floating ranges. The heat insulation module is installed on the floating mechanism, and the fixing mechanism is installed on the support module. The docking device provided by this invention can be applied to testing equipment. The docking module includes a fixing plate to mount the connector. The heat insulation module is installed on the floating mechanism of the floating module, and the fixing mechanism of the floating module is installed on the support module, enabling the heat insulation module to float relative to the support module in both horizontal and vertical directions. This allows for a floating connection between the sorting machine or probe station and the docking device, avoiding the problem of large deviations between the positioning pins of the sorting machine and the positioning holes on the mother plate when the docking device is vertically docked with the sorting machine or probe station due to gravity. This reduces the operational difficulty of connecting the sorting machine and the mother plate. Attached Figure Description
[0040] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0041] Figure 1 This is a schematic diagram of the docking device provided in an embodiment of the present invention;
[0042] Figure 2 Schematic diagram of the internal structure of the docking device provided in the embodiments of the present invention Figure 1 ;
[0043] Figure 3 This is a schematic diagram of the floating module in the docking device provided in an embodiment of the present invention;
[0044] Figure 4 A schematic diagram of the fixing mechanism and the floating mechanism in the docking device provided in an embodiment of the present invention, viewed from a first perspective.
[0045] Figure 5 A schematic diagram of the fixing mechanism and the floating mechanism in the docking device provided in an embodiment of the present invention, viewed from a second perspective;
[0046] Figure 6 This is a partial structural diagram of the floating module in the docking device provided in an embodiment of the present invention;
[0047] Figure 7 A schematic diagram of the internal structure of the floating module in the docking device provided in this embodiment of the invention. Figure 1 ;
[0048] Figure 8 This is a schematic diagram of the structure of the limiting block in the docking device provided in an embodiment of the present invention;
[0049] Figure 9 A schematic diagram of the internal structure of the floating module in the docking device provided in this embodiment of the invention. Figure 2 ;
[0050] Figure 10 A schematic diagram of the internal structure of the floating module in the docking device provided in this embodiment of the invention. Figure 3 ;
[0051] Figure 11 Schematic diagram of the internal structure of the docking device provided in the embodiment of the present invention Figure 2 ;
[0052] Figure 12 for Figure 10 A magnified view of a section at point A in the middle;
[0053] Figure 13 This is a schematic diagram of the bottom plate mechanism in the docking device provided in an embodiment of the present invention;
[0054] Figure 14 This is a schematic diagram of the internal structure of the heat insulation module in the docking device provided in an embodiment of the present invention;
[0055] Figure 15 This is a schematic diagram of the structure of the heat insulation module in the docking device provided in an embodiment of the present invention;
[0056] Figure 16 An exploded view of the heat insulation module in the docking device provided in an embodiment of the present invention;
[0057] Figure 17 This is a schematic diagram of the structure of the first heat insulation component in the docking device provided in an embodiment of the present invention;
[0058] Figure 18 This is a schematic diagram of the structure of the second heat insulation component in the docking device provided in an embodiment of the present invention;
[0059] Figure 19 This is a schematic diagram of the connector in the test equipment provided in an embodiment of the present invention from a first-view perspective;
[0060] Figure 20 This is a schematic diagram of the connector in the test equipment provided in an embodiment of the present invention from a second perspective.
[0061] icon:
[0062] 100 - Docking module; 200 - Thermal insulation module; 210 - First air blowing component; 211 - Air supply pipe; 212 - Fixing component; 220 - Windproof assembly; 221 - Mounting frame; 223 - Windproof plate; 230 - Thermal insulation assembly; 231 - First thermal insulation component; 2311 - First frame; 2312 - First thermal insulation strip; 232 - Second thermal insulation component; 2321 - Second frame; 2322 - Second thermal insulation strip; 2323 - Mounting slot; 2324 - Second through hole; 233 - Third heat insulation component; 234 - Reinforcing component; 2341 - First through hole; 240 - Heat insulation sheet; 250 - Second air blowing component; 300 - Floating mechanism; 310 - First floating assembly; 311 - First elastic component; 312 - Limiting block; 3121 - First main body; 3122 - First protrusion; 3123 - Second main body; 313 - Base 3131-Support plate; 3132-Sleeve; 3133-Receiving cavity; 3134-Second protrusion; 314-Limiting ring; 320-Second floating assembly; 321-Second elastic element; 322-Connector; 3221-Connecting groove; 323-Limiting post; 330-Floating element; 331-Main board; 332-Side plate; 400-Fixing mechanism; 500-Locking assembly; 510-Locking plate; 52 0-Locking pin; 530-Upright column; 600-Crossbeam; 700-Outer shell mechanism; 710-Cover plate; 720-Connecting hole; 730-Seal; 731-Sealing cloth; 732-First fixing strip; 733-Second fixing strip; 800-Base plate mechanism; 810-Moisture-proof sheet; 900-Connector; 910-Positioning pin hole; 920-Connector body; 930-Mounting part; 940-Anti-foolproof protrusion. Detailed Implementation
[0063] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. The components of the embodiments of the present invention described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0064] Therefore, the following detailed description of the embodiments of the invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the invention without inventive effort are within the scope of protection of the invention.
[0065] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0066] In the description of this invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product of this invention is in use. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this invention. In addition, the terms "first," "second," "third," etc., are only used to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0067] Furthermore, terms such as "horizontal," "vertical," and "sag" do not imply that components must be absolutely horizontal or suspended, but rather that they can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal relative to "vertical," and does not mean that the structure must be completely horizontal, but can be slightly tilted.
[0068] In the description of this invention, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0069] The following detailed description of some embodiments of the present invention is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.
[0070] Example 1
[0071] The docking device provided in this embodiment of the invention includes a docking module 100, a heat insulation module 200, a floating module, and a support module. The docking module 100 is mounted on the heat insulation module 200 and includes a fixing plate for mounting a connector 900. The floating module includes a floating mechanism 300 and a fixing mechanism 400, which are movably connected. The floating mechanism 300 has floating amounts in both the horizontal and vertical directions. The heat insulation module 200 is mounted on the floating mechanism 300, and the fixing mechanism 400 is mounted on the support module. Please refer to [link to relevant documentation]. Figure 1 and Figure 2The docking device provided by this invention can be applied to testing equipment. The docking module 100 includes a fixing plate to install the connector 900 on the docking module 100. The heat insulation module 200 is installed on the floating mechanism 300 of the floating module, and the fixing mechanism 400 of the floating module is installed on the support module, so that the heat insulation module 200 can float relative to the support module in the horizontal and vertical directions, thereby realizing the floating connection between the sorting machine or probe station and the docking device. This avoids the problem of large deviation between the positioning pin of the sorting machine and the positioning hole on the mother plate when the docking device is vertically docked with the sorting machine or probe station due to the influence of gravity, thus reducing the operational difficulty of connecting the sorting machine and the mother plate.
[0072] The structure and shape of the floating module are described in detail below:
[0073] The floating mechanism 300 includes a floating element 330, a first floating component 310, and a second floating component 320; the heat insulation module 200 is indirectly connected to the floating element 330; the floating end of the first floating component 310 is connected to the floating element 330, the floating end of the second floating component 320 is connected to the floating element 330, the fixed end of the second floating component 320 is installed on the first floating component 310, and the fixed end of the first floating component 310 is installed on the fixing mechanism 400; when the floating element 330 is in a horizontal state, the floating end of the first floating component 310 supports the floating element 330, and when the floating element 330 is in a vertical state, the floating end of the second floating component 320 supports the floating element 330.
[0074] When the docking device is horizontally docked with the sorting machine, the docking device is in a horizontal state, and consequently, the floating component 330 is also in a horizontal state. The floating end of the first floating component 310 supports the floating component 330, giving the floating component 330 a floating amount in both the horizontal and vertical directions. This allows the sorting machine and the docking device to float and dock, avoiding the problem of large deviations between the positioning pin of the sorting machine and the positioning holes on the docking device. When the docking device is vertically docked with the sorting machine, the docking device is in a vertical state, and consequently, the floating component 330 is in a vertical state. The floating end of the second floating component 320 supports the floating component 330, giving the floating component 330 a floating amount in both the horizontal and vertical directions. This allows the sorting machine and the docking device to float and connect, avoiding the problem of large deviations between the positioning pin of the sorting machine and the positioning holes on the docking device due to the gravity of the docking device. This reduces the operational difficulty when connecting the sorting machine and the docking device.
[0075] like Figures 3 to 10As shown, the first floating component 310 includes a first elastic member 311, a limiting block 312, and a base 313. The base 313 is installed on the fixing mechanism 400 and forms a receiving cavity 3133 between the base 313 and the fixing mechanism 400 to accommodate the first elastic member 311 and the limiting block 312. One end of the limiting block 312 is located inside the receiving cavity 3133 and abuts against the first elastic member 311. The other end of the limiting block 312 is located outside the receiving cavity 3133 and is connected to the floating component 330. The end of the first elastic member 311 facing away from the limiting block 312 abuts against the fixing mechanism 400. When the floating component 330 is in a horizontal state, the first elastic member 311 is arranged in the vertical direction.
[0076] Specifically, please see Figures 3 to 10 The base 313 includes a support plate 3131 and a sleeve 3132. One side of the support plate 3131 is connected to the sleeve 3132, and the other side is connected to the fixing mechanism 400. The sleeve 3132 and the support plate 3131 are arranged at an angle. Both the support plate 3131 and the sleeve 3132 are provided with channels extending along the axial direction of the sleeve. The channel on the support plate 3131 communicates with the channel on the sleeve 3132, and the end of the channel on the support plate 3131 facing away from the sleeve 3132 abuts against the fixing mechanism 400, thereby forming a receiving cavity 3133 between the base 313 and the fixing mechanism 400. The first elastic element 311 is set as a spring, one end of the spring abuts against the limiting block 312, and the other end abuts against the fixing mechanism 400. One end of the sleeve 3132 is connected to the surface of the support plate 3131 to realize the supporting function of the sleeve 3132. Furthermore, the sleeve 3132 is configured as a cuboid, and the support plate 3131 is configured as a plate, with the cross-section of the support plate 3131 being larger than the cross-section of the sleeve 3132.
[0077] When the docking device is horizontally docked with the sorting machine, the docking device is in a horizontal state, and consequently the floating component 330 is in a horizontal state. During the docking process, the floating component 330 is subjected to a vertical force and moves towards the base 313. The floating component 330 drives the limiting block 312 to move towards the receiving cavity 3133. The limiting block 312 drives the spring to generate elastic deformation, providing space for the movement of the limiting block 312, thereby enabling the floating component 330 to have a floating amount in the vertical direction.
[0078] The outer wall of the limiting block 312 has a first protrusion 3122, and the receiving cavity 3133 has a second protrusion 3134 at one end near the floating member 330; the end face of the first protrusion 3122 near the floating member 330 abuts against the end face of the second protrusion 3134 away from the floating member 330.
[0079] Specifically, the limiting block 312 includes a first body 3121, a first protrusion 3122, and a second body 3123. One end of the first protrusion 3122 is connected to the first body 3121, and the other end is connected to the second body 3123. The end of the first body 3121 facing away from the first protrusion 3122 is connected to the floating member 330. The end of the second body 3123 facing away from the first protrusion 3122 is inserted into the first elastic member 311. Furthermore, the cross-sections of the first body 3121, the first protrusion 3122, and the second body 3123 are all circular, and the diameter of the first protrusion 3122 is larger than the diameters of the first body 3121 and the second body 3123. The second protrusion 3134 is annular, and its outer wall fits against the receiving cavity 3133. The inner diameter of the second protrusion 3134 is larger than the outer diameter of the first body 3121 but smaller than the outer diameter of the first protrusion 3122. Preferably, the second protrusion 3134 and the receiving cavity 3133 are integrally formed.
[0080] When the docking device and the sorting machine are docked horizontally, the first main body 3121 moves toward the direction of extending into the receiving cavity 3133. Because the inner diameter of the second protrusion 3134 is greater than the outer diameter of the first main body 3121, the floating part 330 has a floating amount in the horizontal direction. When the external force applied to the floating member 330 is removed, the first elastic member 311 returns to its original shape and drives the limiting block 312 to move in the direction of extending out of the receiving cavity 3133. The limiting block 312 drives the floating member 330 to move vertically away from the base 313 to reset until the first protrusion 3122 abuts against the second protrusion 3134. The first protrusion 3122 and the second protrusion 3134 cooperate to limit the movement range of the limiting block 312 and prevent the limiting block 312 from dislodging from the receiving cavity 3133. The second body 3123 is inserted into the first elastic member 311. The first elastic member 311 abuts against the bottom wall of the first protrusion 3122, increasing the contact area between the first elastic member 311 and the limiting block 312, thereby improving the movement stability of the first elastic member 311.
[0081] Furthermore, the first body 3121, the first protrusion 3122, and the second body 3123 are integrally formed, and the floating part 330 is connected to the first body 3121 by screws. The integral forming of the first body 3121, the first protrusion 3122, and the second body 3123 enhances the connection strength between the first body 3121, the first protrusion 3122, and the second body 3123, and extends the service life of the limiting block 312.
[0082] The first protrusion 3122 has a first inclined surface near the end face of the floating member 330. The first inclined surface gradually slopes away from the axis of the limiting block 312 from the end near the floating member 330 to the end away from the floating member 330. The second protrusion 3134 has a second inclined surface that abuts against the first inclined surface.
[0083] Specifically, when the limiting block 312 is subjected to force and moves in the direction of extending into or out of the receiving cavity 3133, during the stage when the first inclined surface and the second inclined surface are in contact, the first inclined surface moves along the inclination direction of the second inclined surface.
[0084] The second inclined plane acts as a guide for the first inclined plane, improving the movement stability of the limit block 312.
[0085] The first floating component 310 also includes a limiting ring 314; the limiting ring 314 is sleeved on one end of the first elastic member 311 away from the limiting block 312, and its outer wall is in contact with the inner wall of the receiving cavity 3133.
[0086] Specifically, the limiting ring 314 has an annular cross-section, its axis coincides with the axis of the first elastic member 311, and its inner wall fits against the first elastic member 311, while its outer wall fits against the inner wall of the receiving cavity 3133. Furthermore, the height of the limiting ring 314 is less than the height of the first elastic member 311.
[0087] The inner wall of the limiting ring 314 fits against the first elastic member 311, fixing the end of the first elastic member 311 away from the limiting block 312, and preventing the axis of the first elastic member 311 from shifting when it deforms or returns to its original shape.
[0088] The second floating component 320 includes a second elastic member 321 and a connector 322; the connector 322 is disposed opposite to the floating component 330, and one end is sleeved on the second elastic member 321, and the other end is connected to the side wall of the first floating component 310; the end of the second elastic member 321 facing away from the connector 322 abuts against the floating component 330, and when the floating component 330 is in a vertical state, the second elastic member 321 is disposed in the vertical direction.
[0089] Specifically, the connector 322 has a connecting groove 3221 at one end near the second elastic member 321, and the other end is connected to the outer wall of the sleeve 3132; the second elastic member 321 is a spring, one end of which is inserted into the connecting groove 3221, and the other end abuts against the floating member 330.
[0090] When the docking device is vertically docked with the sorting machine, the floating member 330 is in a vertical state, the connecting member 322 is located below the floating member 330, and the second elastic member 321 is arranged vertically. The floating member 330 is subjected to a vertical force and moves towards the connecting member 322, driving the second elastic member 321 to produce elastic deformation. The compression of the second elastic member 321 offsets the weight of the docking device, preventing the entire weight of the docking device from being applied to the positioning pin of the sorting machine, thus extending the service life of the positioning pin. Furthermore, when the floating member 330 is in a vertical state, the first elastic member 311 is arranged horizontally. When the floating member 330 is deflected by force, it drives the limiting block 312 to deflect vertically. Because the first protrusion 3122 has a first inclined surface and the second protrusion 3134 has a second inclined surface, the first protrusion 3122 moves towards the direction of extending into the receiving cavity 3133 under the guidance of the second inclined surface, playing an auxiliary positioning role.
[0091] The second floating component 320 also includes a limiting post 323; one end of the limiting post 323 is connected to the floating member 330, and the other end is inserted into the end of the second elastic member 321 that is away from the connecting member 322.
[0092] Specifically, the cross-section of the limiting post 323 is circular and its diameter is smaller than the inner diameter of the second elastic member 321. One end of the limiting post 323 is detachably connected to the floating member 330 by screws, and the other end is inserted into the second elastic member 321.
[0093] The limiting post 323 prevents the second elastic element 321 from tilting, thereby improving the stability of the second elastic element 321.
[0094] The floating mechanism 300 also includes a locking component 500; the locking component 500 is connected to the fixed end of the floating member 330 and the first floating component 310 respectively, wherein the fixed end of the first floating component 310 refers to the end of the first floating component 310 that does not float.
[0095] When the floating mechanism 300 is not needed, the floating component 330 is locked by the locking assembly 500 to limit the floating amount of the floating component 330, prevent the floating component 330 from shaking during transportation, and facilitate the transportation of the floating mechanism 300.
[0096] The locking assembly 500 includes a locking plate 510, a locking pin 520, and a column 530. The column 530 is fixedly installed on the support plate 3131. One end of the locking pin 520 is connected to the locking plate 510 and is set at an angle to the locking plate 510. The other end passes through the floating member 330 and is connected to the column 530.
[0097] Specifically, please see Figure 10The upright column 530 is vertically mounted on the surface of the support plate 3131 opposite to the floating member 330, and is spaced apart from the floating member 330 to avoid affecting the floating of the floating member 330 during unlocking. The locking plate 510 is plate-shaped, and the locking column 520 is cylindrical. The locking plate 510 is fixedly mounted on one end of the locking column 520, and the locking column 520 is perpendicular to the locking plate 510. Furthermore, the locking plate 510 and the locking column 520 are an integral structure. The locking plate 510 and the locking column 520 are provided with interconnected through holes, which extend along the axial direction of the locking column 520. The upright column 530 is provided with a receiving hole for accommodating the locking column 520, and the bottom wall of the receiving hole is provided with a threaded hole. The floating member 330 is provided with a through hole for the locking column 520 to pass through, and the axis of the through hole coincides with the axis of the receiving hole on the upright column 530. When it is necessary to lock the floating component 330, the locking pin 520 passes through the floating component 330 and is inserted into the receiving hole of the column 530. The bolt passes through the through holes on the locking plate 510 and the locking pin 520 and engages with the threaded hole in the column 530, thereby fixing the position of the locking plate 510. The locking plate 510 abuts against the floating component 330, thereby locking the floating component 330. When it is necessary to unlock the floating component 330, the locking pin 520 can be removed from the column 530, making it convenient to lock and unlock the floating component 330.
[0098] After passing through the floating member 330, the locking pin 520 connects to the upright post 530. The upright post 530 is fixedly connected to the support plate 3131, thus fixing the distance between the locking plate 510 and the support plate 3131, limiting the amount of floating of the floating member 330 along the axial direction of the upright post 530. The surface of the locking plate 510 near the locking pin 520 is in contact with the surface of the floating member 330, increasing the contact area between the locking assembly 500 and the floating member 330, thereby enhancing the locking effect. In addition, the locking plate 510 is plate-shaped to prevent the locking pin 520 from disengaging from the floating member 330 during locking.
[0099] The locking assembly 500 also includes a fastener that passes through the locking plate 510 and is connected to the floating member 330.
[0100] Specifically, the fastener is a screw, and multiple screws are provided, spaced apart along the length and width directions of the locking plate 510. Of course, fasteners such as pins should also be within the protection scope of this embodiment of the invention.
[0101] When it is necessary to lock the floating component 330, the bolt passes through the locking plate 510 and the locking pin 520 and engages with the threaded connection of the column 530. The screw passes through the locking plate 510 and connects with the floating component 330. The floating component 330 then remains stationary relative to the locking plate 510. Because the locking plate 510 is fixed to the support plate 3131 via the locking pin 520 and the column 530, the position of the floating component 330 is fixed, limiting the amount of floating of the floating component 330 along the circumference of the column 530. Multiple screws are provided to enhance the locking effect on the floating component 330. There are two unlocking methods for the floating component 330. The first method is to remove only the bolts to contact the connection between the locking pin 520 and the column 530, so that the floating component 330 can float along the axial direction of the locking pin 520. The second method is to remove both the bolts and screws, and remove the locking plate 510 and the locking pin 520 from the floating component 330, so that the floating component 330 can float in both the horizontal and vertical directions.
[0102] As another way of connecting the locking pin 520 and the column 530, the outer peripheral wall of the locking pin 520 is provided with external threads, and the column 530 is provided with threaded holes that mate with the locking pin 520. The locking pin 520 and the column 530 are connected and disassembled through threaded engagement, thereby achieving the locking and unlocking of the floating part 330.
[0103] The floating component 330 includes a main board 331 and a side plate 332; the side plate 332 is connected to the side wall of the main board 331 and is set at an angle to the main board 331; the first floating component 310 is connected to the main board 331, and the second floating component 320 is connected to the surface of the side plate 332 near the main board 331.
[0104] Specifically, both the main board 331 and the side plate 332 are plate-shaped and perpendicular to each other, with the length of the side plate 332 being less than the length of the main board 331. The surface of the main board 331 near the side plate 332 is connected to the limiting block 312, and the surface of the side plate 332 near the main board 331 abuts against the second elastic member 321.
[0105] The main board 331 and the side plate 332 are perpendicular to each other and are connected to the first floating component 310 and the second floating component 320 respectively, which reduces the space occupied by the floating mechanism 300.
[0106] The fixed end of the first floating component 310 is installed on the fixed mechanism 400.
[0107] Specifically, optionally, the fixing mechanism 400 includes a pad. The support plate 3131 is connected to the upper surface of the pad by bolts, and the end of the first elastic member 311 facing away from the limiting block 312 abuts against the upper surface of the pad.
[0108] The first elastic element 311 abuts against the pad block, fixing the end of the first elastic element 311 away from the limiting block 312. When the first elastic element 311 is subjected to force, the compression of the first elastic element 311 is realized; and the pad block realizes the connection between the floating mechanism 300 and other components of the detection equipment.
[0109] Multiple floating mechanisms 300 and multiple fixed mechanisms 400 are provided, and multiple floating mechanisms 300 are movably connected to multiple fixed mechanisms 400 in a one-to-one correspondence; the floating module also includes a crossbeam 600, with both ends of the crossbeam 600 connected to two floating mechanisms 300 respectively, and the heat insulation module 200 is installed on the crossbeam 600.
[0110] Specifically, multiple fixed mechanisms 400 are spaced apart and mounted on the base plate mechanism 800; each fixed mechanism 400 is equipped with a floating mechanism 300, the axes of the receiving cavities 3133 in the multiple floating mechanisms 300 are parallel to each other, and the axes of the second elastic elements 321 in the multiple floating mechanisms 300 are parallel to each other. Every two floating mechanisms 300 are connected by a crossbeam 600, specifically, the main plates 331 of the two floating mechanisms 300 are respectively connected to both ends of the crossbeam 600. Please refer to... Figure 3 The thermal insulation module 200 is installed on the crossbeam 600, which supports the thermal insulation module 200. Multiple floating mechanisms 300 cooperate to support the thermal insulation module 200, improving its stability during the docking process.
[0111] The outer casing 700 is provided with an unlocking hole and a cover plate 710. The unlocking hole is provided in correspondence with the floating mechanism 300 to facilitate locking or unlocking of the floating mechanism 300. The cover plate 710 covers the unlocking hole.
[0112] Specifically, please see Figure 1 and Figure 2 The system has multiple unlocking holes, each corresponding to one of the locking components 500. To unlock a locking component 500, the operator opens the cover plate 710 over the corresponding unlocking hole, inserts it into the hole to unlock the component, and then closes the cover plate 710. Similarly, to lock a locking component 500, the operator opens the cover plate 710 over the corresponding unlocking hole, inserts it into the hole to lock the component, and then closes the cover plate 710. Furthermore, the cover plate 710 is hinged to the unlocking hole or detachably connected with screws.
[0113] The unlocking hole is positioned opposite to the locking component 500. When the cover plate 710 is open, it is convenient for the operator to adjust the locking component 500 to lock or unlock the floating mechanism 300. When the cover plate 710 is closed, it seals the unlocking hole.
[0114] The structure and shape of the support module are described in detail below:
[0115] like Figures 11 to 15 As shown, the support module includes a housing mechanism 700 and a base plate mechanism 800; the heat insulation module 200 is embedded in the housing mechanism 700, the housing mechanism 700 is covered by the base plate mechanism 800, the floating module is located inside the housing mechanism 700, and the fixing mechanism 400 is installed on the base plate mechanism 800; the housing mechanism 700 and the base plate mechanism 800 enclose to form a first cavity, and the heat insulation module 200 includes a first air blowing element 210, which is located in the first cavity and is used to deliver gas into the first cavity.
[0116] The first air blowing component 210 is located in the first cavity and delivers dry gas into the first cavity. The dry gas inhibits the generation of condensate, thereby preventing condensate from damaging the parts of the docking device.
[0117] like Figure 1 , 2 As shown, the outer casing 700 is provided with a connection hole 720 and a seal 730. The heat insulation module 200 passes through the connection hole 720 and is connected to the crossbeam 600 of the floating module. One end of the seal 730 is connected to the outer wall of the heat insulation module 200, and the other end is connected to the inner wall of the connection hole 720.
[0118] Specifically, please see Figure 11 and Figure 12 The sealing element 730 includes a sealing cloth 731, a first fixing strip 732, and a second fixing strip 733. The sealing cloth 731 is elongated and extends circumferentially along the connection hole 720. The first fixing strip 732 is connected to the outer wall of the heat insulation module 200, and one end of the sealing cloth 731 is inserted between the first fixing strip 732 and the heat insulation module 200. The second fixing strip 733 is connected to the inner wall of the connection hole 720, and the other end of the sealing cloth 731 is inserted between the second fixing strip 733 and the connection hole 720. Specifically, the sealing cloth 731 is made of leak-proof shielding cloth.
[0119] One end of the sealing cloth 731 is fixed to the outer wall of the plug-in module by the first fixing strip 732, and the other end is fixed to the inner wall of the connection hole 720 by the second fixing strip 733, thereby sealing the first cavity with the sealing cloth 731 and preventing the leakage of dry gas. Furthermore, because the sealing cloth 731 has a certain degree of elasticity, the heat insulation module 200 can float in either the horizontal or vertical direction.
[0120] The base plate mechanism 800 includes a moisture-proof sheet 810 and a base plate, and the base plate is connected to the outer shell mechanism 700; the moisture-proof sheet 810 is disposed on the surface of the base plate opposite to the outer shell mechanism 700.
[0121] Specifically, please see Figure 13 The base plate is rectangular, and multiple moisture-proof sheets 810 are provided, spaced apart along the length of the base plate. Specifically, the moisture-proof sheets 810 are made of moisture-proof foam.
[0122] When condensation occurs in the first cavity, the moisture-proof sheet 810 absorbs and consumes the condensation, preventing it from flowing into the electronic components and causing damage.
[0123] The structure and shape of the thermal insulation module 200 are described in detail below:
[0124] like Figure 15 and Figure 16 As shown, the heat insulation module 200 includes a windbreak assembly 220, a heat insulation assembly 230, and a heat insulation sheet 240; the windbreak assembly 220 is located in the first cavity and surrounds the outer periphery of the first air blowing member 210; the heat insulation assembly 230 is located on the side of the windbreak assembly 220 away from the bottom plate mechanism 800, and the heat insulation sheet 240 is sandwiched between the heat insulation assembly 230 and the windbreak assembly 220, forming a second cavity between the heat insulation assembly 230 and the heat insulation sheet 240.
[0125] Specifically, multiple heat insulation modules 200 and multiple connection holes 720 are provided. The multiple connection holes 720 are spaced apart along the length direction of the outer shell mechanism 700, and the multiple heat insulation modules 200 are inserted into the multiple connection holes 720 one by one.
[0126] The windbreak assembly 220 surrounds the outer periphery of the first air blowing element 210, guiding the flow direction of the dry gas blown out from the first air blowing element 210. A second cavity is formed between the heat insulation assembly 230 and the heat insulation sheet 240. The heat flow in the outside air must pass through the second cavity before it can be transferred to the first cavity. The second cavity prevents the heat flow in the outside air from being directly transferred to the first cavity, thus protecting and buffering the first cavity. The heat insulation sheet 240 is sandwiched between the heat insulation assembly 230 and the windbreak assembly 220, preventing the heat flow in the heat insulation assembly 230 from being transferred to the windbreak assembly 220, further protecting and buffering the first cavity.
[0127] The wind deflector assembly 220 includes a mounting frame 221 and a wind deflector plate 223; four wind deflector plates 223 are provided, and the four wind deflector plates 223 are respectively connected to the four side walls of the mounting frame 221.
[0128] Specifically, the first air blowing component 210 includes an air supply pipe 211 and a fixing component 212. The air supply pipe 211 is installed on the fixing component 212. The fixing component 212 is plate-shaped, and its two ends are respectively connected to the inner wall of the mounting frame 221. The wind deflector 223 is plate-shaped, and four wind deflectors 223 are connected end to end, with two adjacent wind deflectors 223 being vertically arranged.
[0129] Both ends of the fixing member 212 are connected to the inner wall of the mounting frame 221, so that the first air blowing member 210 is located inside the heat insulation module 200, thereby enabling the first air blowing member 210 to deliver dry gas into the first cavity. The two crossbeams 600 are connected to the two sides of the mounting frame 221, respectively, to support the mounting frame 221. The two ends of the crossbeams 600 are connected to the two floating mechanisms 300, respectively. The four wind baffles 223 are connected end to end, and the two adjacent wind baffles 223 are vertically arranged to guide the flow of dry gas.
[0130] A dew point sensor is installed inside the first cavity.
[0131] Specifically, the dew point sensor is mounted on the side wall of the mounting frame 221 or on the crossbeam 600.
[0132] The dew point sensor monitors the dew point in the first cavity and transmits the test results to the host computer for real-time display. The operator adjusts the airflow rate of the first air blowing component 210 according to different test results, thereby controlling the dew point in the first cavity.
[0133] The heat insulation module 200 also includes a second air blowing element 250, which is located in the second cavity and is used to deliver dry gas into the second cavity.
[0134] Specifically, multiple second air blowing elements 250 are provided, and the multiple second air blowing elements 250 are spaced apart along the length direction of the second cavity.
[0135] The second air blowing element 250 delivers dry gas into the second cavity, thereby suppressing the generation of condensate and preventing condensate from forming in the second cavity, which in turn prevents the condensate in the second cavity from flowing into the first cavity.
[0136] The heat insulation component 230 includes a first heat insulation element 231, a second heat insulation element 232 and a third heat insulation element 233; the second heat insulation element 232 is located between the first heat insulation element 231 and the third heat insulation element 233, and the heat insulation sheet 240 is embedded in the third heat insulation element 233. The first heat insulation element 231, the second heat insulation element 232, the third heat insulation element 233 and the heat insulation sheet 240 surround and form a second cavity.
[0137] Specifically, please see Figures 14 to 16The first heat insulation component 231, the second heat insulation component 232, and the third heat insulation component 233 are all rectangular parallelepipeds and are all made of epoxy resin. Of course, the first heat insulation component 231, the second heat insulation component 232, and the third heat insulation component 233 may also use other heat insulation materials, such as asbestos or vacuum panels, which should also be within the protection scope of this embodiment. The third heat insulation component 233 is configured as a frame structure with a cavity; the heat insulation sheet 240 is configured as a flat plate, with its length direction arranged along the width direction of the third heat insulation component 233, and multiple sheets are provided; the multiple heat insulation sheets 240 are arranged along the length direction of the third heat insulation component 233 within the cavity of the third heat insulation component 233.
[0138] The heat insulation sheet 240 is embedded in the cavity of the third heat insulation component 233, which isolates the heat insulation component 230 from the windproof component 220, thereby controlling the dew point inside the heat insulation component 230.
[0139] The heat insulation component 230 also includes a reinforcing member 234; the surface of the second heat insulation member 232 opposite to the first heat insulation member 231 is provided with a mounting groove 2323, and the reinforcing member 234 is installed in the mounting groove 2323; the second air blowing member 250 is installed in the reinforcing member 234.
[0140] Specifically, the reinforcement member 234 is provided with a plurality of first through holes 2341 for cables to pass through, and the bottom wall of the mounting groove 2323 is provided with a plurality of second through holes 2324; the plurality of first through holes 2341 are distributed in M rows and N columns, and the plurality of second through holes 2324 are connected to the plurality of first through holes 2341 in a one-to-one correspondence.
[0141] The reinforcement component 234 is embedded in the mounting groove 2323 of the second heat insulation component 232, which improves the structural strength of the heat insulation module 200 and thus improves the pressure resistance of the heat insulation module 200.
[0142] The first heat insulation component 231 includes a first frame 2311 and a first heat insulation strip 2312; the two ends of the first heat insulation strip 2312 are respectively connected to the inner wall of the first frame 2311, and multiple first heat insulation strips 2312 are provided, and multiple first heat insulation strips 2312 are spaced apart along the length or width direction of the first frame 2311; and / or, the second heat insulation component 232 includes a second frame 2321 and a second heat insulation strip 2322; the two ends of the second heat insulation strip 2322 are respectively connected to the inner wall of the second frame 2321, and multiple second heat insulation strips 2322 are provided, and multiple second heat insulation strips 2322 are spaced apart along the length and width direction of the second frame 2321, and the gap between adjacent second heat insulation strips 2322 forms a second through hole 2324, then the position of the second heat insulation strip 2322 matches the position of the side wall of the first through hole 2341, and heat insulation is provided for the side wall of the first through hole 2341, further improving the heat insulation effect on the reinforcement component 234.
[0143] Please see Figure 17The first heat insulation component 231 includes a first frame 2311 and a first heat insulation strip 2312, with the first frame 2311 supporting the first heat insulation strip 2312. A first heat insulation strip 2312 is provided between two adjacent first through holes 2341 of the reinforcing component 234, improving the heat insulation effect on the reinforcing component 234. Please refer to... Figure 18 The second heat insulation component 232 includes a second frame 2321 and a second heat insulation strip 2322. The second frame 2321 supports the second heat insulation strip 2322. Multiple second heat insulation strips 2322 divide the second frame 2321 into multiple second wire passage holes 2324 to facilitate the passage of cables.
[0144] Example 2
[0145] The testing equipment provided by this invention includes the testing equipment described in Embodiment 1, and therefore also possesses all the beneficial effects of Embodiment 1, which will not be repeated here.
[0146] In an optional embodiment of the present invention, the testing equipment further includes a connector 900 and a positioning component, wherein the connector 900 is mounted on the fixing plate via the positioning component.
[0147] Specifically, the connector 900 includes a connector body 920 and two mounting portions 930. The connector body 920 is a cuboid, and the two mounting portions 930 are located at opposite ends of the body. Two positioning components are provided, each corresponding to one of the two mounting portions 930.
[0148] The positioning assembly mounts connector 900 onto the mounting plate.
[0149] As one implementation method, please refer to Figure 19 and Figure 20 The positioning component includes a positioning pin or positioning pin hole 910 provided in the mounting part 930, and a corresponding positioning pin hole 910 or positioning pin provided in the fixing plate; the cross-sectional dimension of the positioning pin hole 910 is larger than the cross-sectional dimension of the positioning pin.
[0150] Specifically, the positioning component includes a positioning pin disposed in the mounting portion 930 and a positioning pin hole 910 disposed in the fixing plate. The positioning pin is inserted into the positioning pin hole 910, and the cross-sectional dimension of the positioning pin hole 910 is larger than the cross-sectional dimension of the positioning pin. Alternatively, the positioning component includes a positioning pin hole 910 disposed in the mounting portion 930 and a positioning pin disposed in the fixing plate. The positioning pin is inserted into the positioning pin hole 910, and the cross-sectional dimension of the positioning pin hole 910 is larger than the cross-sectional dimension of the positioning pin. In this embodiment, the positioning component includes a positioning pin hole 910 disposed in the mounting portion 930 and a positioning pin disposed in the fixing plate. Furthermore, the cross-sections of both the positioning pin and the positioning pin hole 910 are circular, and the outer diameter of the positioning pin is smaller than the inner diameter of the positioning pin hole 910. Of course, other shapes for the cross-sections of the positioning pin and the positioning pin hole 910, such as ellipses, should also be within the protection scope of this embodiment.
[0151] The mounting part 930 is mounted on the fixed plate by inserting a positioning pin into the positioning pin hole 910. The structure is simple and easy to install. The cross-sectional size of the positioning pin hole 910 is larger than the cross-sectional size of the positioning pin, so that the positioning pin hole 910 and the positioning pin are clearance fit, thereby enabling the mounting part 930 to float relative to the fixed plate and improving the reliability of the connector 900 docking.
[0152] In another embodiment, the positioning component includes a stepped hole and a leveling screw provided in the mounting part 930. The leveling screw passes through the stepped hole and is threadedly connected to the fixing plate, and the optical axis portion of the leveling screw is clearance-fitted with the stepped hole.
[0153] The testing equipment also includes a foolproof structure configured to restrict the installation orientation of connector 900.
[0154] Specifically, the fixing plate is provided with mounting holes for mounting the connector 900. The cross-section of both the mounting holes and the connector body 920 is set to rectangular. The foolproof structure includes a groove at one end of the mounting hole and a foolproof protrusion 940 at one end of the outer wall of the connector body 920; or, the foolproof structure includes a foolproof protrusion 940 at one end of the mounting hole and a groove at one end of the outer wall of the connector body 920.
[0155] When installing connector 900, insert connector body 920 into the mounting hole. Because one end of the mounting hole has a groove and one end of connector body 920 has a corresponding anti-fooling protrusion 940, the insertion direction of connector body 920 is fixed. Otherwise, it cannot be properly inserted into the mounting hole, effectively avoiding the abnormal situation of connector 900 being installed backwards.
[0156] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.
Claims
1. A docking device, characterized in that, include: The assembly includes a docking module (100), a thermal insulation module (200), a floating module, and a support module. The docking module (100) is installed on the heat insulation module (200) and includes a fixing plate for installing the connector (900); The floating module includes a floating mechanism (300) and a fixed mechanism (400), the floating mechanism (300) and the fixed mechanism (400) are movably connected, and the floating mechanism (300) has a floating amount in the horizontal direction and the vertical direction; The heat insulation module (200) is installed on the floating mechanism (300), and the fixing mechanism (400) is installed on the support module; The floating mechanism (300) includes a first floating component (310), a second floating component (320), and a floating element (330). The heat insulation module (200) is indirectly connected to the floating component (330); The floating end of the first floating component (310) and the floating end of the second floating component (320) are both connected to the floating member (330). The fixed end of the second floating component (320) is installed on the first floating component (310), and the fixed end of the first floating component (310) is installed on the fixing mechanism (400). When the floating component (330) is in a horizontal state, the floating end of the first floating component (310) supports the floating component (330). When the floating component (330) is in a vertical state, the floating end of the second floating component (320) supports the floating component (330). The floating component (330) includes a main board (331) and a side plate (332); the side plate (332) is connected to the side wall of the main board (331) and is set at an angle to the main board (331); the first floating component (310) is connected to the main board (331), and the second floating component (320) is connected to the side plate (332) near the surface of the main board (331); The first floating component (310) includes a first elastic element (311), a limiting block (312), and a base (313). The base (313) is mounted on the fixing mechanism (400), and the base (313) and the fixing mechanism (400) enclose a receiving cavity (3133) for accommodating the first elastic member (311) and the limiting block (312). One end of the limiting block (312) is located inside the receiving cavity (3133) and abuts against the first elastic member (311), while the other end of the limiting block (312) is located outside the receiving cavity (3133) and is connected to the floating member (330). When the end of the first elastic member (311) away from the limiting block (312) abuts against the fixing mechanism (400), and the floating member (330) is in the horizontal state, the first elastic member (311) is arranged in the vertical direction; The second floating component (320) includes a second elastic element (321) and a connector (322); The connector (322) is disposed opposite to the floating member (330), and one end is sleeved on the second elastic member (321), and the other end is connected to the side wall of the first floating component (310); The end of the second elastic member (321) facing away from the connecting member (322) abuts against the floating member (330), and when the floating member (330) is in the vertical state, the second elastic member (321) is arranged in the vertical direction.
2. The docking device according to claim 1, characterized in that, The floating mechanism (300) also includes a locking assembly (500); The locking assembly (500) is connected to the fixed end of the floating member (330) and the first floating assembly (310), respectively.
3. The docking device according to claim 2, characterized in that, The locking assembly (500) includes a locking plate (510), a locking pin (520), and a column (530), wherein the column (530) is fixedly installed on the fixed end of the first floating assembly (310); One end of the locking pin (520) is connected to the locking plate (510) and is set at an angle to the locking plate (510), while the other end passes through the floating member (330) and is connected to the column (530).
4. The docking device according to claim 1, characterized in that, Both the floating mechanism (300) and the fixed mechanism (400) are provided in multiples, and the multiple floating mechanisms (300) are movably connected to the multiple fixed mechanisms (400) in a one-to-one correspondence; The floating module also includes a crossbeam (600), the two ends of which are respectively connected to the two floating mechanisms (300), and the heat insulation module (200) is installed on the crossbeam (600).
5. The docking device according to any one of claims 1-4, characterized in that, The support module includes an outer shell mechanism (700) and a base plate mechanism (800). The heat insulation module (200) is embedded in the outer shell mechanism (700), the outer shell mechanism (700) is covered by the base plate mechanism (800), the floating module is located inside the outer shell mechanism (700), and the fixing mechanism (400) of the floating module is installed on the base plate mechanism (800). The outer shell mechanism (700) and the base plate mechanism (800) enclose a first cavity. The heat insulation module (200) includes a first air blowing element (210), which is located inside the first cavity and is used to deliver gas into the first cavity.
6. The docking device according to claim 5, characterized in that, The outer casing (700) is provided with an unlocking hole and a cover plate (710). The unlocking hole is provided in correspondence with the floating mechanism (300) to facilitate locking or unlocking the floating mechanism (300). The cover plate (710) is provided on the unlocking hole.
7. The docking device according to claim 5, characterized in that, The heat insulation module (200) includes a windbreak assembly (220), a heat insulation assembly (230), and a heat insulation sheet (240); The windproof assembly (220) is located inside the first cavity and surrounds the outer periphery of the first air blowing element (210); The heat insulation component (230) is located on the side of the windproof component (220) away from the base plate mechanism (800), and the heat insulation sheet (240) is sandwiched between the heat insulation component (230) and the windproof component (220). A second cavity is formed between the heat insulation component (230) and the heat insulation sheet (240), and a second air blowing component (250) is provided in the second cavity.
8. The docking device according to claim 5, characterized in that, The outer casing (700) is provided with a connection hole (720) and a seal (730), and the heat insulation module (200) passes through the connection hole (720) and is connected to the floating mechanism (300); One end of the seal (730) is connected to the outer wall of the heat insulation module (200), and the other end is connected to the inner wall of the connection hole (720).
9. A testing device, characterized in that, Includes a connector (900), a positioning component, and a docking device as described in any one of claims 1-8; The positioning component includes a positioning pin or positioning pin hole (910) provided in the connector (900), and a positioning pin hole (910) or positioning pin provided in the fixing plate of the docking device. The cross-sectional dimension of the positioning pin hole (910) is larger than the cross-sectional dimension of the positioning pin.