Slot device
By designing the first and second moving parts in the slot device, the friction and collision problems when inserting and removing the memory stick are solved, ensuring close contact between the sensor and the object to be measured, and achieving sensor protection and monitoring accuracy.
Patent Information
- Application Number
- CN202422160649.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2024-03-22
- Filing Date
- 2024-09-03
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-09-03
AI Technical Summary
When inserting or removing a memory stick, it is easy for it to rub or collide with the temperature sensor, causing damage or failure of the sensor. Existing technologies cannot effectively reduce friction and collision and ensure that the sensor is close to the memory stick to obtain accurate temperature monitoring data.
A slot device is designed, comprising a slot body, a first moving part, and a second moving part. A sensor is arranged on the second moving part. The reciprocating motion of the first moving part drives the second moving part to change position, thereby avoiding friction and collision with the object to be measured during insertion and removal, and ensuring close contact between the sensor and the object to be measured after insertion.
It reduces the friction and collision between the object to be tested and the sensor when it is plugged in and out, provides effective protection for the sensor, and improves the accuracy of the sensor's monitoring of the object to be tested.
Smart Images

Figure CN223320845U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of electronic equipment, and in particular to a slot device. Background Art
[0002] After a memory stick is inserted into a motherboard slot, a temperature sensor is needed to monitor its temperature. The closer the temperature sensor is to the memory stick, the more accurate the monitoring data. Ideally, close contact is ideal. However, frequent insertion and removal of memory sticks can easily cause friction or collisions with the temperature sensor, causing damage or even failure.
[0003] Existing technology usually uses very precise technology to manufacture a card slot of appropriate size to install the temperature sensor to reduce friction and collision between the memory stick and the temperature sensor when inserting and removing the memory stick. However, this solution cannot guarantee the reduction of friction and collision problems, nor can it ensure that the temperature sensor is close to the memory stick during monitoring to obtain accurate monitoring data. Utility Model Content
[0004] In view of the above, it is necessary to provide a slot device that can reduce the problem of friction and collision between the object to be measured and the sensor, provide effective protection for the sensor, and at the same time improve the accuracy of the sensor in monitoring the object to be measured.
[0005] The present application provides a slot device, comprising: a slot body, the slot body being used for inserting an object to be measured; a first moving part, the first moving part being movably arranged in the slot body and being able to reciprocate in a first direction; a second moving part, the second moving part being movably arranged in the slot body and being able to link with the first moving part; a sensor, the sensor being arranged in the second moving part; wherein, when the first moving part moves toward the second moving part along the first direction, the first moving part drives the second moving part to move away from the slot body; when the first moving part moves away from the second moving part along the first direction, the first moving part drives the second moving part to move toward the slot body; when the second moving part moves away from the slot body, the sensor moves from the first position to the second position and contacts the object to be measured; when the second moving part moves toward the slot body, the sensor moves from the second position to the first position and away from the object to be measured.
[0006] In the present application, both the first moving part and the second moving part are movably disposed in the slot body, and the sensor is disposed in the second moving part. The first moving part drives the second moving part by reciprocating in a first direction, thereby driving the position of the sensor to change. Thus, when the object to be measured is inserted into the slot body, the first moving part and the second moving part can pre-position the sensor in a first position away from the object to be measured, thereby reducing the problem of friction and collision between the object to be measured and the sensor during insertion and removal, and providing effective protection for the sensor. After the object to be measured is inserted into the slot body, the first moving part and the second moving part can then position the sensor in a second position where it can contact the object to be measured, thereby improving the accuracy of the sensor in monitoring the object to be measured.
[0007] In some embodiments, the first direction is consistent with the direction in which the object to be tested is inserted into the slot body.
[0008] In some embodiments, the second moving part is made of an elastic material, one end of the second moving part is connected to the slot body, the sensor is arranged at the other end of the second moving part, and the first moving part drives one end of the second moving part to move closer to or away from the slot body by stretching the second moving part; or, the slot device also includes a first elastic member, which is arranged between the second moving part and the slot body, and the first moving part drives the second moving part to move closer to or away from the slot body by stretching the second moving part.
[0009] In some embodiments, the first moving part is disposed on the slot body through the first connecting part, and a motion guide rail is provided between the first moving part and the first connecting part. The first moving part can reciprocate along the first direction relative to the first connecting part through the motion guide rail.
[0010] In some embodiments, one end of the first moving part close to the second moving part is tapered. When the first moving part reciprocates along the first direction relative to the first connecting part, the tapered end of the first moving part drives the second moving part to move closer to or away from the slot body by stretching the second moving part.
[0011] In some embodiments, a linkage component is provided between the second moving part and the slot body. When the first moving part can reciprocate along the first direction relative to the first connecting part, the first moving part drives the second moving part to move away from or closer to the slot body by driving the linkage component to expand the second moving part.
[0012] In some embodiments, the linkage assembly includes a roller arranged on the slot body and a support member coaxially arranged on the roller. When the first moving part can reciprocate along the first direction relative to the first connecting part, the first moving part drives the second moving part to move away from or closer to the slot body by driving the roller to rotate the support member and support the second moving part.
[0013] In some embodiments, the radial cross-section of the expander is elliptical or fan-shaped.
[0014] In some embodiments, the linkage assembly includes a roller arranged on the slot body and a support rod coaxially arranged on the roller. When the first moving part can reciprocate along the first direction relative to the first connecting part, the first moving part drives the second moving part to move away from or closer to the slot body by driving the roller to move the support rod relative to the roller.
[0015] In some embodiments, the linkage assembly includes a first connecting rod and a second connecting rod; the first connecting rod is movably connected to the first moving part and the second moving part; the second connecting rod is movably connected to the first moving part and the slot body; when the first moving part can reciprocate along the first direction relative to the first connecting part, the first moving part drives the second moving part to move away from or closer to the slot body by driving the first connecting rod and the second connecting rod to spread the second moving part.
[0016] In some embodiments, a second elastic member is provided between the second moving part and the slot body. When the first moving part can reciprocate along the first direction relative to the first connecting part, the first moving part drives the second elastic member to expand and contract and drives the second moving part to move away from or closer to the slot body by stretching the second moving part.
[0017] In some embodiments, a locking member is further included that is rotatably disposed on the first moving part, and the locking member is used to lock the object to be tested in the slot device when the object to be tested is inserted into the slot device and the first moving part moves along the first direction close to the second moving part. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 This is a schematic diagram of a scene in which a memory stick is inserted into a motherboard slot in the related art.
[0019] Figure 2 It is a structural diagram of the slot device of an embodiment of the present application.
[0020] Figure 3 This is a schematic diagram of an application scenario of the slot device according to an embodiment of the present application.
[0021] Figure 4 It is a structural exploded diagram of the slot in an embodiment of the present application.
[0022] Figure 5 This is a structural diagram of the slot body of an embodiment of the present application.
[0023] Figure 6 This is a structural diagram of the first moving part of the first embodiment of the present application.
[0024] Figure 7 This is a structural diagram of the first connecting portion of an embodiment of the present application.
[0025] Figure 8 It is a structural diagram of the locking member of an embodiment of the present application.
[0026] Figure 9A This is a schematic diagram of the principle of the first moving part driving the second moving part to move close to the slot body in the first embodiment of the present application.
[0027] Figure 9B This is a schematic diagram of the principle of the first moving part driving the second moving part to move away from the slot body in the first embodiment of the present application.
[0028] Figure 9C This is a schematic diagram of a first elastic member provided between the second moving portion and the slot body of the first embodiment of the present application.
[0029] Figure 10A This is a schematic diagram showing the principle of the first moving part driving the second moving part to move closer to the slot body in the second embodiment of the present application.
[0030] Figure 10B This is a schematic diagram showing the principle of the first moving part driving the second moving part to move away from the slot body in the second embodiment of the present application.
[0031] Figure 10C This is a schematic diagram of a first elastic member provided between the second moving portion and the slot body in the second embodiment of the present application.
[0032] Figure 11A This is a schematic diagram showing the principle of the first moving part driving the second moving part to move closer to the slot body in the third embodiment of the present application.
[0033] Figure 11B This is a schematic diagram of the principle of the first moving part driving the second moving part to move away from the slot body in the third embodiment of the present application.
[0034] Figure 11C This is a schematic diagram of a first elastic member provided between the second moving portion and the slot body in the third embodiment of the present application.
[0035] Figure 12A This is a schematic diagram showing the principle of the first moving part driving the second moving part to move closer to the slot body in the fourth embodiment of the present application.
[0036] Figure 12B This is a schematic diagram showing the principle of the first moving part driving the second moving part to move away from the slot body in the fourth embodiment of the present application.
[0037] Figure 12C This is a schematic diagram of a first elastic member provided between the second moving portion and the slot body in the fourth embodiment of the present application.
[0038] Figure 13A This is a principle diagram of the first moving part of the fifth embodiment of the present application driving the second moving part to move close to the slot body.
[0039] Figure 13B This is a schematic diagram of the principle of the first moving part driving the second moving part to move away from the slot body in the fifth embodiment of the present application.
[0040] Figure 13C This is a schematic diagram of a first elastic member provided between the second moving portion and the slot body in the fifth embodiment of the present application.
[0041] Figure 14A This is a schematic diagram showing the principle of the first moving part driving the second moving part to move closer to the slot body in the sixth embodiment of the present application.
[0042] Figure 14B This is a schematic diagram of the principle of the first moving part driving the second moving part to move away from the slot body in the sixth embodiment of the present application.
[0043] Figure 14C This is a schematic diagram of a first elastic member provided between the second moving portion and the slot body in the sixth embodiment of the present application.
[0044] Figure 15A This is a schematic diagram of the principle of the first moving part driving the second moving part to move closer to the slot body in the seventh embodiment of the present application.
[0045] Figure 15B This is a schematic diagram of the principle of the first moving part driving the second moving part to move away from the slot body in the seventh embodiment of the present application.
[0046] Description of main component symbols
[0047] Motherboard slot 10
[0048] Temperature Sensor 101
[0049] Memory stick 20
[0050] Slot device 1
[0051] First moving part 11
[0052] Slope surface 111
[0053] Fork 112
[0054] slot 1121
[0055] The second moving part 12
[0056] First elastic member 121
[0057] Linkage component 122
[0058] Slot body 13
[0059] Main body 131
[0060] slot portion 132
[0061] Fixing portion 133
[0062] Slot hook 1311
[0063] Through hole 1312
[0064] Sensor 14
[0065] FPC circuit board 141
[0066] First connecting portion 15
[0067] Convex edge 151
[0068] Engaging protrusion 152
[0069] Locking member 16
[0070] Locking brim 161
[0071] Locking protrusion 162
[0072] Tail 163
[0073] Reinforcement sheet 17
[0074] Object under test 2
[0075] Test device 3
[0076] The following specific implementation methods will further illustrate the present application in conjunction with the above-mentioned drawings. DETAILED DESCRIPTION
[0077] In the description of the embodiments of this application, words such as "exemplary," "or," and "for example" are used to indicate examples, illustrations, or descriptions. Any embodiment or design described as "exemplary" or "for example" in the embodiments of this application should not be construed as being preferred or advantageous over other embodiments or designs. Rather, the use of words such as "exemplary," "or," and "for example" is intended to present the relevant concepts in a concrete manner.
[0078] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this application belongs. The terms used in the specification of this application are for the purpose of describing specific embodiments only and are not intended to limit this application. It should be understood that, unless otherwise specified in this application, " / " means or. For example, A / B can mean A or B. "And / or" in this application is merely a way to describe the association relationship of associated objects, indicating that three relationships can exist. For example, A and / or B can mean: A exists alone, A and B exist at the same time, and B exists alone. "At least one" means one or more. "Multiple" means two or more than two. For example, at least one of a, b or c can mean: a, b, c, a and b, a and c, b and c, a, b and c.
[0079] It should also be noted that the terms "first" and "second" in the description, claims and drawings of this application are used to distinguish similar objects, rather than to describe a specific order or sequence.
[0080] Figure 1 It is a schematic diagram of a scene in which a memory stick 20 is inserted into a motherboard slot 10 in the related art.
[0081] The IC (integrated circuit) of the memory module 20 may be at risk of malfunction if it is kept at a low temperature, outside of its operating temperature. Therefore, after the memory module 20 is inserted into the motherboard slot 10 (i.e., the motherboard's slot device), a temperature sensor 101 is required to monitor its temperature. Only when the temperature of the memory module 20 is within the operating temperature range will the motherboard or the entire system allow the memory module 20 to operate. The closer the temperature sensor 101 is to the memory module 20, the more accurate the monitoring data will be. It is best if it is in close contact with the memory module 20. However, please refer to Figure 1 As shown, under normal circumstances, the surface of the memory stick 20 is not a flat surface. The memory stick 20 is frequently plugged in and out during use, and the relative positions of the temperature sensor 101 and the memory stick 20 are fixed. It is easy to cause friction or collision between the memory stick 20 and the temperature sensor 101, resulting in damage or even failure of the temperature sensor 101, and may also damage the memory stick 20.
[0082] In the prior art, a motherboard slot 10 of appropriately sized dimensions is typically manufactured using highly precise processes to mount the temperature sensor 101, thereby reducing friction and collision between the memory module 20 and the temperature sensor 101 when the memory module 20 is inserted or removed. However, this solution maintains a very small gap between the memory module 20 and the temperature sensor 101 when inserted, thus failing to guarantee the reduction of friction and collision. Furthermore, the presence of this gap can cause heat flow diffusion, resulting in inaccurate monitoring by the temperature sensor 101. In other words, this solution cannot guarantee that the temperature sensor 101 is in close contact with the memory module 20 during monitoring to obtain accurate monitoring data.
[0083] To this end, embodiments of the present application provide a slot device that can reduce friction and collision between the object under test and the sensor, provide effective protection for the sensor, and improve the accuracy of the sensor's monitoring of the object under test. Several embodiments are described below with reference to the accompanying drawings. The following embodiments and features of the embodiments may be combined unless they conflict.
[0084] Figure 2 is a structural diagram of the slot device 1 according to an embodiment of the present application. Figure 3 This is a schematic diagram of an application scenario of the slot device 1 according to an embodiment of the present application. Figure 4 It is a structural exploded diagram of the slot in an embodiment of the present application.
[0085] See also Figure 2 and Figure 4 The slot device 1 may include: a slot body 13 , a first moving part 11 , a second moving part 12 and a sensor 14 .
[0086] See also Figure 3 The slot device 1 can be installed on a computer motherboard or a test device 3 to receive a memory stick or other object required for use on the computer motherboard or test device 3. Here, the memory stick or other object required for use on the computer motherboard or test device 3 is referred to as the object under test 2. In other words, the slot body 13 can be used to receive the object under test 2. The object under test 2 can be a DIMM (Dual Inline Memory Module) or a SIMM (Single Inline Memory Module). The slot body 13 can have a slot that matches the DIMM or SIMM memory stick.
[0087] In some embodiments, as Figure 3As shown, the slot device 1 may include multiple slot bodies 13, multiple first moving parts 11, multiple second moving parts 12, and multiple sensors 14, corresponding to the number of objects 2 to be tested. That is, one slot body 13, one first moving part 11, one second moving part 12, and one sensor 14 may constitute one unit of the slot device 1. One unit of the slot device 1 is used to insert one object 2 to be tested. If there are multiple objects 2 to be tested, multiple slot bodies 13, multiple first moving parts 11, multiple second moving parts 12, and multiple sensors 14 may constitute multiple units of the slot device 1.
[0088] Figure 5 It is a structural diagram of the slot body 13 of an embodiment of the present application.
[0089] See also Figure 5 The socket body 13 may include a main body 131, a socket portion 132, a fixing portion 133, and a circuit connection portion. The socket portion 132 is formed with a slot for receiving the object under test 2 inserted therein. The fixing portion 133 is disposed in the socket portion 132 and is used to cooperate with the socket portion 132 to secure the object under test 2 inserted therein. The circuit connection portion is disposed in the slot of the socket portion 132 and is used to establish an electrical connection between the mainboard and the object under test 2. The main body 131, the socket portion 132, and the fixing portion 133 are made of non-metallic materials, while the circuit connection portion is made of a conductive metal material.
[0090] The main body 131 is in the shape of a long plate, and one long side of the main body 131 extends along the plate surface and then extends parallel to the plate surface to form a slot hook 1311. The slot hook 1311 can be used to install and fix the slot portion 132.
[0091] In some embodiments, the slot may be a slot hook 1311 formed by integrally extending a long side of the main body 131. In other embodiments, the slot may be a plurality of slot hooks 1311 formed by partially extending a long side of the main body 131, with the plurality of slot hooks 1311 being parallel and evenly distributed along the long side.
[0092] In some embodiments, the area of a portion of the long board surface of the main body 131 is larger than the area of the remaining portion. The larger portion can be used to set the first moving part 11 or the second moving part 12, and the smaller portion can facilitate optimizing space utilization and reducing the weight of the main body 131.
[0093] In some embodiments, the larger portion of the main body 131 can be hollowed out. This hollowed-out structure facilitates the placement of the second moving portion 12 or the sensor 14, thereby saving space. In some embodiments, the second moving portion 12 disposed within the hollowed-out structure can be integrally formed with the main body 131 and can have a certain degree of elasticity to facilitate elastic movement.
[0094] In some embodiments, the main body 131 may be formed with a through hole 1312 in the same direction as the movement direction of the first moving part 11. The through hole 1312 is used to install the first moving part 11. The portion of the first moving part 11 that passes through the through hole 1312 can act on the second moving part 12, thereby causing the second moving part 12 to move in a coordinated manner.
[0095] See also Figure 4 The slot portion 132 is an elongated cube, and the cube may be formed with a groove matching the shape of the object to be measured 2 , that is, a slot.
[0096] In some embodiments, the top of the slot portion 132 may form a raised end in the direction of insertion of the object under test 2, and the raised end may be used to mount the fixing portion 133. The slot portion 132, the raised end, and the fixing portion 133 may frame the object under test 2 inserted into the slot, thereby enhancing the stability of the fixing of the object under test 2.
[0097] See also Figure 4 The fixing portion 133 can be provided at both ends of the slot portion 132. The fixing portion 133 can be a buckle provided at both ends of the slot portion 132.
[0098] In some embodiments, the circuit connection portion can be disposed in a slot of the slot portion 132 and, when the object under test 2 is inserted into the slot, contacts a conductive contact (commonly known as a "gold finger") of the object under test 2. Thus, the mainboard and the object under test 2 can be electrically connected via the circuit connection portion.
[0099] In the embodiment of the present application, the first moving portion 11 can be disposed in the slot body 13 and can move relative to the slot body 13. The movement of the first moving portion 11 relative to the slot body 13 can be reciprocating motion relative to the slot body 13 in a first direction. The first direction is the same as the direction in which the object under test 2 is inserted into the slot body 13. When the first moving portion 11 reciprocates in the first direction relative to the slot body 13, it can move closer to or farther from the second moving portion 12.
[0100] In some embodiments, the first moving portion 11 is disposed in a larger portion of the main body 131 of the socket body 13. This increases the contact between the first moving portion 11 and the main body 131, thereby improving the stability between them.
[0101] In some embodiments, a motion guide rail may be provided between the first motion portion 11 and the slot body 13 , and the first motion portion 11 may reciprocate relative to the slot body 13 along the first direction via the motion guide rail.
[0102] In some embodiments, the slot body 13 may have a groove rail for accommodating the first moving part 11, and the first moving part 11 may have a convex rail arranged in the groove rail, and the convex rail moves with the groove rail as a motion guide. In other embodiments, the position of the groove rail may also be set in the first moving part 11, that is, the first moving part 11 may have a groove rail, and the main body 131 of the slot body 13 may have a convex rail arranged in the groove rail, and the convex rail moves with the groove rail as a motion guide. There may be two groove rails and they may be distributed on the slot body 13 or the first moving part 11. The number of convex rails may correspond to the number of groove rails, that is, there may also be two convex rails. In this way, the first moving part 11 can be facilitated to move relative to the slot body 13.
[0103] In other embodiments, see Figure 4 The first moving part 11 can be disposed on the socket body 13 through the first connecting part 15. The first connecting part 15 can facilitate the assembly of the first moving part 11 into the socket body 13.
[0104] The first connecting portion 15 can be fixedly mounted on the slot body 13. A motion guide rail is provided between the first moving portion 11 and the first connecting portion 15. The first moving portion 11 can reciprocate relative to the first connecting portion 15 in a first direction via the motion guide rail. Thus, the first moving portion 11 can also reciprocate relative to the slot body 13 in the first direction. Furthermore, the provision of the first connecting portion 15 can optimize the shape of the slot body 13, thereby improving space utilization of the slot device 1.
[0105] Figure 6 This is a structural diagram of the first moving part 11 of the first embodiment of the present application. Figure 7 1 is a structural diagram of the first connecting portion 15 according to an embodiment of the present application.
[0106] See also Figure 6 , the first moving portion 11 may have a slot 1121 for accommodating a portion of the first connecting portion 15. Figure 7, the first connecting part 15 may have a convex edge 151 arranged in the slot hole 1121. The convex edge 151 moves with the slot hole 1121 as a motion guide. In other embodiments, the position of the slot hole 1121 can also be set on the first connecting part 15, that is, the first connecting part 15 can have a slot hole 1121, and the first moving part 11 can have a convex edge 151 arranged in the slot hole 1121, and the convex edge 151 moves with the slot hole 1121 as a motion guide. There can be two slot holes 1121 and they can be distributed on the first moving part 11 or the first connecting part 15. The number of convex edges 151 can correspond to the number of slot holes 1121, that is, there can also be two convex edges 151. In this way, the first moving part 11 can be facilitated to move relative to the first connecting part 15.
[0107] In some embodiments, as Figure 6 As shown, the first moving portion 11 can be substantially in the form of a fork 112, and the inner side surface of the fork 112 of the first moving portion 11 has a slot 1121 for accommodating a portion of the first connecting portion 15, as shown in FIG. Figure 7 As shown, the first connecting portion 15 may have a flange 151 disposed in the slot 1121, and the flange 151 moves using the slot 1121 as a motion guide. In other embodiments, the slot 1121 may also be located on the first connecting portion 15, that is, the first connecting portion 15 may have the slot 1121, and the fork portion 112 of the first moving portion 11 may have a flange 151 disposed in the slot 1121, and the flange 151 moves using the slot 1121 as a motion guide. There may be two slots 1121, distributed on the inner side surface of the fork portion 112 of the first moving portion 11 or the first connecting portion 15. The number of flanges 151 may correspond to the number of slots 1121, that is, there may also be two flanges 151. This facilitates the movement of the first moving portion 11 relative to the first connecting portion 15.
[0108] In some embodiments, as Figure 4 As shown, the first moving part 11 having forked portions 112 can stably assemble the first connecting portion 15 between the forked portions 112 through the reinforcing sheet 17. In this way, the stability between the first connecting portion 15 and the first moving part 11 can be utilized to make the first moving part 11 more stable when reciprocating in the first direction.
[0109] In some embodiments, as Figure 7 As shown, the first connecting portion 15 may have a snap-fitting protrusion 152, which is used to snap-fit and fix the first connecting portion 15 and the first moving portion 11 when they are installed in the through hole 1312 of the main body 131. This facilitates the movement of the first moving portion 11 relative to the first connecting portion 15 or the main body 131.
[0110] See also Figure 2 and Figure 4, the sensor 14 can be provided on the second moving part 12. The sensor 14 can be provided on the side of the second moving part 12 away from the slot body 13. Thus, when the second moving part 12 moves away from the slot body 13, the sensor 14 can be brought from the first position to the second position by the second moving part 12 to contact the object to be measured 2 and monitor the sensor data of the object to be measured 2. Alternatively, when the second moving part 12 moves closer to the slot body 13, the sensor 14 can be brought from the second position to the first position by the second moving part 12 to reduce friction and collision with the object to be measured 2 when the object to be measured 2 is inserted into the slot device 1.
[0111] In some embodiments, the sensor 14 may be a temperature sensor, and the sensed data may be temperature sensing data. The temperature sensor may be a semiconductor temperature sensor, such as a temperature sensor 14 based on a BJT (bipolar transistor).
[0112] In other embodiments, the sensor 14 may be any type of sensor other than a temperature sensor, such as a pressure sensor, a current sensor, or a position sensor, etc. The sensor data may be data such as pressure, electrical parameters, or position.
[0113] In the embodiment of the present application, the maximum distance sensor 14 moves from the second position to the first position does not exceed 1 mm. This reduces space usage, allowing for the placement of more slot bodies 13, first moving parts 11, second moving parts 12, and sensors 14 within the slot device 1. This allows for simultaneous insertion of multiple DUTs 2 into the slot device 1 and simultaneous monitoring of sensor data from these multiple DUTs 2, improving the operating efficiency of the computer motherboard or test device 3.
[0114] In some embodiments, as Figure 4 As shown, the sensor 14 can be connected to the power mainboard or the central processing unit circuit of the test device 3 through an FPC circuit board 141 (Flexible Printed Circuit), thereby transmitting the sensing data to the power mainboard or the central processing unit of the test device 3 for data processing.
[0115] In some embodiments, as Figure 4As shown, the slot device 1 may further include a locking member 16. The locking member 16 is rotatably disposed on the first moving portion 11, and is used to lock the object 2 to the slot device 1 when the object 2 is inserted into the slot device 1 and the first moving portion 11 moves along the first direction toward the second moving portion 12. Therefore, if the object to be tested 2 is normally inserted into the slot device 1, the locking member 16 rotates and locks the object to be tested 2 when the first moving part 11 moves close to the second moving part 12; if the object to be tested 2 is not inserted into or pulled out of the slot device 1, the locking member 16 rotates to a locked state when the first moving part 11 moves close to the second moving part 12, which can reduce the problem of the first moving part 11 moving before the slot device 1 is inserted into the object to be tested 2, causing the sensor 14 to be already in the second position, resulting in friction and collision with the sensor 14 when the object to be tested 2 is inserted, or reduce the problem of the first moving part 11 not moving away from the second moving part 12 when the object to be tested 2 is not pulled out of the slot device 1, causing the sensor 14 to be still in the second position, resulting in friction and collision with the sensor 14 when the object to be tested 2 is pulled out.
[0116] In some embodiments, the locking member 16 is provided at the top of the first moving part 11. Thus, the first moving part 11 can be driven to move by the locking member 16, that is, the locking member 16 can serve as a handle of the moving part, which can facilitate the user to operate the first moving part 11 to move.
[0117] Figure 8 1 is a structural diagram of the locking member 16 according to an embodiment of the present application.
[0118] In some embodiments, as Figure 8 As shown, the locking member 16 has a locking brim 161 . When the object to be tested 2 is normally inserted into the slot device 1 , the locking member 16 rotates and locks the object to be tested 2 through the locking brim 161 .
[0119] In some embodiments, as Figure 8 As shown, the locking member 16 has a locking protrusion 162. When the locking member 16 follows the first moving portion 11 and moves a certain distance in the first direction toward the second moving portion 12 and the locking member 16 rotates to a predetermined angle, such as the angle required to lock the object 2 to be tested, the locking protrusion 162 can engage with the first connecting portion 15 to lock the object 2 to be tested. When the force applied to rotate the locking member 16 exceeds the static friction force of the locking protrusion 162, the locking member 16 is unlocked and can rotate.
[0120] In some embodiments, as Figure 8As shown, the locking member 16 may have a tail portion 163. When the locking member 16 moves a certain distance in the first direction away from the second moving portion 12 following the first moving portion 11 and is rotated to another predetermined angle, such as the original angle when locking the object 2 is not required, the tail portion 163 of the locking member 16 may be engaged with the first connecting portion 15. When the force of rotating the locking member 16 is greater than the static friction force of the tail portion 163 of the locking member 16 engaging the first connecting portion 15, the locking member 16 may rotate.
[0121] In an embodiment of the present application, when the first moving portion 11 moves toward the second moving portion 12 along the first direction, the first moving portion 11 can drive the second moving portion 12 to move away from the slot body 13. When the first moving portion 11 moves away from the second moving portion 12 along the first direction, the first moving portion 11 can drive the second moving portion 12 to move toward the slot body 13. When the second moving portion 12 moves away from the slot body 13, the sensor 14 can move from the first position to the second position and contact the object under test 2. When the second moving portion 12 moves toward the slot body 13, the sensor 14 can move from the second position to the first position and away from the object under test 2.
[0122] Figure 9A This is a schematic diagram of the first moving part 11 driving the second moving part 12 to move closer to the slot body 13 according to the first embodiment of the present application; Figure 9B This is a schematic diagram of the first moving part 11 driving the second moving part 12 to move away from the slot body 13 in the first embodiment of the present application; Figure 9C 1 is a schematic diagram of a first elastic member 121 disposed between the second moving portion 12 and the slot body 13 according to the first embodiment of the present application; Figure 10A This is a schematic diagram of the principle of the first moving part 11 driving the second moving part 12 to move closer to the slot body 13 in the second embodiment of the present application; Figure 10B This is a schematic diagram of the principle of the first moving part 11 driving the second moving part 12 to move away from the slot body 13 in the second embodiment of the present application; Figure 10C 1 is a schematic diagram of a first elastic member 121 disposed between the second moving portion 12 and the slot body 13 according to the second embodiment of the present application.
[0123] In some embodiments, as 9A to 10C As shown, the end of the first moving part 11 close to the second moving part 12 can be tapered, that is, the end surface of the first moving part 11 can be a sloped surface 111. When the first moving part 11 reciprocates relative to the first connecting part 15 along the first direction, the tapered end or sloped surface 111 of the first moving part 11 can drive the second moving part 12 to move closer to or away from the slot body 13 by expanding the second moving part 12. That is, by moving the first moving part 11 away from the second moving part 12, 9A to 10CWhen the first moving part 11 moves in the direction A1, the contact area is reduced, so that the second moving part 12 is reset to a moving state close to the slot body 13, that is, 9A to 10C Alternatively, the second moving portion 12 is moved in the direction B1 by contacting the second moving portion 12 through the tapered end or the sloped surface 111, and the contact area is increased by the first moving portion 11 moving close to the second moving portion 12, that is, 9A to 10C When the first moving part 11 moves in the direction A2, the second moving part 12 is stretched out to move away from the slot body 13, that is, 9A to 10C The second moving part 12 is in a state of moving in the B2 direction.
[0124] In some embodiments, the distance that the second moving portion 12 moves toward or away from the socket body 13 may not exceed 1 mm. By controlling the tapered end or sloped surface 111 of the first moving portion 11 to contact the second moving portion 12, the second moving portion 12 can be more accurately and stably controlled to move toward or away from the socket body 13 to a distance not exceeding 1 mm. This saves space in the socket device 1 and allows for the arrangement of more socket bodies 13, first moving portions 11, second moving portions 12, and sensors 14.
[0125] In some embodiments, see Figure 9A Before the first moving part 11 moves closer to the second moving part 12, the first moving part 11 does not need to be located between the second moving part 12 and the slot body 13. In this case, there is a preset gap between the second moving part 12 and the slot body 13, and the position of the preset gap corresponds to the lowest point of the tapered end or the sloped surface 111. As a result, when the first moving part 11 moves closer to the second moving part 12, the tapered end or the sloped surface 111 enters the preset gap between the second moving part 12 and the slot body 13 to drive the second moving part 12 to move. FIG. 9A to FIG. 9B The process status is shown.
[0126] In some embodiments, as Figure 9C As shown, the slot device 1 may further include an elastic member, referred to herein as a first elastic member 121 for ease of distinction. The first elastic member 121 is disposed between the second moving portion 12 and the slot body 13. When the first moving portion 11 propels the second moving portion 12 toward or away from the slot body 13 by spreading the second moving portion 12 apart, the first elastic member 121 connects the second moving portion 12 and the slot body 13 and assists in resetting the second moving portion 12, thereby improving the stability between the second moving portion 12 and the slot body 13.
[0127] In other embodiments, see Figure 10ABefore the first moving part 11 moves closer to the second moving part 12, the first moving part 11 can be partially located between the second moving part 12 and the slot body 13. At this time, there is a preset gap between the second moving part 12 and the slot body 13, and the portion of the first moving part 11 located in the preset gap can be a flat surface. As a result, when the first moving part 11 moves closer to the second moving part 12, the portion of the tapered end or the sloped surface 111 located in the preset gap guides and enters the preset gap between the second moving part 12 and the slot body 13 to drive the second moving part 12 to move. That is, FIG. 10A to FIG. 10B The process state shown thereby improves the accuracy of the first moving part 11 driving the second moving part 12 to move.
[0128] Similarly, if Figure 10C As shown, Figure 10A and Figure 10B In the illustrated embodiment, the slot device 1 may also include a first elastic member 121. The first elastic member 121 is disposed between the second moving portion 12 and the slot body 13. When the first moving portion 11 drives the second moving portion 12 to move toward or away from the slot body 13 by expanding the second moving portion 12, the first elastic member 121 connects the second moving portion 12 and the slot body 13 and assists in resetting the second moving portion 12, thereby improving the stability between the second moving portion 12 and the slot body 13.
[0129] In addition to the method described above in which the first moving portion 11 drives the second moving portion 12 via the tapered end or sloped surface 111, the present application also provides another driving method. For example, a linkage assembly 122 may be provided between the second moving portion 12 and the slot body 13. When the first moving portion 11 is capable of reciprocating relative to the first connecting portion 15 in the first direction, the first moving portion 11 drives the linkage assembly 122 to spread the second moving portion 12, thereby driving the second moving portion 12 away from or toward the slot body 13. Multiple linkage assemblies 122 may be evenly distributed on the side of the second moving portion 12 closest to the slot body 13. In this case, when the first moving part 11 drives the second moving part 12 to move by driving multiple evenly distributed linkage components 122, since the multiple linkage components 122 move in unison, the problem of inconsistent movement of the second moving part 12 or uneven stress damaging the second moving part 12 caused by the above-mentioned problem that when the second moving part 12 is driven to move by the tapered end or the sloped surface 111 of the first moving part 11, the part of the second moving part 12 that first contacts the tapered end or the sloped surface 111 of the first moving part 11 moves first and the rest of the parts move later can be reduced.
[0130] In some embodiments, the linkage assembly 122 may have various morphological structures. Some embodiments are provided below for illustration, but it is understood that the present application may not be limited thereto.
[0131] Figure 11A This is a schematic diagram of the principle of the first moving part 11 driving the second moving part 12 to move closer to the slot body 13 in the third embodiment of the present application; Figure 11B This is a schematic diagram of the first moving part 11 driving the second moving part 12 to move away from the slot body 13 in the third embodiment of the present application; Figure 11C 1 is a schematic diagram of a third embodiment of the present application in which a first elastic member 121 is provided between the second moving portion 12 and the slot body 13; Figure 12A This is a schematic diagram of the principle of the first moving part 11 driving the second moving part 12 to move closer to the slot body 13 according to the fourth embodiment of the present application; Figure 12B This is a schematic diagram of the fourth embodiment of the present application in which the first moving part 11 drives the second moving part 12 to move away from the slot body 13; Figure 12C Schematic diagram of a fourth embodiment of the present application in which a first elastic member 121 is provided between the second moving portion 12 and the slot body 13. In some embodiments, as 11A to 12C As shown, the linkage assembly 122 may include a roller disposed on the slot body 13 and a spreading member coaxially disposed on the roller. The axis of the roller is aligned with the longitudinal direction of the slot body 13 and is orthogonal to the first direction. When the first moving portion 11 is capable of reciprocating relative to the first connecting portion 15 in the first direction, the first moving portion 11 drives the roller to rotate the spreading member and spread the second moving portion 12, thereby driving the second moving portion 12 away from or toward the slot body 13.
[0132] In some embodiments, as Figures 11A to 11C As shown, in the linkage assembly 122a, the radial cross-section of the expansion member is elliptical. The contour of the expansion member with an elliptical radial cross-section can always fit the surface of the second moving part 12, thereby improving the stability of the second moving part 12. When the first moving part 11 can reciprocate relative to the first connecting part 15 along the first direction, the first moving part 11 drives the roller to rotate the expansion member with an elliptical radial cross-section and expand the second moving part 12, driving the second moving part 12 to move away from or close to the slot body 13, that is, Figure 11A and Figure 11B The state process is shown, where A1 is the direction in which the first moving part 11 moves away from the second moving part 12, A2 is the direction in which the first moving part 11 moves toward the second moving part 12, B1 is the direction in which the second moving part 12 moves toward the slot body 13, and B2 is the direction in which the second moving part 12 moves away from the slot body 13.
[0133] Similarly, if Figure 11C As shown, Figure 11A and Figure 11BIn the illustrated embodiment, the slot device 1 may also include a first elastic member 121. The first elastic member 121 is disposed between the second moving portion 12 and the slot body 13. When the first moving portion 11 drives the second moving portion 12 to move toward or away from the slot body 13 by expanding the second moving portion 12, the first elastic member 121 connects the second moving portion 12 and the slot body 13 and assists in resetting the second moving portion 12, thereby improving the stability between the second moving portion 12 and the slot body 13.
[0134] In some embodiments, as 12A to 12C As shown, in the linkage assembly 122b, the radial cross section of the expansion member is fan-shaped. When the expansion member with a fan-shaped radial cross section does not cause the second moving part 12 to move away from the slot body 13, the space occupied is minimal, that is, it can save space. When the first moving part 11 can reciprocate relative to the first connecting part 15 along the first direction, the first moving part 11 drives the roller to rotate the expansion member with a fan-shaped radial cross section and expand the second moving part 12, driving the second moving part 12 to move away from or close to the slot body 13, that is, Figure 12A and Figure 12B The state process is shown, where A1 is the direction in which the first moving part 11 moves away from the second moving part 12, A2 is the direction in which the first moving part 11 moves toward the second moving part 12, B1 is the direction in which the second moving part 12 moves toward the slot body 13, and B2 is the direction in which the second moving part 12 moves away from the slot body 13.
[0135] Similarly, if Figure 12C As shown, Figure 12A and Figure 12B In the illustrated embodiment, the slot device 1 may also include a first elastic member 121. The first elastic member 121 is disposed between the second moving portion 12 and the slot body 13. When the first moving portion 11 drives the second moving portion 12 to move toward or away from the slot body 13 by expanding the second moving portion 12, the first elastic member 121 connects the second moving portion 12 and the slot body 13 and assists in resetting the second moving portion 12, thereby improving the stability between the second moving portion 12 and the slot body 13.
[0136] In the above 11A to 12C In the illustrated embodiment, the maximum diameter of the radial cross-section of the expander does not exceed 1 mm (millimeter). That is, the maximum diameter of the ellipse, or the sum of the radii of the two sectors, does not exceed 1 mm. Consequently, during rotation, the second moving portion 12 can be driven to move a distance of no more than 1 mm (millimeter), meaning that the sensor 14 can move a distance of no more than 1 mm.
[0137] In some embodiments, the roller can include a micro-gear, and the portion connecting the first moving portion 11 to the roller can be a toothed belt. Thus, when the first moving portion 11 reciprocates in the first direction, the toothed belt can drive the micro-gear to rotate, thereby driving the expansion member having an elliptical or fan-shaped radial cross-section to rotate a certain angle, thereby moving the second moving portion 12 closer to or farther from the slot body 13.
[0138] Figure 13A This is a schematic diagram of the principle of the first moving part 11 driving the second moving part 12 to move closer to the slot body 13 according to the fifth embodiment of the present application; Figure 13B This is a schematic diagram of the principle of the first moving part 11 driving the second moving part 12 to move away from the slot body 13 according to the fifth embodiment of the present application; Figure 13C 1 is a schematic diagram of a fifth embodiment of the present application in which a first elastic member 121 is provided between the second moving portion 12 and the slot body 13 .
[0139] In some embodiments, as 13A to 13C As shown, the linkage assembly 122c may include a roller disposed on the slot body 13 and a support rod coaxially disposed on the roller, one end of the support rod being fixed to the second motion part 12. When the first motion part 11 can reciprocate relative to the first connecting part 15 along the first direction, the first motion part 11 drives the roller to move the support rod relative to the roller, driving the second motion part 12 to move away from or closer to the slot body 13, that is, Figure 13A and Figure 13B The state process is shown, where A1 is the direction in which the first moving part 11 moves away from the second moving part 12, A2 is the direction in which the first moving part 11 moves toward the second moving part 12, B1 is the direction in which the second moving part 12 moves toward the slot body 13, and B2 is the direction in which the second moving part 12 moves away from the slot body 13.
[0140] In some embodiments, the roller can include a micro-gear, and the portion connecting the first moving portion 11 to the roller can be a toothed belt, and the portion connecting the support rod to the roller can be a toothed belt. Thus, when the first moving portion 11 reciprocates in the first direction, the toothed belt can drive the micro-gear to rotate, and the micro-gear can then drive the support rod to move a certain distance, thereby moving the second moving portion 12 closer to or farther from the slot body 13.
[0141] Similarly, if Figure 13C As shown, Figure 13A and Figure 13BIn the illustrated embodiment, the slot device 1 may also include a first elastic member 121. The first elastic member 121 is disposed between the second moving portion 12 and the slot body 13. When the first moving portion 11 drives the second moving portion 12 to move toward or away from the slot body 13 by expanding the second moving portion 12, the first elastic member 121 connects the second moving portion 12 and the slot body 13 and assists in resetting the second moving portion 12, thereby improving the stability between the second moving portion 12 and the slot body 13.
[0142] Figure 14A This is a schematic diagram of the principle of the first moving part 11 driving the second moving part 12 to move closer to the slot body 13 in the sixth embodiment of the present application; Figure 14B This is a schematic diagram of the first moving portion 11 driving the second moving portion 12 to move away from the slot body 13 according to the sixth embodiment of the present application; Figure 14C 1 is a schematic diagram of a sixth embodiment of the present application in which a first elastic member 121 is provided between the second moving portion 12 and the socket body 13 .
[0143] In some embodiments, as 14A to 14C As shown, the linkage assembly 122d may include a plurality of connecting rods, which are movably connected to the first moving part 11, the second moving part 12 and the slot body 13. For ease of description, the connecting rod movably connected to the first moving part 11 and the second moving part 12 is referred to as the first connecting rod, and the connecting rod movably connected to the first moving part 11 and the slot body 13 is referred to as the second connecting rod. When the first moving part 11 is capable of reciprocating along the first direction relative to the first connecting part 15, the first moving part 11 drives the second moving part 12 to move away from or closer to the slot body 13 by driving the first connecting rod and the second connecting rod to spread the second moving part 12 apart, that is, Figure 14A and Figure 14B A1 is the direction in which the first moving part 11 moves away from the second moving part 12, A2 is the direction in which the first moving part 11 moves toward the second moving part 12, B1 is the direction in which the second moving part 12 moves toward the slot body 13, and B2 is the direction in which the second moving part 12 moves away from the slot body 13.
[0144] In some embodiments, the linkage assembly 122 may include multiple first connecting rods and multiple second connecting rods. In this case, the multiple first connecting rods and multiple second connecting rods can be used to spread the second moving portion 12 apart, thereby driving the second moving portion 12 as a whole to move away from or toward the slot body 13. This can improve the smoothness and consistency of the movement of the second moving portion 12, thereby allowing the sensor 14 to move as a whole until it contacts the object 2 to be measured.
[0145] In some embodiments, the first connecting rod can be movably connected to the first moving part 11 and the second moving part 12 via a flexible material. That is, the portion of the first connecting rod connected to the first moving part 11 or the portion of the first connecting rod connected to the second moving part 12 can be a flexible material. Similarly, the second connecting rod can be movably connected to the first moving part 11 and the slot body 13 via a flexible material. That is, the portion of the second connecting rod connected to the first moving part 11 or the portion of the second connecting rod connected to the slot body 13 can be a flexible material. As a result, the first connecting rod and multiple second connecting rods can be made movable even in a space as narrow as 0.9 mm (millimeter), without the need for a space-consuming structure such as a rotating shaft.
[0146] Similarly, if Figure 14C As shown, Figure 14A and Figure 14B In the illustrated embodiment, the slot device 1 may also include a first elastic member 121. The first elastic member 121 is disposed between the second moving portion 12 and the slot body 13. When the first moving portion 11 drives the second moving portion 12 to move toward or away from the slot body 13 by expanding the second moving portion 12, the first elastic member 121 connects the second moving portion 12 and the slot body 13 and assists in resetting the second moving portion 12, thereby improving the stability between the second moving portion 12 and the slot body 13.
[0147] Figure 15A This is a schematic diagram of the seventh embodiment of the present application, in which the first moving part 11 drives the second moving part 12 to move closer to the slot body 13; Figure 15B This is a schematic diagram of the principle of the first moving part 11 driving the second moving part 12 to move away from the slot body 13 in the seventh embodiment of the present application.
[0148] In some embodiments, as Figure 15A and Figure 15B As shown, the linkage assembly 122e can be an elastic member, that is, an elastic member can be provided between the second moving part 12 and the slot body 13. In order to facilitate the distinction between the elastic members below, it is referred to as the second elastic member. When the first moving part 11 can reciprocate relative to the first connecting part 15 along the first direction, the first moving part 11 drives the second elastic member to expand and contract, and the second elastic member can fit the second moving part 12 when expanding and contracting, thereby driving the second moving part 12 to move away from or close to the slot body 13 by stretching the second moving part 12. Figure 15A and Figure 15B A1 is the direction in which the first moving part 11 moves away from the second moving part 12, A2 is the direction in which the first moving part 11 moves toward the second moving part 12, B1 is the direction in which the second moving part 12 moves toward the slot body 13, and B2 is the direction in which the second moving part 12 moves away from the slot body 13.
[0149] In some embodiments, the second elastic member can be connected to the second moving part 12 or the socket body 13 by gluing. This can reduce the problem of the second moving part 12 being easily damaged due to inconsistent overall movement or uneven force when the first moving part 11 directly contacts and stretches the second moving part 12.
[0150] In some embodiments, the second elastic member may include, but is not limited to, a spring, an airbag, an air plug, an elastic pad, or an expansion pad. The first moving portion 11 may drive the second elastic member by squeezing the second elastic member to cause it to expand or contract in a predetermined direction, such as the direction in which the second moving portion 12 is required to move.
[0151] See above Figure 2 and Figure 4 The second moving part 12 can be provided on the slot body 13. When the first moving part 11 moves relative to the slot body 13, the first moving part 11 can drive the second moving part 12 to move relative to the slot body 13, that is, the second moving part 12 can be linked with the first moving part 11.
[0152] In some embodiments, as Figure 4 or Figure 5 As shown, the second moving portion 12 is disposed in a larger portion of the main body 131 of the slot body 13. Thus, the contact between the second moving portion 12 and the main body 131 can be increased to enhance the stability between them.
[0153] In some embodiments, the second moving part 12 can be made of elastic material. Figure 4 or Figure 5 As shown, one end of the second moving part 12 is connected to the slot body 13, combined with Figure 2 As shown, the sensor 14 is disposed at the other end of the second moving portion 12. In some embodiments, the second moving portion 12 may have a mounting slot for mounting the sensor 14. The shape of the mounting slot may match that of the sensor 14. For example, if the sensor 14 is square, the mounting slot may also be square.
[0154] In some embodiments, as described above, the second moving portion 12 can be integrally formed with the main portion 131 of the slot body 13. In this case, the first moving portion 11 propels the second moving portion 12 apart, causing one end of the second moving portion 12 to move toward or away from the slot body 13, thereby alternating the position of the sensor 14 between the first position and the second position. The second moving portion 12, made of an elastic material, can be connected to the slot body 13 at the end away from the slot body 13, providing stability. Furthermore, the elastic material can assist in resetting the second moving portion 12 when the first moving portion 11 moves away from the second moving portion 12, thereby assisting the second moving portion 12 in moving toward the slot body 13.
[0155] In other embodiments, the material of the second moving portion 12 may be the same as that of the main body portion 131 of the socket body 13 , that is, the second moving portion 12 may not have elasticity.
[0156] In all the above embodiments of the present application, if the second moving portion 12 is already elastic, the first elastic member 121 may not necessarily be provided.
[0157] In some embodiments, the first elastic member 121 may include but is not limited to a spring, an air bag, an air plug, an elastic pad, an expansion pad, or the like.
[0158] In some embodiments, if the second elastic member is already provided, the first elastic member 121 may not be required. For example, if the second elastic member is an airbag, the first moving portion 11 drives the airbag to expand and contract, thereby moving the second moving portion 12 toward or away from the slot body 13. The airbag can be attached to the surface of the second moving portion 12 by adhesive bonding. In this case, the airbag can serve both the functions of the first elastic member 121 and the second elastic member, and therefore the first elastic member 121 may not be required.
[0159] In an embodiment of the present application, before the object to be tested 2 is inserted into the slot device 1, the sensor 14 is located in the first position. After the object to be tested 2 is inserted into the slot device 1, the first moving portion 11 moves along the first direction toward the second moving portion 12 to drive the second moving portion 12 away from the slot body 13. At this time, the sensor 14 is driven by the second moving portion 12 to move from the first position to the second position and contact the object to be tested 2. Before the object to be tested 2 is removed from the slot device 1, the first moving portion 11 moves along the first direction away from the second moving portion 12 to drive the second moving portion 12 toward the slot body 13. At this time, the sensor 14 is driven by the second moving portion 12 to move from the second position to the first position to move away from the object to be tested 2. In this way, the problem of friction and collision between the object to be tested 2 and the sensor 14 when being inserted or removed can be reduced.
[0160] The first position may be the position of sensor 14 before object 2 is inserted into slot device 1 and before first moving portion 11 moves in the first direction toward second moving portion 12, that is, before first moving portion 11 drives second moving portion 12 away from slot body 13. When sensor 14 is in the first position and object 2 is inserted into slot device 1, the distance between the side of sensor 14 closest to object 2 and object 2 may be between 0.8 mm and 1 mm.
[0161] The second position may be when, after the object 2 is inserted into the slot device 1, the first moving portion 11 moves in the first direction toward the second moving portion 12, driving the second moving portion 12 away from the slot body 13. At this point, the sensor 14 follows the second moving portion 12 to a position contacting the object 2. Specifically, when the sensor 14 is in the second position, the distance between the side of the sensor 14 closest to the object 2 and the object 2 inserted into the slot device 1 is zero, indicating contact.
[0162] In summary, the first moving part 11 and the second moving part 12 of the present application can both be movably arranged in the slot body 13, and the sensor 14 is arranged in the second moving part 12. The first moving part 11 drives the second moving part 12 by reciprocating in the first direction, thereby driving the position of the sensor 14 to change. Therefore, when the object to be measured 2 is inserted into the slot body 13, the first moving part 11 and the second moving part 12 can pre-place the sensor 14 in the first position away from the object to be measured 2, thereby reducing the problem of friction and collision between the object to be measured 2 and the sensor 14 when plugging and unplugging, and providing effective protection for the sensor 14; after the object to be measured 2 is inserted into the slot body 13, the first moving part 11 and the second moving part 12 can place the sensor 14 in the second position where it can contact the object to be measured 2, thereby improving the accuracy of the sensor 14 in monitoring the object to be measured 2.
[0163] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application and are not intended to limit the present application. Although the present application has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present application may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present application.
Claims
1. A slot device, characterized in that: include: A slot body, the slot body being used for inserting an object to be tested; a first moving portion, the first moving portion being movably disposed on the slot body and capable of reciprocating in a first direction; a second moving part, the second moving part being movably disposed on the slot body and being capable of cooperating with the first moving part; a sensor, the sensor being disposed on the second moving part; When the first moving part moves toward the second moving part along the first direction, the first moving part drives the second moving part to move away from the slot body; When the first moving part moves away from the second moving part along the first direction, the first moving part drives the second moving part to move closer to the slot body; When the second moving part moves away from the slot body, the sensor moves from the first position to the second position and contacts the object to be measured; When the second moving portion moves close to the slot body, the sensor moves from the second position to the first position and away from the object to be measured.
2. The slot device according to claim 1, wherein: The first direction is consistent with the direction in which the object to be tested is inserted into the slot body.
3. The slot device according to claim 1, wherein: The second moving part is made of elastic material, one end of the second moving part is connected to the slot body, the sensor is provided at the other end of the second moving part, and the first moving part drives one end of the second moving part to move closer to or away from the slot body by expanding the second moving part; or The slot device further includes a first elastic member, which is disposed between the second moving portion and the slot body. The first moving portion drives the second moving portion to move closer to or away from the slot body by expanding the second moving portion.
4. The slot device according to claim 3, wherein: The first moving part is arranged on the slot body through the first connecting part. A motion guide rail is provided between the first moving part and the first connecting part. The first moving part can reciprocate along the first direction relative to the first connecting part through the motion guide rail.
5. The slot device according to claim 4, wherein: One end of the first moving part close to the second moving part is tapered. When the first moving part reciprocates along the first direction relative to the first connecting part, the tapered end of the first moving part drives the second moving part to move closer to or away from the slot body by expanding the second moving part.
6. The slot device according to claim 4, wherein: A linkage component is provided between the second moving part and the slot body. When the first moving part can reciprocate along the first direction relative to the first connecting part, the first moving part drives the second moving part to move away from or closer to the slot body by driving the linkage component to expand the second moving part.
7. The slot device according to claim 6, wherein: The linkage assembly includes a roller arranged on the slot body and a support member coaxially arranged on the roller. When the first moving part can reciprocate along the first direction relative to the first connecting part, the first moving part drives the second moving part to move away from or closer to the slot body by driving the roller to rotate the support member and support the second moving part.
8. The slot device according to claim 7, wherein: The radial cross section of the expansion member is elliptical or fan-shaped.
9. The slot device according to claim 6, wherein: The linkage assembly includes a roller arranged on the slot body and a support rod coaxially arranged on the roller. When the first moving part can reciprocate along the first direction relative to the first connecting part, the first moving part drives the second moving part to move away from or closer to the slot body by driving the roller to move the support rod relative to the roller.
10. The slot device according to claim 6, wherein: The linkage assembly includes a first connecting rod and a second connecting rod; the first connecting rod is movably connected to the first moving part and the second moving part; the second connecting rod is movably connected to the first moving part and the slot body; when the first moving part can reciprocate along the first direction relative to the first connecting part, the first moving part drives the second moving part to move away from or closer to the slot body by driving the first connecting rod and the second connecting rod to spread the second moving part.
11. The slot device according to claim 4, wherein: A second elastic member is provided between the second moving part and the slot body. When the first moving part can reciprocate along the first direction relative to the first connecting part, the first moving part drives the second elastic member to expand and contract and drives the second moving part to move away from or closer to the slot body by stretching the second moving part.
12. The slot device according to claim 1, wherein: It also includes a locking member rotatably provided on the first moving part, and the locking member is used to lock the object to be tested in the slot device when the object to be tested is inserted into the slot device and the first moving part moves along the first direction close to the second moving part.