Male and female joint device
By designing a male and female connector device with variable installation space, using the guide latch block and the ejection module to adapt to equipment of different thicknesses, the problem that devices in the prior art are difficult to adapt to equipment of different thicknesses is solved, and a more efficient and economical equipment inspection and installation process is achieved.
Patent Information
- Application Number
- CN202411734187.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Priority Date
- 2023-11-29
- Filing Date
- 2024-11-29
- Publication Date
- 2025-05-30
AI Technical Summary
The existing male and female joint devices are difficult to adapt according to the thickness of the equipment to be installed, resulting in frequent replacement of the devices, which increases the unit cost of inspection.
A male and female joint device is designed, which includes a body member, a push member and a guide latch module. The body member has a variable mounting space width, and adaptation of devices of different thicknesses is achieved by guiding the latch block and the ejection module.
It realizes automatic adjustment of the installation space according to the thickness of the equipment to be installed, reduces the frequency of replacement devices, reduces the unit cost of inspection, and improves the efficiency and accuracy of equipment installation.
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Figure CN120073401A_ABST
Abstract
Description
[0001] Cross - reference to related applications
[0002] This application claims the priority and benefit of Korean Patent Application No. 10 - 23 - 169856, filed on November 29, 2023, which is incorporated herein by reference for all purposes as if fully set forth herein. Technical Field
[0003] The present invention relates to a male - female connector device, and more particularly, to a male - female connector device whose structure varies according to the thickness of a device to be installed. Background Art
[0004] When testing a device to be installed, such as a Solid State Disk (SSD), the device to be tested is placed in a test male - female connector.
[0005] When the thickness of the device to be installed is large, a male - female connector device with an installation space portion having a relatively large width in the front - rear direction is correspondingly required.
[0006] Therefore, it is necessary to replace the device to be installed according to the thickness of the device to be installed, which becomes a factor increasing the unit cost of inspecting the device to be installed.
[0007] Prior Art Documents
[0008] Patent Documents
[0009] Published Patent No. 10 - 2010 - 0096612 Summary of the Invention
[0010] Technical Problem
[0011] In order to solve the above problems, an object of the present invention is to provide a male - female connector device whose structure varies according to the thickness of a device to be installed.
[0012] Technical Solution
[0013] A male - female connector device according to an embodiment of the present invention, as a male - female connector device for testing a device to be installed, includes: a main body member having an installation space portion; a pushing member whose position is variable relative to the main body member and having a pop - up module; and a guide latch module installed on the main body member, the main body member including a side main body portion constituting at least one side surface of the installation space portion, the guide latch module including a guide latch block that can protrude into the interior of the installation space portion through the side main body portion.
[0014] According to an embodiment, the main body member includes a first front main body portion constituting the rear surface of the installation space portion, and the guide latch block has a predetermined interval from the first front main body portion in the front - rear direction.
[0015] According to one embodiment, the side main body portion has side holes, the side holes and the first front main body portion are spaced apart to have a predetermined interval, and the guide latch block can protrude into the interior of the installation space portion through the side holes.
[0016] According to one embodiment, the guide latch module includes a latch spring that is disposed on the outer side surface of the guide latch block and elastically biases the guide latch block toward the inside of the installation space portion.
[0017] According to one embodiment, the guide latch module has a structure that is symmetric about the center of the installation space portion.
[0018] According to one embodiment, the guide latch block includes a guide inclined surface that is disposed at the upper side corner on the side of the installation space portion.
[0019] According to one embodiment, the guide inclined surface includes a center inclined surface and a first corner inclined surface. The first corner inclined surface is formed between the center inclined surface and the first front main body portion. The center inclined surface is an inclined surface that slopes upward and outward when the guide latch block is viewed in the front-rear direction. The first corner inclined surface is an inclined surface formed by adding an upward and outward inclined first inclined component when the guide latch block is viewed in the front-rear direction and an inclined component that slopes rearward and outward when the guide latch block is viewed from above.
[0020] According to one embodiment, the main body member includes a base main body portion that constitutes the bottom surface of the installation space portion, and the base main body portion has a connector.
[0021] According to one embodiment, the main body member includes a first front main body portion that constitutes the rear surface of the installation space portion. The guide latch block and the first front main body portion have a predetermined interval in the front-rear direction, and the connector is located between the first front main body portion and the guide latch block in the front-rear direction. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is an external view of a male-female connector device according to an embodiment of the present invention.
[0023] Figure 2 It is a sectional view along D1-D1 in Figure 1 , and Figure 3 It is a sectional view along D2-D2 in Figure 1 .
[0024] Figure 4 It is an enlarged view of the guide latch module and the ejection module.
[0025] Figure 5 It is an exploded view of the structure of the guide latch module.
[0026] Figure 6 Schematic diagrams showing the shape of the guiding latch block from different directions.
[0027] Figure 7 and Figure 8 Schematic diagrams of the male-female connector device according to an embodiment of the present invention when devices to be installed with different thicknesses are installed therein.
[0028] Figure 9 and Figure 10 Schematic diagrams of the guiding operation of the guiding inclined surface of the guiding latch block on the device to be installed when devices to be installed with different thicknesses are installed in the male-female connector device according to an embodiment of the present invention.
[0029] Figure 11 Schematic diagrams of the operation of the ejection module in the male-female connector device according to an embodiment of the present invention. Detailed implementation manners
[0030] Hereinafter, preferred embodiments of the present invention will be described with reference to the accompanying drawings.
[0031] Figure 1 External view of the male-female connector device according to an embodiment of the present invention.
[0032] The male-female connector device according to an embodiment of the present invention can be a male-female connector device for testing devices to be installed such as semiconductor devices.
[0033] The male-female connector device according to an embodiment of the present invention can include a main body member 100; a pushing member 200; and a guiding latch module 300.
[0034] Figure 2 is a cross-sectional view along Figure 1 D1-D1 in Figure 3 is a cross-sectional view along Figure 1 D2-D2 in Figure 4 is an enlarged view of the guiding latch module 300 and the ejection module 240. Figure 5 is an exploded view of the side main body portion 130 and the guiding latch module 300.
[0035] The main body member 100 can include an installation space portion 110, a front main body portion 120, a side main body portion 130, and a base main body portion 140.
[0036] The installation space portion 110 is formed at the central position of the main body member 100. The installation space portion 110 is open upward. The installation space portion 110 has a predetermined width in the front-rear direction, a predetermined width in the left-right direction, and a predetermined depth in the up-down direction, and can have a shape suitable for installing the device to be installed.
[0037] The front main body portion 120 constitutes the front and rear portions of the main body member 100. That is, the front main body portion 120 is provided at the front and rear positions of the installation space portion 110. The front main body portions 120 located in front of and behind the installation space portion 110 face each other in the front-rear direction and are spaced apart by a predetermined width in the front-rear direction. Specifically, the front main body portion 120 may include: a first front main body portion 120A, which is located behind the installation space portion 110; and a second front main body portion 120B, which is located in front of the installation space portion 110. The width by which the first front main body portion 120A and the second front main body portion 120B are spaced apart from each other in the front-rear direction may correspond to the width of the installation space portion 110 in the front-rear direction. The interval between the first front main body portion 120A and the second front main body portion 120B (the width of the installation space portion 110 in the front-rear direction) may be W1.
[0038] The side main body portion 130 constitutes the left and right portions of the main body member 100. That is, the side main body portion 130 is provided at the left and right positions of the installation space portion 110.
[0039] The side main body portions 130 located on the left and right of the installation space portion 110 face each other in the left-right direction and are spaced apart by a predetermined width in the left-right direction. The widths by which the side main body portions 130 located on the left and right of the installation space portion 110 are spaced apart from each other in the left-right direction may correspond to the width of the installation space portion 110 in the left-right direction.
[0040] The guiding latch module 300 described later may be coupled to the side main body portion 130.
[0041] According to an embodiment, as Figure 5 shown, the side main body portion 130 may have a side hole 132 that penetrates the side main body portion 130 in the horizontal direction. The side hole 132 may be a hole that penetrates the side main body portion 130 in the left-right direction. The side hole 132 and the front main body portion 120 may have a predetermined interval in the front-rear direction. For example, the front-rear direction distance between the side hole 132 and the first front main body portion 120A may be W2. Therefore, the side hole 132 may be located in front of the side main body portion 130.
[0042] The specific coupling form of the guiding latch module 300 coupled to the side main body portion 130 will be described later.
[0043] The base main body portion 140 constitutes the lower portion of the main body member 100. That is, the base main body portion 140 is provided at the bottom of the installation space portion 110.
[0044] The base main body 140 may have a connector 142, which has a predetermined area and is exposed in the upward direction. The device to be installed may have connection terminals at the bottom, and when the device to be installed is installed in the installation space portion 110, the connection terminals may be connected to the connector 142. The connector 142 may include a predetermined contact member (not shown). The contact member may mediate the connection between the device to be installed and various external electrical devices (e.g., PCB, etc.).
[0045] The connector 142 may be located behind the installation space portion 110. Specifically, as Figure 3 shown, when viewed from above, the connector 142 may be located behind the side hole 132.
[0046] The pusher 200 may be provided on the main body 100. The pusher 200 may change its position in the up and down direction on the main body 100.
[0047] The pusher 200 may have a through space portion 210, a pusher head 220, a pusher rod portion 230, and an ejection module 240.
[0048] The through space portion 210 is formed at the central position of the pusher 200.
[0049] The through space portion 210 is open in the up and down direction. The through space portion 210 has a predetermined width in the front and back direction, a predetermined width in the left and right direction, and a predetermined depth in the up and down direction, and may have a shape suitable for the device to be installed to pass through.
[0050] The pusher head 220 constitutes the upper part of the pusher 200.
[0051] The pusher head 220 may have a plate-like structure with a predetermined area. The through space portion 210 may be formed by a hole passing through the pusher head 220 in the up and down direction. The pusher head 220 may be located on the main body 100.
[0052] The pusher rod portion 230 constitutes the left and right sides of the pusher 200. The pusher rod portion 230 may have a left-right symmetric structure with the installation space portion 110 provided therebetween.
[0053] The pusher rod portion 230 is provided at the lower part of the pusher head 220, and may be a portion having a predetermined beam shape extending in the up and down direction. The pusher rod portion 230 may be located between the front main bodies 120 in the front and back direction. The pusher rod portion 230 may be located outside the side main bodies 130 in the left and right direction. The lower end of the pusher rod portion 230 may have a connection groove 232, and at least a part of the ejection module 240 may be connected to the connection groove 232.
[0054] The ejection module 240 is provided at the lower part of the pusher 200. The ejection module 240 can be provided at the lower part of each pusher rod part 230 respectively. The ejection module 240 provided at the lower part of each pusher rod part 230 can have a left - right symmetric structure. The ejection module 240 can include an ejection block 242, a first ejection shaft 244, and a second ejection shaft 246.
[0055] The ejection block 242 can be a predetermined block extending in the left - right direction. The inner end of the ejection block 242 can protrude into the interior of the installation space.
[0056] The first ejection shaft 244 connects the ejection block 242 and the main body part 100. With the first ejection shaft 244 as the center, the ejection block 242 can rotate relative to the main body part 100.
[0057] The second ejection shaft 246 connects the ejection block 242 and the pusher rod part 230. Through the second ejection shaft 246, the pusher rod part 230 and the ejection block 242 can be rotatably connected to each other.
[0058] The first ejection shaft 244 can be located at a position close to the central part of the ejection block 242, and the second ejection shaft 246 can be located at a position close to the outer end of the ejection block 242. Therefore, if the position of the pusher rod part 230 moves in the up - down direction, the ejection block 242 can swing back and forth with the first ejection shaft 244 as the center. That is, in linkage with the up - down position movement of the pusher rod part 230, the outer end of the ejection block 242 is displaced in the up - down direction, and contrary to the outer end of the ejection block 242, the inner end of the ejection block 242 can be displaced in the up - down direction. Therefore, the ejection block 242 can perform the ejection operation of the device to be installed located on the inner end of the ejection block 242.
[0059] Figure 5 It is a structural decomposition diagram of the guiding latch module 300. Figure 6 It is a schematic diagram showing the shape of the guiding latch block 310 from different directions.
[0060] The guiding latch module 300 can be located within the installation space part 110. Specifically, the guiding latch module 300 is a module capable of changing the front - rear direction width of at least a part of the installation space part 110.
[0061] The guiding latch module 300 can be provided on the left and right sides of the installation space part 110 with the installation space part 110 as the center. Specifically, the guiding latch module 300 can be respectively provided on the side main body parts 130. In addition, the guiding latch module 300 can be symmetrically provided on the side main body parts 130, and the side main body parts 130 form the left and right sides of the installation space part 110.
[0062] The guiding latch module 300 may include a guiding latch block 310. Further, the guiding latch module 300 may include a latch spring 330 and a mounting block 320 that elastically support the guiding latch block 310.
[0063] The guiding latch block 310 may be a block having a predetermined width in the front-rear direction and a predetermined width in the left-right direction. The guiding latch block 310 may have an overall hexahedral block shape.
[0064] According to an embodiment, the guiding latch block 310 may have a guiding inclined surface 314. The guiding inclined surface 314 may be provided at one corner of the guiding latch block 310. Specifically, the guiding inclined surface 314 of the guiding latch block 310 may have a chamfered shape formed at the upper corner of the surfaces where two guiding latch blocks 310 face each other. The facing surfaces of the guiding latch block 310 will be described as inner side surfaces.
[0065] According to an embodiment, the guiding inclined surface 314 may be composed of a plurality of inclined surfaces. For example, as Figure 6 shown, the guiding inclined surface 314 may include a central inclined surface 314a extending along the central portion of the guiding latch block 310. When observing the guiding latch block 310 from the front-rear direction, the central inclined surface 314a may be composed of inclined surfaces formed at the upper corner on one side of the guiding latch block 310. The central inclined surface 314a may have a first inclination component L1 that inclines upward and outward.
[0066] In addition, the guiding inclined surface 314 may further include corner inclined surfaces that are respectively formed in front of or behind the central inclined surface 314a. As Figure 6 shown, when observing the guiding latch block 310 from above, the corner inclined surfaces may be composed of inclined surfaces formed at the front or rear upper corners of the guiding latch block 310.
[0067] Specifically, the corner inclined surface may include a first corner inclined surface 314b. Further, the corner inclined surface may include a second corner inclined surface 314c. The first corner inclined surface 314b may be located behind the central inclined surface 314a. That is, it may be located between the central inclined surface 314a and the first front main body portion 120A.
[0068] Specifically, the first corner inclined surface 314b formed at the rear of the guiding latch block 310 (behind the central inclined surface 314a) may be composed of a first inclination component L1 that inclines upward and outward when observing the guiding latch block 310 from the front-rear direction ( Figure 6 of (a)), and an inclination component L2 that inclines rearward and outward when observing the guiding latch block 310 from above ( Figure 6 of (c)).
[0069] Specifically, a second corner inclined surface 314c formed in front of the guide latch block 310 (in front of the central inclined surface 314a) can be composed of a first inclined component L1 that inclines upward and outward when observing the guide latch block 310 from the front-rear direction (of (a)), and an inclined component L3 that inclines forward and outward when observing the guide latch block 310 from above (of (c)). Figure 6 When observing the guide latch block 310 from the front-rear direction (of (a)), Figure 6 and an inclined surface formed by adding an inclined component L3 that inclines forward and outward when observing the guide latch block 310 from above (of (c)).
[0070] The figure shows a way in which all of the central inclined surface 314a, the first corner inclined surface 314b, and the second corner inclined surface 314c are provided, but it is not limited thereto. That is, there may also be an embodiment in which only the central inclined surface 314a is provided, an embodiment in which only the first corner inclined surface 314b is provided, or an embodiment in which the central inclined surface 314a and the first corner inclined surface 314b are provided.
[0071] On the other hand, as shown in the drawings, each inclined surface has a consistent inclination angle, and an angle is formed between the inclined surfaces, but it is not limited thereto. That is, there may also be an embodiment in which the inclined surface is composed of a curved surface having a curvature, and a rounding is formed between the inclined surfaces.
[0072] According to an embodiment, the guide latch block 310 may have a spring insertion groove 312. The spring insertion groove 312 may be formed on one side of the guide latch block 310. The surface on which the spring insertion groove 312 is formed may be the outer side surface of the guide latch block 310, and the outer side surface is a surface opposite to the inner side surface of the guide latch block 310 on which the guide inclined surface 314 is formed.
[0073] Furthermore, the guide latch block 310 may have a predetermined step that is stuck in the side hole 132 to prevent it from unnecessarily leaving the side hole 132.
[0074] The mounting block 320 may be a predetermined block. The mounting block 320 may be connected to the outside of the side main body portion 130. The mounting block 320 may have a laterally open side space portion 322.
[0075] The latch spring 330 may be an elastic spring. The latch spring 330 is located in the side space portion 322 and may elastically bias between the mounting block 320 and the guide latch block 310. One side of the latch spring 330 may be located in the spring insertion groove 312 formed in the guide latch block 310. The latch spring 330 may elastically bias the guide latch block 310 toward the inside of the mounting space portion 110.
[0076] The male-female joint spring 400 may be provided between the main body member 100 and the pushing member 200. Specifically, the male-female joint spring 400 may be located, for example, between the side main body portion 130 and the pushing head 220 to elastically bias the pushing head 220 in the upward direction.
[0077] Refer to again Figure 5 , the specific combination form and operation of the guiding latch module 300 will be described as follows.
[0078] The side main body portion 310 can be located within the side hole 132 of the side main body portion 130. The inner side surface of the guiding latch block 310 (the surface formed with the guiding inclined surface 314) can protrude into the inside of the installation space portion 110 through the side hole 132. At this time, the position of the side hole 132 is as described above, and the guiding latch block 310 and the first front main body portion 120A are spaced apart by a predetermined interval.
[0079] The mounting block 320 can be connected to the outer side surface of the side main body portion 130. The latch spring 330 can elastically bias between the side space portion 322 of the mounting block 320 and the outer side surface of the guiding latch block 310.
[0080] As described above, the guiding latch module 300 can be connected to the main body member 100.
[0081] With the above structure, the guiding latch block 310 can move its position between a first state and a second state. The first state is a state where at least a part is positioned to protrude into the inside of the installation space, and the second state is a state where it is pushed to the outside of the installation space and removed from the installation space. At this time, the latch spring 330 can elastically bias the guiding latch block 310 to the second state.
[0082] Figure 7 and Figure 8 is a schematic diagram when devices to be installed with different thicknesses are installed in the male-female joint device according to an embodiment of the present invention. Figure 9 and Figure 10 is a schematic diagram of the guiding operation of the guiding inclined surface 314 of the guiding latch block 310 on the device to be installed when devices to be installed with different thicknesses are installed in the male-female joint device according to an embodiment of the present invention.
[0083] Next, the operation and effect of the male-female joint device according to an embodiment of the present invention will be described.
[0084] The male-female joint device according to an embodiment of the present invention can install devices to be installed with different thicknesses.
[0085] That is, when installing a relatively thin device to be installed (the first device to be installed S1) into the male-female joint device according to an embodiment of the present invention, the first device to be installed S1 can be guided and installed within the installation space portion 110 between the guiding latch block 310 and the first front main body portion 120A.
[0086] At this time, as Figure 3As shown, when viewed from above, the connector 142 is located behind the side hole 132, so that the connection between the connection terminal provided at the bottom of the first device to be installed S1 and the connector can be achieved.
[0087] On the other hand, when a relatively thick device to be installed (the second device to be installed S2) is installed into the male-female joint device according to an embodiment of the present invention, the second device to be installed S2 can be guided and installed in the installation space portion 110 between the first front main body portion 120A and the second front main body portion 120B.
[0088] The situation where the first device to be installed S1 is installed on the male-female joint device according to an embodiment of the present invention will be described below. The first device to be installed S1 can be located between the guide latch block 310 and the first front main body portion 120A. That is, the first device to be installed S1 is located in the space between the guide latch block 310 and the first front main body portion 120A, and can be guided and held in position by the guide latch block 310 and the first front main body portion 120A.
[0089] Next, the situation where the second device to be installed S2 is installed on the male-female joint device according to an embodiment of the present invention will be described. The second device to be installed S2 can be located between the first front main body portion 120A and the second front main body portion 120B. That is, the second device to be installed S2 is located in the space between the first front main body portion 120A and the second front main body portion 120B, and can be guided and held in position by the first front main body portion 120A and the second front main body portion 120B. At this time, during the installation process of the second device to be installed S2, the guide latch block 310 can be pushed outwards as shown by the arrow F in Figure 8 the figure.
[0090] During the process of installing the device to be installed as described above, the guide latch block 310 can easily guide the installation of the device to be installed. That is, according to this embodiment, since the guide latch block 310 has a guide slope 314, the installation of the device to be installed can be guided along the guide slope 314.
[0091] According to an embodiment, since the guide slope 314 includes a central slope 314a, an angular slope 314b, and an angular slope 314c, the installation of the device to be installed can be guided more easily.
[0092] As Figure 10 shown, the second device to be installed S2 can be installed in the installation space portion 110 while abutting against the central slope 314a. By abutting the lower end corner of the second device to be installed S2 against the central slope 314a, it can be easily guided.
[0093] Furthermore, as Figure 9As shown, the first device to be installed S1 can be installed in the installation space portion 110 while abutting against the angular inclined surface. According to the embodiment, since the guiding latch block 310 has an angular inclined surface (the first angular inclined surface 314b) on the side facing the first front main body portion 120A, the lower end corner of the first device to be installed S1 can abut against the first angular inclined surface 314b and be naturally guided to the space between the guiding latch block 310 and the first front main body portion 120A.
[0094] As described above, the structure of the installation space portion 110 of the male-female connector device according to the embodiment of the present invention can be variable. Therefore, according to the thickness of the device to be installed, the installation space portion 110 can be selectively adjusted, and devices to be installed with different thicknesses can be installed in the male-female connector device.
[0095] In addition, according to the embodiment, since the guiding latch block 310 has a guiding inclined surface 314, during the process of installing the device to be installed, collisions and frictions between the device to be installed and the component (the guiding latch block 310) can be prevented, and the installation can be easily guided.
[0096] Figure 11 It is a schematic diagram of the operation of the ejection module 240 in the male-female connector device according to an embodiment of the present invention.
[0097] If the pusher 200 is lowered as shown by the arrow P, the ejection block 242 of the ejection module 240 can rotate around the first ejection shaft 244 as shown by the arrow R. Therefore, the inner end portion of the ejection block 242 rises, and the device to be installed located on the ejection block 242 can be taken out in the upward direction, as shown by the arrow Q.
[0098] The ejection block 242 can perform the ejection operation without distinguishing between the first device to be installed S1 and the second device to be installed S2. According to an example, the ejection block 242 can be symmetrically located on both sides of the base main body portion 140.
[0099] In the male-female connector device according to the embodiment of the present invention, the structure of the installation space portion can be variable. Therefore, according to the thickness of the device to be installed, the installation space portion of the male-female connector device can be selectively adjusted, and devices to be installed with different thicknesses can be selectively installed in the male-female connector device.
[0100] In addition, during the process of installing the device to be installed into the male-female connector device, collisions and frictions between the device to be installed and the components (the guiding latch block) of the male-female connector device can be prevented, and the installation of the device to be installed can be easily guided.
[0101] Although the preferred embodiments have been shown and described above, the present invention is not limited to the above specific embodiments. Of course, those skilled in the art to which the present invention pertains can make various modifications without departing from the gist of the present invention claimed in the claims, and these modifications should not be understood to deviate from the technical idea or prospect of the present invention.
[0102] Description of Reference Numerals
[0103] 100: Main body
[0104] 110: Installation space part
[0105] 120: Front main body part
[0106] 120A: First front main body part
[0107] 120B: Second front main body part
[0108] 130: Side main body part
[0109] 132: Side hole
[0110] 140: Base main body part
[0111] 142: Connector
[0112] 200: Pushing member
[0113] 210: Through space part
[0114] 220: Pushing head
[0115] 230: Pushing rod part
[0116] 232: Connection groove
[0117] 240: Ejecting module
[0118] 242: Ejecting block
[0119] 244: First ejecting shaft
[0120] 246: Second ejecting shaft
[0121] 300: Guiding latch module
[0122] 310: Guiding latch block
[0123] 312: Spring insertion groove
[0124] 314: Guiding inclined surface
[0125] 314a: Central inclined surface
[0126] 314b: First corner inclined surface
[0127] 314c: Second corner inclined surface
[0128] 320: Mounting block
[0129] 322: Side space part
[0130] 330: Latch spring
[0131] 400: Male-female connector spring.
Claims
1. A male and female connector device for testing a device to be installed, comprising: A main body having an installation space portion; A push member, which is positionally changeable relative to the main member and has a pop-up module; as well as a guide latch module mounted on the main body, The main body comprises: a side body portion, which constitutes at least one side surface of the installation space portion, The boot latch module comprises: A guide latch block may protrude through the side body portion into the interior of the installation space portion.
2. The male and female connector device according to claim 1, wherein: The main body comprises: a first front body portion, which constitutes the rear of the installation space portion, The guide latch block has a predetermined interval from the first front body portion in a front-rear direction.
3. The male and female connector device according to claim 2, wherein: The side body portion has a side hole, The side hole and the first front body portion are spaced apart to have a predetermined interval, The guide latch block may protrude into the interior of the installation space portion through the side hole.
4. The male and female connector device according to claim 1, wherein: The boot latch module comprises: A latch spring is disposed on the outer side of the guide latch block and elastically biases the guide latch block toward the inner side of the installation space portion.
5. The male and female connector device according to claim 1, wherein: The guide latch module has a left-right symmetrical structure centered on the center of the installation space portion.
6. The male and female connector device according to claim 1, wherein: The guide latch block comprises: A guide slope is provided at an upper corner located on the side of the installation space portion.
7. The male and female connector device according to claim 6, wherein: The guiding slope comprises: a central bevel and a first angle bevel, wherein the first angle bevel is formed between the central bevel and the first front body portion, The central inclined surface is an inclined surface inclined upward and outward when the guide latch block is viewed from the front-back direction. The first angle slope is a slope formed by adding a first slope component that slopes upward and outward when the guide latch block is viewed from the front-rear direction and a slope component that slopes rearward and outward when the guide latch block is viewed from above.
8. The male and female connector device according to claim 1, wherein: The main body comprises: a base body portion, which constitutes the bottom surface of the installation space portion, The base body has a connector.
9. The male and female connector device according to claim 8, wherein: The main body comprises: a first front body portion, which constitutes the rear of the installation space portion, The guide latch block and the first front body portion have a predetermined interval in the front-to-rear direction. The connector is located between the first front body portion and the guide latch block in the front-rear direction.