semiconductor equipment
By introducing a pull-out member and a second support member into the semiconductor equipment, the problem of long adjustment time for casters located in the corners is solved, and more efficient height adjustment is achieved.
Patent Information
- Application Number
- CN202110491723.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-05-06
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2041-05-06
AI Technical Summary
When adjusting the height of semiconductor equipment platforms, casters located at the corners require a lot of time to adjust, resulting in reduced work efficiency.
By introducing a drawer and a second support member into the semiconductor device, the second support member is allowed to move between the two ends of the housing and the distance from the mounting surface is adjustable, thereby replacing the first support member located in a dead angle to complete height adjustment.
It improves the working efficiency of semiconductor equipment, simplifies the height adjustment process, and reduces the adjustment time of casters located in dead corners.
Smart Images

Figure CN113192870B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of semiconductor devices, and more specifically, to a semiconductor device. Background Art
[0002] To ensure efficient workpiece handling, multiple machines must be aligned at the same height. This process involves adjusting the height of the casters surrounding the machines. However, when a machine is placed in a corner, adjusting the casters requires significant time, which reduces work efficiency. Summary of the Invention
[0003] An embodiment of the present application provides a semiconductor device.
[0004] The semiconductor device according to an embodiment of the present application includes a housing, a plurality of first support members, a drawer, and a second support member. The housing includes a substrate, which includes a mounting surface. The first support member is disposed on the housing to support the housing, and the distance between the first support member and the mounting surface is adjustable. The drawer is movably disposed on the mounting surface. The second support member is connected to the drawer, and the drawer can drive the second support member to move so that the second support member moves between two ends of the housing, and the distance between the second support member and the mounting surface is adjustable.
[0005] In the semiconductor device of the embodiment of the present application, since the pull-out member can drive the second support member to move between the two ends of the shell, and the distance between the second support member and the mounting surface is adjustable, and the distance between multiple first support members and the mounting surface is also adjustable, therefore, when the semiconductor device needs to be adjusted in height, if there is a first support member located in a dead corner, the second support member can be pulled out through the pull-out member to adjust the distance between the second support member and the mounting surface, and the second support member can be moved to the vicinity of the first support member located in the dead corner to replace the first support member, thereby completing the height adjustment of the semiconductor device and improving work efficiency.
[0006] Additional aspects and advantages of the embodiments of the present application will be given in part in the description below, and in part will become obvious from the description below, or will be learned through practice of the embodiments of the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0007] The above and / or additional aspects and advantages of the present application will become apparent and easily understood from the description of the embodiments in conjunction with the following drawings, in which:
[0008] Figure 1 is a schematic structural diagram of a semiconductor device according to certain embodiments of the present application;
[0009] Figure 2 is a schematic structural diagram of a semiconductor device according to certain embodiments of the present application from another perspective;
[0010] Figure 3 is a schematic structural diagram of a first supporting member of a semiconductor device according to certain embodiments of the present application;
[0011] Figure 4 is a schematic structural diagram of a first rotating plate of a first support member in certain embodiments of the present application;
[0012] Figure 5 is a schematic structural diagram of a portion of a semiconductor device in certain embodiments of the present application;
[0013] Figure 6 is an exploded schematic diagram of a portion of a semiconductor device according to certain embodiments of the present application;
[0014] Figure 7 This is a schematic structural diagram of a first connecting plate of a second supporting member in certain embodiments of the present application;
[0015] Figure 8 is a schematic cross-sectional view of a portion of a semiconductor device according to certain embodiments of the present application;
[0016] Figure 9 is a schematic structural diagram of a fixing member of a semiconductor device according to certain embodiments of the present application;
[0017] Figure 10 It is a schematic structural diagram of a drawer of a semiconductor device according to certain embodiments of the present application. DETAILED DESCRIPTION
[0018] The embodiments of the present application are described in detail below, and examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present application, and should not be understood as limiting the present application.
[0019] The disclosure below provides many different embodiments or examples for realizing different structures of the present application. In order to simplify the disclosure of the present application, the components and settings of specific examples are described below. Of course, they are merely examples and are not intended to limit the present application. In addition, the present application may repeat reference numbers and / or reference letters in different examples, and such repetition is for the purpose of simplicity and clarity, and does not itself indicate the relationship between the various embodiments and / or settings discussed. In addition, the present application provides examples of various specific processes and materials, but those of ordinary skill in the art will appreciate the application of other processes and / or the use of other materials.
[0020] An embodiment of the present application provides a semiconductor device 100. The semiconductor device 100 includes a housing 10, a plurality of first support members 20, a drawer member 30, and a second support member 40. The housing 10 includes a substrate 11, and the substrate 11 includes a mounting surface 12. The first support member 20 is disposed on the housing 10 to support the housing 10, and the distance between the first support member 20 and the mounting surface 12 is adjustable. The drawer member 30 is movably disposed on the mounting surface 12. The second support member 40 is connected to the drawer member 30, and the drawer member 30 can drive the second support member 40 to move, so that the second support member 40 moves between the two ends of the housing 10, and the distance between the second support member 40 and the mounting surface 12 is adjustable.
[0021] In the semiconductor device 100 of the embodiment of the present application, since the pull-out member 30 can drive the second support member 40 to move between the two ends of the shell 10, and the distance between the second support member 40 and the mounting surface 12 is adjustable, and the distance between the multiple first support members 20 and the mounting surface 12 is also adjustable, therefore, when the semiconductor device 100 needs to be adjusted in height, if there is a first support member 20 located in a dead corner, the second support member 40 can be pulled out through the pull-out member 30 to adjust the distance between the second support member 40 and the mounting surface 12, and the second support member 40 can be moved to the vicinity of the first support member 20 located in the dead corner to replace the first support member 20, thereby completing the height adjustment of the semiconductor device 100 and improving work efficiency.
[0022] The following is further explained with reference to the accompanying drawings.
[0023] See also Figure 1 The semiconductor device 100 includes a housing 10, a plurality of first support members 20, a drawer 30, and a second support member 40. The housing 10 includes a substrate 11, which includes a mounting surface 12. The mounting surface 12 is the surface of the substrate 11 close to the ground. The drawer 30 is disposed on the substrate 11, and the second support member 40 is connected to the drawer 30.
[0024] Because the first support member 20 supports the housing 10, the base plate 11 does not directly contact the ground. The base plate 11, the ground, and the first support member 20 together form a receiving space for accommodating the drawer 30 and the second support member 40. The size of the receiving space is related to the distance between the first support member 20 and the mounting surface 12. The larger the distance between the first support member 20 and the mounting surface 12, the larger the receiving space; the smaller the distance between the first support member 20 and the mounting surface 12, the smaller the receiving space.
[0025] The base plate 11 can be the bottom wall of the housing 10, or the base plate 11 can be disposed on the bottom wall of the housing 10. When the base plate 11 is the bottom wall of the housing 10, the drawer 30 can move on the bottom wall to drive the second support member 40 to move. Furthermore, when the base plate 11 is the bottom wall of the housing 10, the height of the receiving space can be guaranteed to be the distance between the bottom wall and the ground, thereby ensuring sufficient height to adjust the distance between the second support member 40 and the mounting surface 12. When the base plate 11 is disposed on the bottom wall of the housing 10, the drawer 30 moves on the mounting surface 12 of the base plate 11 to drive the second support member 40 to move. This prevents direct contact between the drawer 30 and the bottom wall, thereby preventing damage to the bottom wall.
[0026] like Figure 2 As shown, multiple first support members 20 are respectively disposed on different side walls of the housing 10. The semiconductor device 100 includes four first support members 20, two of which are disposed simultaneously at both ends of the first side wall 101 of the housing 10, and the other two first support members 20 are disposed respectively on the second side wall 102 and the fourth side wall 104. At this time, no first support member 20 is disposed on the third side wall 103, so that the outer surface of the third side wall 103 is flat, so that the semiconductor device 100 can be connected to other semiconductor devices 100 through the flat third side wall 103, or directly contact the wall.
[0027] See also Figure 3 The first supporting member 20 includes a mounting member 21 , a first connecting member 22 and a first caster 23 .
[0028] The mounting member 21 is disposed on a side wall of the housing 10 and extends away from the side wall. A first connecting hole 211 is defined in a portion of the mounting member 21 away from the side wall. A first connecting member 22 is movably disposed within the first connecting hole 211. When the first caster 23 is connected to the first connecting member 22, the first connecting member 22 and the first caster 23 are away from the side wall. This allows the first connecting member 22 to be moved to adjust the distance between the first caster 23 and the mounting surface 12, thereby adjusting the distance between the first support member 20 and the mounting surface 12.
[0029] Specifically, the inner surface of the first connecting hole 211 is provided with an internal thread, and the surface of the first connecting member 22 is provided with an external thread. The first connecting member 22 can be screwed into the first connecting hole 211. The user can control the direction of movement of the first connecting member 22 by controlling the rotation direction of the first connecting member 22. For example, when the first connecting member 22 rotates clockwise in the first connecting hole 211, the first end of the first connecting member 22 moves away from the mounting member 21; when the first connecting member 22 rotates counterclockwise in the first connecting hole 211, the first end of the first connecting member 22 moves toward the mounting member 21, thereby achieving movement of the first connecting member 22 in the first connecting hole 211.
[0030] The first connector 22 is provided with a nut 221. When the first connector 22 is moved to a desired position, the nut 221 screws into the first connector 22, thereby contacting the first surface 212 of the mounting member 21 and locking the first connector 22. At this point, the first connector 22 cannot move further within the first connection hole 211. However, when the nut 221 moves away from the first surface 212 of the mounting member 21, the first connector 22 can continue to move within the first connection hole 211. Since the first caster 23 is connected to the first connector 22, when the first connector 22 is moved, the distance between the first caster 23 and the mounting surface 12 of the substrate 11 can be adjusted, thereby adjusting the distance between the first support member 20 and the mounting surface 12. The nut 221 controls whether the first connector 22 can move within the first connection hole 211, ensuring that the distance between the first caster 23 and the mounting member 21 does not change after the distance between the first caster 23 and the mounting member 21 is fixed, thereby ensuring the stability of the semiconductor device 100.
[0031] For example, when the first connecting member 22 rotates clockwise within the first connecting hole 211, the first end of the first connecting member 22 moves away from the mounting member 21, and the first connecting member 22 drives the first caster 23 away from the mounting surface 12, thereby gradually increasing the distance between the first support member 20 and the mounting surface 12. For another example, when the first connecting member 22 rotates counterclockwise within the first connecting hole 211, the first end of the first connecting member 22 moves toward the mounting member 21, and the first connecting member 22 drives the first caster 23 toward the mounting surface 12. Thus, the distance between the first support member 20 and the mounting surface 12 gradually decreases.
[0032] The first caster 23 includes a first mounting plate 231 , a first rotating plate 232 and a first pulley 233 , and is used to move the semiconductor device 100 .
[0033] Specifically, the first surface 2310 of the first mounting plate 231 is provided with a first mounting groove 2311, and the first caster 23 can be connected to the first connector 22 through the first mounting groove 2311. The first rotating plate 232 is provided on the second surface 2312 of the first mounting plate 231. The surface where the first rotating plate 232 is connected to the first pulley 233 is provided with a first connecting groove 2321 (such as Figure 4 As shown in FIG, the first pulley 233 can be connected to the first rotating plate 232 through the first connecting groove 2321, and the first pulley 233 can rotate in the first connecting groove 2321, so that the first pulley 233 rotates relative to the first rotating plate 232 and the first mounting plate 231 to ensure that the rolling direction of the first pulley 233 can be changed, thereby enabling the semiconductor device 100 to be moved to any position through the first pulley 233.
[0034] Please combine Figure 5 and Figure 6 In some embodiments, the semiconductor device 100 further includes a support plate 50 .
[0035] Please combine Figure 1 and Figure 2 The two ends of the support plate 50 are respectively disposed on the two opposing side walls 13 and 14 of the housing 10, that is, the two ends of the support plate 50 are respectively disposed on the first side wall 101 and the third side wall 103 of the housing 10. Since the substrate 11 is disposed inside the housing 10, a distance is left between the support plate 50 and the substrate 11 to prevent the support plate 50 from directly contacting the substrate 11. When the semiconductor device 100 includes the support plate 50, the drawer 30 and the second support member 40 are disposed on the support plate 50.
[0036] A slide groove 51 is formed on a surface of the support plate 50 away from the base plate 11. The slide groove 51 extends in a first direction or a second direction, the first direction being perpendicular to the second direction. The drawer 30 is movably disposed in the slide groove 51. The first direction is parallel to the short side or the long side of the base plate 11.
[0037] For example, if the substrate 11 is rectangular, the short side direction is the direction of the short side of the substrate 11, and the long side direction is the direction of the long side of the substrate 11. When the first direction is parallel to the short side direction of the substrate 11, the second direction is parallel to the long side direction of the substrate 11. When the first direction is parallel to the long side direction of the substrate 11, the second direction is parallel to the short side direction of the substrate 11. In one embodiment, when the slide groove 51 extends along the short side direction of the substrate 11, the pull-out member 30 can move along the short side direction of the substrate 11 to drive the second support member 40 to move between the two ends in the short side direction of the substrate 11. In another embodiment, when the slide groove 51 extends along the long side direction of the substrate 11, the pull-out member 30 can move along the long side direction of the substrate 11 to drive the second support member 40 to move between the two ends in the long side direction of the substrate 11. In another embodiment, the sliding groove 51 may further extend along the diagonal direction of the base plate 11 , and the drawer 30 may move along the diagonal direction of the base plate 11 , thereby driving the second support member 40 to move between two diagonal corners of the base plate 11 .
[0038] The surface of the chute 51 is provided with a plurality of openings 511, and the extension direction of the plurality of openings 511 is consistent with the extension direction of the chute 51. The number of openings 511 can be one or more, for example, two, three, four, or more. For example, when the number of openings 511 is two, the two openings 511 are symmetrical about the center of the chute 51. When the number of openings 511 is three or more, the plurality of openings 511 are evenly spaced within the chute 51.
[0039] Please combine Figure 6The second support member 40 includes a first connecting plate 41 , a second connecting plate 42 and a second caster 43 .
[0040] The first connecting plate 41 is movably disposed within the chute 51. The first connecting plate 41 includes a connecting surface 410. The surface of the first connecting plate 41 away from the chute 51 is the connecting surface 410. The second connecting plate 42 is disposed on the connecting surface 410, and the second caster 43 is connected to the second connecting plate 42. In some embodiments, ball bearings may be fixedly mounted on both sidewalls of the chute 51. Both sidewalls of the first connecting plate 41 are in contact with the ball bearings simultaneously, thereby achieving rolling friction. The ball bearings can also engage the first connecting plate 41 within the chute 51 to prevent the first connecting plate 41 from falling out of the chute 51.
[0041] In certain embodiments, a first threaded hole may be formed on the first connecting plate 41, and a second threaded hole corresponding to the position of the first threaded hole may be formed on the second connecting plate 42. A screw may be passed through both the first threaded hole and the second threaded hole and screwed together with a nut, thereby positioning the second connecting plate 42 on the connecting surface 410. Specifically, a groove is formed on the surface of the first connecting plate 41 opposite to the connecting surface 410, i.e., the surface of the first connecting plate 41 in contact with the chute 51. The groove corresponds to the position of the first threaded hole. When the screw is fully screwed into the first threaded hole, the head of the screw is completely sunken into the groove, so that the surface of the first connecting plate 41 opposite to the connecting surface 410 is flat, thereby ensuring that the first connecting plate 41 can be positioned flatly within the chute 51.
[0042] Please combine Figure 7 The first connecting plate 41 further includes a main body 411 and a protruding portion 412. The main body 411 is disposed in the slide groove 51, and the protruding portion 412 is disposed on the surface of the main body 411 that contacts the second connecting plate 42 or on the side wall of the main body 411. The protruding portion 412 extends from the main body 411 in a direction away from the support plate 50. When the protruding portion 412 is disposed on the surface of the main body 411 that contacts the second connecting plate 42, the protruding portion 412 is disposed on the connecting surface 410 of the first connecting plate 41. A plurality of first holes 4121 are provided on the protruding portion 412, and a plurality of second holes 323 (such as Figure 9 ), the number of the first holes 4121 is the same as the number of the second holes 323, and the positions of the first holes 4121 correspond to the positions of the second holes 323. For example, when the number of the first hole 4121 is one, the number of the second hole 323 is one; when the number of the first holes 4121 is two, the number of the second holes 323 is two.
[0043] In one embodiment, the screw can be simultaneously provided with the first hole 4121 and the second hole 323 and screwed together with the nut so that the first connecting plate 41 is detachably connected to the drawer 30. In another embodiment, the first hole 4121 and the second hole 323 are both threaded holes, and the screw can be simultaneously screwed together in the first hole 4121 and the second hole 323 so that the first connecting plate 41 is detachably connected to the drawer 30. In addition, the first connecting plate 41 is detachably connected to the drawer 30 for the convenience of cleaning, maintenance or replacement of the drawer 30 in the later stage. Because the first connecting plate 41 and the second connecting plate 42 are connected, and the second caster 43 is connected to the second connecting plate 42, therefore, when the drawer 30 moves in the chute 51, the drawer 30 drives the first connecting plate 41 to move, thereby driving the second connecting plate 42 and the second caster 43 to move.
[0044] In the embodiment of the present application, the protrusion 412 is used to connect the drawer 30 so that the drawer 30 is connected to the main body 411, and the protrusion 412 extends from the main body 411 in a direction away from the support plate 50. Therefore, when the drawer 30 is pulled to move the drawer 30 in the slide groove 51, only the part of the drawer 30 connected to the protrusion 412 will generate friction with the slide groove 51, and other parts of the drawer 30 will also be away from the support plate 50, thereby reducing the friction generated between the drawer 30 and the slide groove 51.
[0045] Among them, the distance between the second connecting plate 42 and the first connecting plate 41 is adjustable. Since the second caster 43 is connected to the second connecting plate 42, when the second connecting plate 42 is away from the first connecting plate 41, the second connecting plate 42 can drive the second caster 43 away from the first connecting plate 41. When the second connecting plate 42 is close to the first connecting plate 41, the second connecting plate 42 can drive the second caster 43 close to the first connecting plate 41.
[0046] Specifically, please combine Figure 6 The second support member 40 also includes a second connecting member 44. The first connecting plate 41 is provided with a second connecting hole 413, specifically, the second connecting hole 413 is provided on the main body 411. The second connecting plate 42 is provided with a third connecting hole 421. The second connecting member 44 is provided with the second connecting hole 413 and the third connecting hole 421. The second connecting member 44 is movable relative to the mounting surface, thereby changing the distance between the second connecting plate 42 and the first connecting plate 41. The second connecting hole 413 and the third connecting hole 421 are positioned correspondingly. The number of second connecting holes 413 and the number of third connecting holes 421 can be multiple and identical. For example, if there is one second connecting hole 413, there is also one third connecting hole 421; if there are two second connecting holes 413, there are also two third connecting holes 421. If there are multiple second connecting holes 413 and multiple third connecting holes 421, there can be multiple second connecting members 44.
[0047] like Figure 8 As shown, when the second connecting member 44 passes through the second connecting hole 413 and the third connecting hole 421, the first end 441 of the second connecting member 44 will also pass through the opening 511 on the surface of the slide groove 51, and the number of the second connecting members 44 is consistent with the number of the openings 511. The distance between the support plate 50 and the base plate 11 is the maximum distance the second connecting member 44 can move after passing through the opening 511. When the pull-out member 30 moves in the slide groove 51 to drive the second support member 40 to move in the slide groove 51, the second connecting member 44 also moves in the opening 511 along the extension direction of the slide groove 51, and the multiple second connecting members 44 can prevent the second support member 40 from shaking when moving on the slide groove 51. When it is necessary to adjust the distance between the first connecting plate 41 and the second connecting plate 42, the second connecting member 44 can move in the height direction relative to the opening 511, thereby driving the second connecting plate 42 away from or close to the first connecting plate 41 to adjust the distance between the first connecting plate 41 and the second connecting plate 42.
[0048] More specifically, the surface of the second connecting member 44 is provided with threads, the second connecting hole 413 is a threaded hole, and the third connecting hole 421 is a fixing hole. The second connecting member 44 is screwed into the second connecting hole 413 and is also passed through and fixed in the third connecting hole 421. At this time, since the first connecting plate 41 and the second connecting plate 42 are fixed by screws and nuts, it is necessary to loosen the nuts first to adjust the distance between the first connecting plate 41 and the second connecting plate 42. By rotating the second connecting member 44, the threads of the second connecting member 44 and the threaded holes of the second connecting hole 413 cooperate with each other, so that the second connecting member 44 can move in the height direction, thereby adjusting the distance between the second connecting member 44 and the mounting surface. The third connection hole 421 is a fixed hole. Therefore, the second connection member 44 is fixedly connected to the second connection plate 42. When the second connection member 44 moves in the height direction, it will drive the second connection plate 42 to move in the height direction, so that the distance between the second connection plate 42 and the mounting surface can be adjusted, and the first connection plate 41 is located between the mounting surface and the second connection plate 42, that is, the distance between the first connection plate 41 and the second connection plate 42 is adjustable. The second connection member 44 can be a fastener such as a jackscrew, a screw, or a screw.
[0049] For example, when the second connecting member 44 is rotated clockwise, the first end 441 of the second connecting member 44 approaches the first connecting plate 41, and the second connecting member 44 drives the second connecting plate 42 to gradually move away from the first connecting plate. When the first end 441 of the second connecting member 44 is completely located in the second connecting hole 413, the first end 441 of the second connecting member 44 cannot move closer to the first connecting plate 41. For another example, when the second connecting member 44 is rotated counterclockwise, the first end 441 of the second connecting member 44 moves away from the first connecting plate 41, and the second connecting plate 42 gradually moves closer to the first connecting plate 41. When the first connecting plate 41 and the second connecting plate 42 are in contact, the first end 441 of the second connecting member 44 cannot move further away from the first connecting plate 41.
[0050] After the distance between the first connecting plate 41 and the second connecting plate 42 is adjusted to a suitable distance, the nut that matches the screw can be locked again. At this time, the distance between the first connecting plate 41 and the second connecting plate 42 cannot be adjusted any more, thereby ensuring that after the distance between the first connecting plate 41 and the second connecting plate 42 is fixed, the distance between the first connecting plate 41 and the second connecting plate 42 will not change, that is, the distance between the second caster 43 and the support plate 50 will not change, thereby ensuring the stability of the semiconductor device 100. Please continue to combine Figure 6 The second caster 43 includes a second rotating plate 431 and a second pulley 432 .
[0051] Specifically, the second rotating plate 431 is arranged on the second connecting plate 42, that is, the second caster 43 is connected to the second connecting plate 42 through the second rotating plate 431, and a second connecting groove 4311 is provided on the surface where the second rotating plate 431 is connected to the second pulley 432. The second pulley 432 can be connected to the second rotating plate 431 through the second connecting groove 4311, and the second pulley 432 can rotate in the second connecting groove 4311, so that the second pulley 432 rotates relative to the second rotating plate 431 to ensure that the rolling direction of the second pulley 432 can be changed, thereby realizing that the semiconductor device 100 can be moved to any position through the cooperation of the first pulley 233 and the second pulley 432.
[0052] Please combine Figure 5 and Figure 6 In some embodiments, the semiconductor device 100 includes two pressing plates 60 . The pressing plates 60 are disposed on the support plate 50 and are used to support the first connecting plate 41 . The second connecting plate 42 is located between the two pressing plates 60 . The first connecting plate 41 and the second connecting plate 42 can move between the two pressing plates 60 along the extension direction within the slide groove 51 .
[0053] When the second support member 40 is disposed in the chute 51, the second support member 40 will tend to move away from the chute 51 due to the influence of gravity. However, the second support member 40 needs to adjust the distance between the second connecting plate 42 and the first connecting plate 41, thereby adjusting the distance between the second caster 43 and the support plate 50, thereby achieving height adjustment of the second caster 43. Therefore, in order to simultaneously ensure that the second support member 40 does not fall out of the chute 51, the distance between the second caster 43 and the support plate 50 in the second support member 40 is adjustable, and the second support member 40 can be driven by the pull-out member 30 to move in the chute 51, it is necessary to block the first connecting plate 41 in the chute 51 while ensuring that the first connecting plate 41 can move in the chute 51.
[0054] Specifically, after the first connecting plate 41 is set in the chute 51, the two pressing plates 60 are respectively set on the two top walls 52 of the support plate 50, and the width of the pressing plates 60 is greater than the width of the top wall 52, so as to partially block the chute 51, thereby forming a receiving cavity with the chute 51, and the first connecting plate 41 is received in the receiving cavity. The width of the second connecting plate 42 is less than the distance between the two pressing plates 60, so as to ensure that when the second connecting plate 42 is set on the first connecting plate 41, the second connecting plate 42 is not blocked by the pressing plates 60, thereby simultaneously meeting the requirements of adjustable distance between the first connecting plate 41 and the second connecting plate 42, and the first connecting plate 41 can move in the chute 51 to drive the second connecting plate 42 to move, thereby achieving adjustable distance between the second support member 40 and the support plate 50, while the second support member 40 can also move in the chute 51.
[0055] Please combine Figure 5 、 Figure 6 and Figure 9 In some embodiments, the semiconductor device 100 further includes a fixing member 70 .
[0056] The fixing member 70 is provided with a fixing hole 71, and the drawer 30 passes through the fixing hole 71 and is connected to the second support member 40. Specifically, the fixing member 70 is disposed at the first end 53 of the support plate 50 and is sleeved with the drawer 30, so that the drawer 30 passes through the fixing hole 71. Since the fixing member 70 is fixedly connected to the support plate 50, when the drawer 30 passes through the fixing hole 71, the fixing member 70 can support the drawer 30. On the one hand, it can prevent the drawer 30 from directly contacting the ground, thereby ensuring the cleanliness of the drawer 30 and improving the service life of the drawer 30. On the other hand, it can ensure that the drawer 30 is always in a horizontal state when moving in the slide 51, so that the drawer 30 is pulled, thereby improving the user experience.
[0057] Please combine Figure 5 、 Figure 6 and Figure 8The drawer 30 includes a drawer body 31 and a connecting portion 32 .
[0058] The drawer body 31 is connected to the first end 321 of the connecting portion 32 and is secured by a fixing member 70. The second end 322 of the connecting portion 32 is connected to the second support member 40. When the drawer body 31 is pulled, the drawer body 31 drives the connecting portion 32 to move within the slide groove 51, thereby driving the second support member 40 to move within the slide groove 51. Because the third side wall 103 of the housing 10 is not equipped with the first support member 20, the semiconductor device 100 can be connected to other semiconductor devices 100 or contact the wall through the third side wall 103. However, when the semiconductor device 100 is connected to multiple semiconductor devices 100 at the same time, or is located in a corner, the first support member 20 located at the center of the connection between the multiple semiconductor devices 100 or the first support member 20 located in the corner cannot be adjusted in height without moving the semiconductor device 100. At this time, the other three first support members 20 that can adjust the distance between them and the mounting surface 12 of the substrate 11 can be adjusted first, and then the pull-out member 30 can be pulled to drive the second support member 40 to extend from the third side wall 103 to the first side wall 101, thereby adjusting the distance between the second support member 40 and the mounting surface 12. After matching the distance with the other three first support members 20, the second support member 40 can be pushed back to the third side wall 103 through the pull-out member 30. At this time, the second support member 40 can replace the first support member 20 that cannot be adjusted, thereby completing the adjustment of the height of the semiconductor device 100.
[0059] like Figure 9 As shown, a slot 311 is provided on the drawer body 31. When pulling the drawer body 31, the user can grab the slot 311 to pull the drawer body 31 to move in the slide groove 51, thereby driving the second support member 40 to move in the slide groove 51, thereby improving the convenience of pulling the drawer 30.
[0060] A second hole 323 is defined in the second end 322 of the connecting portion 32. The second end 322 of the connecting portion 32 engages with the first hole 4121 of the protrusion 412 of the first connecting plate 41 through the second hole 323, thereby connecting to the protrusion 412 of the first connecting plate 41, thereby connecting the connecting portion 32 to the second support member 40. The connecting portion 32 extends from the drawer body 31 toward the support plate 50. Therefore, the distance between the connecting portion 32 and the support plate 50 is smaller than the distance between the drawer body 31 and the support plate 50. Consequently, the end of the drawer body 31 connected to the connecting portion 32 is supported by the connecting portion 32, and the end of the drawer body 31 connected to the fixing member 70 is supported by the fixing member 70 within the fixing hole 71. This prevents the drawer body 31 from directly contacting the slide groove 51. Only a portion of the connecting portion 32 of the drawer member 30 is in direct contact with the slide groove 51, thereby reducing friction between the drawer member 30 and the slide groove 51.
[0061] Throughout this specification, reference to the terms "certain embodiments," "one embodiment," "some embodiments," "illustrative embodiments," "examples," "specific examples," or "some examples" means that a specific feature, structure, material, or characteristic described in conjunction with an embodiment or example is included in at least one embodiment or example of the present application. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0062] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the number of technical features indicated. Thus, features defined as "first" or "second" may explicitly or implicitly include at least one feature. In the description of this application, "plurality" means at least two, for example, two or three, unless otherwise specifically defined.
[0063] Although the embodiments of the present application have been shown and described above, it can be understood that the above embodiments are illustrative and cannot be understood as limitations on the present application. Ordinary technicians in this field can change, modify, replace and modify the above embodiments within the scope of the present application. The scope of the present application is defined by the claims and their equivalents.
Claims
1. A semiconductor device, characterized in that: include: a housing, the housing including a substrate, the substrate including a mounting surface; a plurality of first support members, wherein the first support members are provided on the housing to support the housing, and the distance between the first support members and the mounting surface is adjustable; a drawer, the drawer being movably arranged on the mounting surface; and a second support member connected to the drawer member, the drawer member being capable of driving the second support member to move so as to move the second support member between the two ends of the housing, and the distance between the second support member and the mounting surface being adjustable; The semiconductor device includes a support plate, two ends of which are respectively arranged on two opposite side walls of the housing, the support plate is provided with a slide groove, the drawer is movably arranged in the slide groove, and the drawer and the second support member are arranged on the support plate; The second support member comprises: a first connecting plate, the first connecting plate being movably disposed in the sliding groove, the first connecting plate comprising a connecting surface, and the first connecting plate being connected to the drawer; a second connecting plate, the second connecting plate being arranged on the connecting surface; and A second caster is connected to the second connecting plate.
2. The semiconductor device according to claim 1, wherein The first support member comprises: A mounting member, the mounting member being arranged on a side wall of the housing and having a first connecting hole; a first connecting member, the first connecting member being movably disposed in the first connecting hole; A first caster is connected to the first connecting member and is used to move the semiconductor device. When the first connecting member moves, the first caster can be driven to move closer to or away from the mounting member.
3. The semiconductor device according to claim 1, wherein The sliding groove extends along a first direction or a second direction, the first direction is perpendicular to the second direction, and the first direction is parallel to the short side direction or the long side direction of the substrate.
4. The semiconductor device according to claim 1, wherein A plurality of openings are provided in the chute, and the extending direction of the openings is consistent with the extending direction of the chute.
5. The semiconductor device according to claim 1, wherein The first connecting plate includes a main body and a protruding portion, wherein the protruding portion is arranged on a surface of the main body that contacts the second connecting plate or a side wall of the main body, and the protruding portion extends from the main body in a direction away from the support plate, and the protruding portion is connected to the pull-out piece.
6. The semiconductor device according to claim 1, wherein The first connecting plate is provided with a second connecting hole, and the second connecting plate is provided with a third connecting hole, and the second connecting hole and the third connecting hole are positioned correspondingly. The second supporting member also includes a second connecting member, and the second connecting member passes through the second connecting hole and the third connecting hole. The second connecting member can move relative to the mounting surface to change the distance between the second connecting plate and the first connecting plate.
7. The semiconductor device according to claim 1, wherein The semiconductor device comprises: Two pressing plates are arranged on the supporting plate, the pressing plates are used to support the first connecting plate, the second connecting plate is located between the two pressing plates, and the first connecting plate and the second connecting plate can move between the two pressing plates along the extension direction of the sliding groove.
8. The semiconductor device according to claim 1, wherein The semiconductor device further includes: A fixing member is provided with a fixing hole, and the drawer passes through the fixing hole and is connected to the second supporting member.
9. The semiconductor device according to claim 8, wherein The drawer comprises: A drawer body, wherein the drawer body is provided with the fixing hole; A connecting portion is connected to the drawer body, the connecting portion extends from the drawer body toward the support plate, and the connecting portion is connected to the second support member.
Citation Information
Patent Citations
Semiconductor device
CN214956777U