Carton opening detector shell of computing device, carton opening detector and computing device
By incorporating clips and operating components on the server unpacking detector housing, the unpacking detector can be quickly disassembled and installed, solving the problem of difficult disassembly in existing technologies and improving maintenance efficiency.
Patent Information
- Application Number
- CN202422532071.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-18
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-10-18
AI Technical Summary
Existing server unpacking detectors are difficult to disassemble and repair quickly, resulting in long replacement and repair times.
A housing for an unpacking detector of a computing device is designed. By setting a latch and an operating component on the housing, and using the first and second walls of the housing to form an accommodating space, the installation and disassembly of the detector body can be facilitated. The operating component can extend from the first wall toward the latch to drive the latch out of the latch hole, simplifying the disassembly process.
It simplifies the disassembly process of the unpacking detector, shortens the replacement and maintenance time, and improves the convenience and efficiency of operation.
Smart Images

Figure CN223500416U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of server technology, and more particularly to an unpacking detector housing, an unpacking detector, and an electronic device for a computing device. Background Technology
[0002] Servers, as critical information processing infrastructure, operate in a variety of environments. When unattended, data security is paramount. In the event of unauthorized access to a server, the backend management system must detect it immediately and record the intrusion activity. Typically, servers are equipped with unpacking detectors to monitor such activity.
[0003] In related technologies, in order to make full use of the internal space of the server and improve space utilization, the server unpacking detector is set on the fan bracket by a snap-fit method, and the unpacking detector is fixed by the openings on the fan bracket itself.
[0004] However, when the unpacking detector malfunctions and needs to be disassembled, it is difficult to disassemble the detector, and the replacement and repair time is long. Utility Model Content
[0005] This application provides a housing for an unpacking detector, an unpacking detector, and an electronic device for a computing device, which enables convenient disassembly of the unpacking detector, simplifies the disassembly process, and shortens the replacement and maintenance time of the unpacking detector.
[0006] To achieve the above objectives, the embodiments of this application adopt the following technical solutions:
[0007] In a first aspect, embodiments of this application provide an unpacking detector housing for a computing device, comprising:
[0008] The shell body has a first wall and a second wall, which together form a receiving space. The receiving space is configured to receive the detector body, and the detection probe of the detector body is positioned facing the first wall.
[0009] A fastener, located on the second wall, has a fastener, and the fastener is inserted into a clip hole for passing through the mounting bracket;
[0010] An operating element, movably disposed on the housing body, is configured to extend from the first wall toward the latch. The operating element is used to operate the latch to drive the latch out of the latching hole.
[0011] The unpacking detector housing of the computing device provided in this application embodiment forms an accommodating space by the enclosing first wall and the second wall of the housing body, which facilitates the placement of the detector body within the accommodating space and thus facilitates the installation of the detector body onto the mounting bracket; in addition, the detection probe of the detector body is positioned facing the first wall, which facilitates the detection probe to detect whether the cover of the computing device (e.g., a server) is in place.
[0012] A snap-fit element is provided on the second wall so that after the shell body is installed on the mounting bracket, the snap-fit element can be inserted into the snap hole of the mounting bracket to fix the shell body and the detector body located in the receiving space.
[0013] In this embodiment, an operating member is movably disposed on the housing body. When it is necessary to remove the unpacking detector from the mounting bracket, the operating member can extend from the first wall toward the latch and operate the latch (for example, the operating member can abut the latch), thereby driving the latch to retract from the latch hole. Thus, when disassembling the unpacking detector, the operator only needs to operate the latch through the operating member at the opening of the computing device to quickly remove the unpacking detector, eliminating the need for the operator to insert their fingers into the side of the housing body opposite the electronic device cover to operate the latch. This simplifies the disassembly method of the unpacking detector and shortens the replacement and maintenance time of the unpacking detector.
[0014] In one implementation, the second wall includes a first sub-wall and a second sub-wall, the first sub-wall being disposed opposite to the first wall, the second sub-wall being connected between the first sub-wall and the first wall, and the operating element being movably disposed on the second sub-wall.
[0015] In this embodiment, a second sub-wall is provided between the first sub-wall and the first wall, and the fastener is disposed on the second sub-wall, thus facilitating the connection between the fastener and the housing body. Furthermore, the operating component is movably disposed on the second sub-wall. Therefore, when operating the operating component, it can directly operate the fastener, improving the convenience of operating the fastener and saving the disassembly time of the unpacking detector.
[0016] In one implementation, the fastener includes:
[0017] The connecting part is connected to the second sub-wall;
[0018] The movable part is connected to the connecting part and is located at the end of the connecting part away from the first wall; the buckle is provided in the movable part;
[0019] The operating element is configured to move its movable part away from the mounting bracket, thereby causing the latch to disengage from the locking hole.
[0020] In this embodiment, the connecting part is connected to the second sub-wall, facilitating the connection and fixation of the fastener to the second sub-wall. The movable part is connected to the connecting part, and the fastener is located on the movable part. Thus, when the unpacking detector is installed on the mounting bracket, the mounting bracket can apply a force to the fastener, causing the movable part to move away from the mounting bracket, thereby facilitating the installation of the unpacking detector.
[0021] When the buckle moves to the slot, the reaction force provided by the moving part on the buckle causes the buckle to pass through the slot, which facilitates the quick installation of the unpacking detector.
[0022] When it is necessary to remove the unpacking detector from the mounting bracket, the operating component operates the movable part, causing the movable part to move away from the mounting bracket, thereby driving the latch to disengage from the latch hole. This facilitates the operation of the latch by the operating component, making the removal of the unpacking detector easier and saving removal time.
[0023] In one implementation, the operating element is located on the side of the connector facing the mounting bracket.
[0024] The operating component is located on the side of the connecting part facing the mounting bracket. In this way, when the operating component operates the latch, it can push the movable part away from the mounting bracket, which can save the force required to operate the operating component and facilitate the disassembly of the unpacking detector.
[0025] In one implementation, the operating component is connected to the moving part.
[0026] In this embodiment, the operating component is connected to the movable part. That is, the operating component moves relative to the housing body via the movable part. Thus, the direction of operation of the operating component is the same as the direction of action of the operating component on the movable part, facilitating operation by the operator and saving time for disassembling the unpacking detector.
[0027] In one implementation, the second sub-wall is provided with a first rotation fulcrum, and the operating element is rotatably connected to the first rotation fulcrum.
[0028] In this embodiment, a first rotation fulcrum is provided on the second sub-wall, and the operating component is rotatably connected to the first rotation fulcrum. Thus, when the operating component is operated, it can rotate relative to the second sub-wall via the first rotation fulcrum, thereby pushing against the movable part in a direction away from the mounting bracket, causing the movable part to disengage the latch from the locking hole. By providing the first rotation fulcrum on the second sub-wall, the force required by the operator can be reduced by adjusting the different lever arm lengths of the operating component's rotation relative to the first rotation fulcrum. This facilitates the operation of the operating component by the operator.
[0029] In one implementation, the operating component is located on the side of the connecting part facing away from the mounting bracket, and the operating component is connected to the movable part.
[0030] In this embodiment, the operating component is located on the side of the connecting portion facing away from the mounting bracket. In this way, the space on the side of the connecting portion facing away from the mounting bracket can be used to provide sufficient space for the operating component, which facilitates the installation of the operating component.
[0031] In one implementation, the second sub-wall is provided with a second rotation fulcrum, and the operating element is rotatably connected to the second rotation fulcrum.
[0032] In this embodiment, a second rotation fulcrum is provided on the second sub-wall, and the operating component is rotatably connected to the second rotation fulcrum. Thus, when it is necessary to remove the unpacking detector from the mounting bracket, the operating component can rotate relative to the second sub-wall via the second rotation fulcrum, causing the end of the operating component away from the first wall to pull the movable part away from the mounting bracket. The movable part then causes the latch to disengage from the locking hole, facilitating the removal of the unpacking detector from the mounting bracket.
[0033] In one implementation, at least a portion of the operating element protrudes from the first wall. This facilitates operation of the operating element by the operator.
[0034] In one implementation, the first wall has an opening through which the detection probe of the detector body passes, and the length of the operating member protruding from the first wall is less than the trigger stroke of the detection probe. This ensures that the detection probe of the detector body can be effectively triggered when the cover of the electronic device is in place, preventing the operating member from affecting the detection probe.
[0035] Secondly, embodiments of this application provide an unpacking detector for a computing device, comprising:
[0036] The unpacking detector housing provided in any of the foregoing embodiments of this application;
[0037] The detector body is located within the housing of the unpacking detector housing, and the detection probe of the detector body is disposed with respect to the first wall facing the unpacking detector housing.
[0038] In one implementation, the detector body includes any one of a limit switch, a magnetic induction switch, and a through-beam sensor.
[0039] Thirdly, embodiments of this application provide a computing device, including...
[0040] The chassis contains the computing module and cooling fan.
[0041] The mounting bracket is located inside the chassis; it is used to mount the cooling fan, which is used to dissipate heat from the computing module.
[0042] And, the unpacking detector provided in the second aspect embodiment of this application; the unpacking detector is disposed on the mounting bracket.
[0043] Fourthly, embodiments of this application provide a mounting bracket for a computing device, comprising:
[0044] The bracket body has a mounting position and a snap hole. The mounting position is configured to mount the unpacking detector, and the snap hole is configured to engage with the snap fastener of the unpacking detector to fix the unpacking detector.
[0045] An operating element, located on the bracket body, is configured to extend from the edge of the bracket body toward the latching hole and operate the latching element to drive the latching element's latch out of the latching hole.
[0046] In this embodiment, by setting an installation position and a locking hole on the bracket body, the unpacking detector is installed at the installation position, and the locking fastener of the unpacking detector can be controlled to facilitate the fixation of the unpacking detector.
[0047] An operating element is incorporated into the bracket body, extending from its edge towards the locking hole. This allows for easy removal of the unpacking detector from the mounting bracket by manipulating the locking mechanism, disengaging it from the locking hole. Disassembly of the unpacking detector is simplified by the operator simply manipulating the locking mechanism at the opening of the electronic device, eliminating the need to insert fingers into the side of the detector facing away from the enclosure. This streamlined process reduces the time required for replacement and maintenance.
[0048] In one implementation, the support body is provided with a third rotation fulcrum, and the operating element is rotatably disposed at the third rotation fulcrum.
[0049] By providing a third rotational space on the mounting bracket, the operating component is rotatably positioned at the third rotational fulcrum. This facilitates the movable connection between the operating component and the mounting bracket.
[0050] Fifthly, embodiments of this application provide a computing device, including:
[0051] The chassis contains the computing module and cooling fan.
[0052] The mounting bracket provided in the fourth aspect embodiment of this application is used for mounting a heat dissipation fan.
[0053] And an unpacking detector, which is installed at the mounting position of the mounting bracket. Attached Figure Description
[0054] Figure 1 This is a schematic diagram of the overall structure of a computing device provided in some embodiments of this application;
[0055] Figure 2This is a schematic diagram of a structure in which the unpacking detector of a computing device and the mounting bracket cooperate, according to some embodiments of this application;
[0056] Figure 3 This is an exploded structural diagram of the unpacking detector of a computing device and its mounting bracket in cooperation with some embodiments of this application;
[0057] Figure 4 This is an exploded view of the unpacking detector and mounting bracket of the computing device provided in some embodiments of this application.
[0058] Figure 5 This is a schematic diagram of the structure of the housing of the open-box detector in a computing device provided in some embodiments of this application;
[0059] Figure 6 This is an exploded structural diagram of the housing of an unpacking detector in a computing device provided in some embodiments of this application;
[0060] Figure 7 This is a rear view of the housing of the unpacking detector provided in some embodiments of this application;
[0061] Figure 8 This is a right view of the housing of the unpacking detector provided in some embodiments of this application;
[0062] Figure 9 This is another structural schematic diagram of the unpacking detector and mounting bracket provided in some embodiments of this application;
[0063] Figure 10 This is a schematic diagram of the structure of an unpacking detector provided in some embodiments of this application;
[0064] Figure 11 This is another structural schematic diagram of the unpacking detector and mounting bracket provided in some embodiments of this application;
[0065] Figure 12 This is another structural schematic diagram of the unpacking detector provided in some embodiments of this application;
[0066] Figure 13 This is another structural schematic diagram of the unpacking detector and mounting bracket provided in some embodiments of this application;
[0067] Figure 14 This is another structural schematic diagram of the unpacking detector and mounting bracket provided in some embodiments of this application.
[0068] Explanation of reference numerals in the attached figures:
[0069] 10 - Unpacking detector; 20 - Box cover; 30 - Mounting bracket;
[0070] 110 - Detector housing (unpacked); 120 - Detector body; 301 - Bracket body; 310 - Snap-in hole;
[0071] 111-Shell body; 112-Snap fastener; 113-Operating component; 114-Hook; 121-Detection probe;
[0072] 1111 - Accommodation space; 1112 - First wall; 1113 - Snap-fit side wall; 1114 - Placement position; 1121 - Buckle; 1122 - Connecting part; 1123 - Movable part; 1131 - First rotation fulcrum; 1132 - Second rotation fulcrum. Detailed Implementation
[0073] The technical solutions of the embodiments of this application will now be described with reference to the accompanying drawings. To facilitate a clear description of the technical solutions of the embodiments of this application, the use of terms such as "first," "second," etc., in the embodiments of this application is for illustrative purposes and to distinguish the objects being described. There is no particular order between them, nor does it indicate a specific limitation on the number of devices in the embodiments of this application, and they do not constitute any limitation on the embodiments of this application.
[0074] To enable those skilled in the art to better understand the technical solutions in this application, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments in this application, all other embodiments obtained by those of ordinary skill in the art without creative effort should fall within the scope of protection of this application.
[0075] It should be noted that many specific details are set forth in the following description in order to provide a full understanding of this application. However, this application may also be implemented in other ways different from those described herein. Therefore, the scope of protection of this application is not limited to the specific embodiments disclosed below.
[0076] In the description of this application, it should be understood that the terms "upper," "lower," "horizontal," "bottom," "inner," and "outer" (if any) indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are used only for the convenience of describing this application and for simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application. In this application, unless otherwise expressly specified and limited, "upper" or "lower" of the first feature and the second feature may mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium.
[0077] In this application, unless otherwise expressly specified and limited, the terms "connected," "linked," and "fixed," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral unit; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. However, specifying a direct connection indicates that the two entities connected are not linked by an intermediate structure, but are simply connected to form a whole. For those skilled in the art, the specific meaning of the above terms in this application can be understood according to the specific circumstances.
[0078] In this application, the use of terms such as "first," "second," etc., is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features.
[0079] Figure 1 This is a schematic diagram of the overall structure of a computing device provided in some embodiments of this application.
[0080] Computing devices now play a vital role in various industries, enabling data storage, information exchange, and command control. Examples of computing devices include rack servers, cabinet servers, high-density servers, and blade servers. It is understood that the types of computing devices described in this embodiment are merely illustrative examples and are not intended to limit the specific types of computing devices.
[0081] Servers, as critical information processing infrastructure, exist in a variety of workplaces. When unattended, it is essential to ensure their secure operation.
[0082] When a server device is compromised, the backend management system needs to detect it immediately and record whether an intrusion has occurred.
[0083] In some examples, refer to Figure 1 As shown, the server will install an unpacking detector 10 to detect unpacking behavior.
[0084] In some examples, the unpacking detector 10 can detect the unpacking behavior of the server by cooperating with the server's case cover 20 to detect the opening behavior of the case cover 20.
[0085] In some examples, the unpacking detector 10 may include a physically linked trigger mechanism. This physically linked trigger mechanism may include a limit switch. When the lid 20 is closed, it may press against the detection probe of the limit switch. When the lid 20 is opened, it moves away from the detection probe of the limit switch, causing a change in the state of the detection probe of the unpacking detector 10. This change in the switch state on the unpacking detector 10 causes it to generate a detection signal. For example, the unpacking detector 10 may include a limit switch.
[0086] In some examples, the box opening detector 10 may include a magnetic induction switch. When the box lid 20 is closed, the distance between the magnetic induction switch and the magnet disposed on the box lid 20 remains constant, and the state of the magnetic induction switch remains unchanged. When the box lid 20 is opened, the movement of the box lid 20 can cause the magnet disposed on the box lid 20 to move. The movement of the magnet causes a change in the magnetic field strength detected by the box opening detector 10. This change in the detected magnetic field generates a detection signal. For example, the box opening detector 10 may include a Hall sensor. A magnetic element may be disposed on the box lid 20. When the box lid 20 is opened, the magnetic element is displaced, and the magnetic field detected by the Hall sensor changes, thereby generating a detection signal.
[0087] In some examples, the unpacking detector 10 may include a through-beam sensor. When the lid 20 is closed, a baffle disposed on the lid 20 may block the signal transmission path of the through-beam sensor; for example, the baffle may block the signal transmitting component and the signal receiving component of the through-beam sensor. When the lid 20 is opened, the lid 20 may cause the baffle disposed on the lid 20 to move away from the signal transmission path of the through-beam sensor, so that the signal receiving component of the through-beam sensor can receive the signal emitted by the signal transmitting component, thereby generating a detection signal.
[0088] In some examples, through-beam sensors may include photogates.
[0089] In some examples, to facilitate the mounting of the unpacking detector 10, a mounting bracket 30 can generally be provided inside the server. The unpacking detector 10 can be mounted on the mounting bracket 30.
[0090] It is understood that a server comprises multiple components. For example, a server may include a processor, memory modules, a power supply, and cooling fans. To make full use of the server's internal space, the mounting bracket 30 can be a fan bracket for mounting the cooling fan inside the server chassis.
[0091] In some examples of embodiments of this application, an unpacking detector 10 for a computing device is provided. The unpacking detector 10 includes an unpacking detection housing 110 and a detector body 120. The detector body 120 is disposed on the unpacking detector housing 110 and connected to a mounting bracket 30 via the unpacking detector housing 110. Additionally, a latching member 112 is provided on the housing body 111 of the unpacking detector housing 110. The latching member 112 has a latch 1121, which passes through an opening 310 in the mounting bracket 30, thereby achieving the installation and fixation of the unpacking detector 10. An operating member 113 is provided, which is movably disposed on the housing body 111. When it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the operating member 113 extends from the first wall 1112 of the housing towards the latch 1121 and operates the latch 1121, thereby causing the latch 1121 to disengage from the latch hole 310. In this way, the operator can directly operate the latch 1121 through the operating part 113 on the opening side of the server (i.e. the opening side formed after the server cover 20 is opened), without having to insert their fingers into the bottom of the unpacking detector 10 to operate the opening, which simplifies the disassembly of the unpacking detector 10 and shortens the replacement and maintenance time of the unpacking detector 10.
[0092] Figure 2 This is a schematic diagram of a structure in which the unpacking detector of a computing device and the mounting bracket cooperate, according to some embodiments of this application. Figure 3 This is an exploded structural diagram of the unpacking detector and mounting bracket provided in some embodiments of this application. Figure 4 This is an exploded view of the unpacking detector and mounting bracket of a computing device provided in some embodiments of this application.
[0093] In some examples, refer to Figures 2-4 As shown, the unpacking detector 10 may include an unpacking detector housing 110. The unpacking detector housing 110 can serve as a connector for connecting the detector body 120 and the mounting bracket 30.
[0094] In some examples, the unpacking detector 10 may include a detector body 120. The detector body 120 may be disposed within the unpacking detector housing 110.
[0095] In some examples, the detector body 120 may have a detection probe 121. The detection probe 121 may be oriented toward the first wall 1112 of the unpacking detector housing 110 to detect whether the server's case cover 20 is in place.
[0096] In some examples, the first wall 1112 may be the side wall of the unpacking detector housing 110 facing the cover 20 (in some examples, it may also be called the top wall).
[0097] In some examples, the detector body 120 may include the limit switch described in detail in the foregoing embodiments of this application. The detector probe may extend from the first wall 1112 out of the detector housing 110.
[0098] In some examples, the detector body 120 may include a magnetic induction switch as described in the foregoing embodiments of this application, such as a Hall sensor.
[0099] In some examples, the detector body 120 may include a through-beam sensor as described in the foregoing embodiments of this application, such as a photogate.
[0100] Figure 5 This is a schematic diagram of the structure of an unpacking detector housing in a computing device provided in some embodiments of this application.
[0101] In some examples, refer to Figures 2-5 As shown, the unpacking detector housing 110 may include a housing body 111. The housing body 111 may have a first wall 1112 and a second wall 1113. The first wall 1112 and the second wall 1113 may be closed to form a receiving space 1111. The receiving space 1111 may be configured to receive the detector body 120.
[0102] In some examples, the detector body 120 may be fixedly connected to the housing body 111.
[0103] In some examples, the detector body 120 can be fixed in the receiving space 1111 by snap-fit.
[0104] In some examples, the detector body 120 can be fixed within the receiving space 1111 by bolts, screws or threaded rods.
[0105] In some examples, the detector body 120 may be attached to the receiving space 1111.
[0106] It is understood that the detector body 120 can also be fixed in the accommodating space 1111 in other ways, which will not be described in detail in this embodiment.
[0107] In some examples, the first wall 1112 may be the side wall (or top wall) of the housing body 111 facing the server chassis cover 20 (or opening) after the unpacking detector 10 is installed onto the mounting bracket 30. The detection probe 121 of the detector body 120 may be positioned facing the first wall 1112. The mounting bracket 30 may be a bracket for mounting a cooling fan inside a computing device.
[0108] In some examples, when the detector body 120 is a limit switch, the detection probe 121 can be the pressing contact of the limit switch; the detection probe 121 can extend out of the first wall 1112. After the server cover 20 is closed on the server, the server cover 20 presses against the pressing contact of the limit switch. When the server cover 20 is opened, the force on the pressing contact of the switch disappears, and the pressing contact resets, thereby generating a detection signal.
[0109] In some examples, when the detector body 120 is a magnetic induction switch, the sensing element of the magnetic induction switch can be disposed inside the housing body 111, and the sensing element can be located on the side close to the first wall 1112.
[0110] Understandably, in some examples, the sensing element of the magnetic induction switch may also extend from the first wall 1112 out of the housing body 111.
[0111] In some examples, when the detector body 120 is a through-beam sensor, a perforation can be made in the first wall 1112. A baffle is provided on the side of the server cover 20 facing the inside of the server. The baffle can pass through the perforation into the housing body 111 and block the signal transmission path of the through-beam sensor. In this case, the open-case detector 10 cannot generate a detection signal. When the cover 20 is opened, the baffle moves with the cover 20, thereby allowing the through-beam sensor to generate a detection signal.
[0112] In some examples, the signal transmission path of the through-beam sensor can extend from the perforation on the first wall 1112 to the outside of the housing body 111.
[0113] In some examples, refer to Figures 2-5 As shown, the housing 110 of the unpacking detector may include a latching member 112. The latching member 112 may be disposed on the second wall 1113.
[0114] In some examples, refer to Figures 2-5 As shown, the fastener 112 may have a fastener 1121.
[0115] In some examples, the fastener 112 may have a fastener 1121, a connecting part 1122, and a movable part 1123;
[0116] In some examples, refer to Figure 2 As shown, the first wall 1112 can be located at the top of the shell body 111 (along... Figure 2 (The end shown in the positive z-axis direction).
[0117] It should be noted that in the embodiments of this application, "top" is only for illustrative purposes. In some examples, when the overall placement orientation of the server changes, the first wall 1112 may also be located at the bottom, left, or right end of the shell body 111, etc.
[0118] In some examples, refer to Figure 2 As shown, the second wall 1113 can be fixedly connected to the first wall 1112 and extend into the interior of the server.
[0119] In some examples, refer to Figure 2 As shown, the snap-fit member 112 can extend on the second wall 1113 from the first wall 1112 toward the bottom end of the shell body 111 (e.g., along...). Figure 2 (Extending in the negative z-axis direction), the buckle 1121 can be located at the bottom, lower end or lower middle section of the shell body 111.
[0120] In some examples, the snap-fit element 112 may be disposed on the bottom wall of the housing body 111. The bottom wall may be a side wall of the housing body 111 opposite to the first wall 1112. For example, at least a portion of the snap-fit element 112 may be along the width direction of the housing body 111 (e.g., Figure 2 (Extended in the direction shown by the x-axis) and protruding from the second wall 1113. The latch 1121 may be provided at the position where the latch 112 protrudes from the second wall 1113.
[0121] In some examples, refer to Figure 2 and Figure 3 As shown, the mounting bracket 30 may be provided with a locking hole 310. The latch 1121 can be configured to pass through the locking hole 310. Thus, referring to... Figure 2 As shown, the buckle 1121 and the clip hole 310 can engage the housing 110 of the unpacking detector to the mounting bracket 30.
[0122] Generally, the housing 110 of the unpacking detector can be provided with a hook 114. The hook 114 can be hung on the top side of the mounting bracket 30. That is, the hook 114 engages with the side of the mounting bracket 30 facing the cover 20, and the buckle 1121 engages with the snap hole 310 on the mounting bracket 30, thereby realizing the installation and fixation of the unpacking detector 10.
[0123] In some examples, for easy removal of the unpacking detector 10 from the mounting bracket 30, refer to Figures 2-5 As shown, the housing 110 of the unpacking detector may include an operating member 113. The operating member 113 is movably disposed on the housing body 111.
[0124] In some examples, the actuating element 113 can be configured to extend from the first wall 1112 toward the latch 1121, through which the latch 1121 can be operated, thereby driving the latch 1121 out of the latch hole 310.
[0125] Figure 6This is an exploded structural diagram of an unpacking detector housing in a computing device provided in some embodiments of this application.
[0126] In some examples, refer to Figure 6 As shown, the operating element 113 can be an independent rigid long needle or long rod-shaped structure. For example, a placement position 1114 can be provided on the housing body 111, and the operating element 113 can be placed in the placement position 1114 when not in use. When it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the operator can remove the operating element 113 from the placement position 1114 and insert the operating element 113 along the side wall of the housing body 111 between the latch 112 and the mounting bracket 30. The operator can then operate the latch 1121 by operating the operating element 113, causing the latch 1121 to disengage from the latch hole 310.
[0127] In some examples, the placement position on the housing 111 can be a recess, a slot, or a groove. When the operating chamber 113 is not in use, the operating element 113 can be placed in the recess or slot.
[0128] In some examples, a magnetic element can be provided on the placement position on the housing body 111, and the operating element 113 can be magnetically attached to the housing body 111. When the operating element 113 needs to be used, the operator can remove the operating element 113 from the housing body 111 to operate the latch 1121.
[0129] In some examples, refer to Figure 6 As shown, when it is necessary to use the operating component 113 to operate the latching component 112, it can be moved along... Figure 6 Remove the operating member 113 in the direction indicated by the middle arrow j, and then insert it into the side of the latching member 112 facing the mounting bracket 30 in the direction indicated by the arrow k. In this way, the operating member 113 can apply a force to the latching member 112 on the side away from the mounting bracket 30, so that the latch 1121 of the latching member 112 moves away from the mounting bracket 30 and exits the latching hole 310.
[0130] In some examples, when it is not necessary to disassemble the unpacking detector, the operating element 113 can move along... Figure 6 Place it in the opposite direction of the direction indicated by the middle arrow j at placement position 1114.
[0131] The unpacking detector housing 110 provided in this application embodiment forms an accommodating space 1111 by the first wall 1112 and the second wall 1113 of the housing body 111, which facilitates the placement of the detector body 120 in the accommodating space 1111, thereby facilitating the installation of the detector body 120 onto the mounting bracket 30; in addition, the detection probe 121 of the detector body 120 faces the first wall 1112, which facilitates the detection probe 121 to detect whether the cover 20 of the computing device (e.g., server) is in place.
[0132] A snap fastener 112 is provided on the second wall 1113, so that after the shell body 111 is installed on the mounting bracket 30, the snap fastener 1121 can pass through the snap hole 310 of the mounting bracket 30, thereby fixing the shell body 111 and the detector body 120 provided in the receiving space 1111.
[0133] In this embodiment, an operating member 113 is movably disposed on the housing body 111. When it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the operating member 113 can move from the direction toward the first wall 1112 and operate the latch 1121 (for example, the operating member 113 can abut against the opening), thereby driving the latch 1121 to exit from the latch hole 310. Thus, when disassembling the unpacking detector 10, the operator only needs to operate the latch 1121 through the operating member 113 at the opening of the computing device to quickly disassemble the unpacking detector 10, without the operator needing to insert their fingers into the side of the housing body 111 opposite to the computing device cover 20 to operate the latch 1121, simplifying the disassembly of the unpacking detector 10 and shortening the replacement and maintenance time of the unpacking detector 10.
[0134] In some examples, refer to Figures 2-4 As shown, the second wall 1113 may include a first sub-wall 1113a and a second sub-wall 1113b. The first sub-wall 1113a is disposed opposite to the first wall 1112, and the second sub-wall 1113b is connected between the first sub-wall 1113a and the first wall 1112.
[0135] In some examples, there may be two second sub-walls 1113b, one of which is fixedly connected to one end of the first wall 1112, and the other is fixedly connected to the other end of the first wall 1112; wherein the two ends of the first wall 1112 extend along the X direction.
[0136] In some examples, refer to Figure 2 As shown, the second sub-wall 1113b can be located on the side of the first wall 1112 facing away from the cover 20. For example, the second sub-wall 1113b can extend into the interior of the server enclosure.
[0137] In some examples, the fastener 112 may be provided on the second sub-wall 1113b. The fastener 112 may be fixedly provided on the second sub-wall 1113b.
[0138] In some examples, the fastener 112 and the shell body 111 can be a single piece. For example, the fastener 112 and the shell body 111 can be integrally injection molded. Alternatively, the fastener 112 and the shell body 111 can be two-color injection molded or two-stage injection molded.
[0139] In some examples, the latch 112 itself can have a certain deformation. When the unpacking detector 10 is installed onto the mounting bracket 30, the mounting bracket 30 abuts against the latch 1121, causing the latch 112 to undergo a certain deformation. When the unpacking detector 10 moves along... Figure 2 When the buckle 1121 moves to the position of the buckle hole 310, the deformation of the buckle 112 is restored, and the buckle 1121 passes through the buckle hole 310, thereby realizing the installation and fixation of the box opening detector 10.
[0140] In some examples, the operating element 113 can be movably mounted on the second wall 1113. In this way, the operating element 113 does not need to occupy space on the first wall 1112. This facilitates the first wall 1112's cooperation with the lid 20 to detect whether the lid 20 is in place.
[0141] In this embodiment, the latching member 112 is disposed on the second wall 1113 of the housing body 111, thus facilitating the connection between the latching member 112 and the housing body 111. Furthermore, the operating member 113 is movably disposed on the second wall 1113. Therefore, when operating the operating member 113, it can directly operate the latching member 1121, improving the convenience of operating the latching member 1121 and saving the disassembly time of the unpacking detector 10.
[0142] In some examples of embodiments of this application, reference continues to be made to... Figures 2-4 As shown, the fastener 112 may include a connecting portion 1122. The connecting portion 1122 may be connected to the second wall 1113.
[0143] In some examples, the connecting part 1122 may be fixedly connected to the second wall 1113.
[0144] In some examples, the connecting part 1122 and the shell body 111 can be a single piece.
[0145] In some examples, refer to Figures 2-4 As shown, the connecting part 1122 can extend from the first wall 1112 toward the inside of the server.
[0146] In some examples, the snap fastener 112 may include a movable portion 1123, which may be connected to the connecting portion 1122. The movable portion 1123 may be located at the end of the connecting portion 1122 away from the first wall 1112.
[0147] Figure 7 This is a rear view of the housing of the unpacking detector provided in some embodiments of this application.
[0148] In some examples, refer to Figure 7As shown, there may be a preset distance between the movable part 1123 and the second wall 1113. That is, the movable part 1123 and the second wall 1113 are not directly connected. The movable part 1123 is connected to the second wall 1113 through the connecting part 1122.
[0149] In some examples, the movable part 1123 and the connecting part 1122 can be a single piece. That is, the movable part 1123 and the connecting part 1122 can be integrally injection molded. After the movable part 1123 and the connecting part 1122 are integrally injection molded, the connecting part 1122 can be connected to the shell body 111, so that the movable part 1123 is connected to the shell body 111 through the connecting part 1122.
[0150] In some examples, since the movable part 1123 is not directly connected to the shell body 111, the movable part 1123 can deform under the force when a force is applied to it, thereby moving relative to the shell body 111.
[0151] In some examples, the latch 1121 may be located on the movable part 1123. Thus, when a force is applied to either the movable part 1123 or the latch 1121, the force can cause the movable part 1123 to deform (e.g., along...). Figures 2-4 The deformation occurs in the positive direction of the y-axis and moves relative to the shell body 111. The movement of the movable part 1123 causes the buckle 1121 to move relative to the second wall 1113, thereby disengaging from the buckle hole 310.
[0152] In some examples, the operating element 113 can be configured to operate the movable part 1123 away from the mounting bracket 30 to move the latch 1121 out of the slot 310.
[0153] In some examples, when it is necessary to remove the unpacking detector 10 from the mounting bracket 30, refer to Figures 2-5 As shown, the operating member 113 can operate the movable part 1123 in the direction shown by the positive y-axis in the figure, so that the movable part 1123 deforms in the direction shown by the positive y-axis. The deformation of the movable part 1123 drives the buckle 1121 to move in the positive y-axis direction, thereby disengaging from the buckle hole 310.
[0154] In this embodiment, the connecting part 1122 is connected to the second wall 1113, facilitating the connection and fixation of the fastener 112 to the second wall 1113. The movable part 1123 is connected to the connecting part 1122, and the fastener 1121 is disposed on the movable part 1123. Thus, when the unpacking detector 10 is installed on the mounting bracket 30, the mounting bracket 30 can apply a force to the fastener 1121 in the positive y-axis direction, causing the movable part 1123 to move away from the mounting bracket 30, thereby facilitating the installation of the unpacking detector 10.
[0155] When it is necessary to move the buckle 1121 to the slot 310, the restoring force of the movable part 1123 is directed in the negative direction of the y-axis and acts on the buckle 1121, so that the buckle 1121 passes through the slot 310, which facilitates the quick installation of the unpacking detector 10.
[0156] When it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the operating member 113 moves along the movable part 1123. Figures 2-5 The operation is performed in the direction indicated by the positive y-axis, causing the movable part 1123 to move away from the mounting bracket 30, thereby driving the buckle 1121 to exit from the buckle hole 310. This facilitates the operation of the operating component 113 on the buckle 1121, making it easier to disassemble the unpacking detector 10 and saving the disassembly time of the unpacking detector 10.
[0157] In some examples, refer to Figures 2-5 As shown, the operating member 113 can be located on the side of the connecting portion 1122 facing the mounting bracket 30. That is, the operating member 113 can be located within the gap between the connecting portion 1122 and the mounting bracket 30.
[0158] In some examples of embodiments of this application, the operating member 113 is provided on the side of the connecting part 1122 facing the mounting bracket 30. In this way, when the operating member 113 operates the buckle 1121, it can push the movable part 1123 away from the mounting bracket 30, which can save the force required to operate the operating member 113 and facilitate the disassembly of the unpacking detector 10.
[0159] In some examples, refer to Figures 2-5 As shown, the operating component 113 is connected to the movable part 1123.
[0160] In some examples, refer to Figure 7 As shown, there may be a preset distance between the operating member 113 and the second wall 1113.
[0161] In some examples, the distance between the operating part 113 and the second wall 1113 can be a first distance. The distance between the movable part 1123 and the second wall 1113 can be a second distance.
[0162] In some examples, the first spacing and the second spacing can be equal, the same, similar, or approximate. It is understood that in some examples of embodiments of this application, the first spacing and the second spacing can also be different. In some examples, the operating member 113 and the movable part 1123 can also be in close contact with the second sub-wall 1113b. In some examples of embodiments of this application, it is only necessary to ensure that the operating member 113 is not fixedly connected to the second wall 1113 so that the operating member 113 can move relative to the second wall 1113.
[0163] Figure 8 This is a right view of the housing of the unpacking detector provided in some embodiments of this application.
[0164] In some examples, refer to Figure 8 As shown, when it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the operator can proceed along... Figure 8 The direction indicated by arrow a in the figure applies a force to the operating member 113. At this time, the operating member 113 moves relative to the second wall 1113 in the direction indicated by arrow a in the figure. The lower end of the operating member 113 is connected to the movable part 1123, thereby driving the movable part 1123 along... Figure 8 The direction indicated by the middle arrow b is relative to the deformation and movement of the second sub-wall 1113b. The movement of the movable part 1123 drives the buckle 1121 to move, thereby disengaging from the locking hole 310.
[0165] In this embodiment, the operating member 113 is connected to the movable part 1123. That is, the operating member 113 moves relative to the shell body 111 via the movable part 1123. Thus, the operating direction of the operating member 113 is the same as the direction of action of the operating member 113 on the movable part 1123, which facilitates operation by the operator and saves the operator's disassembly time of the unpacking detector 10.
[0166] Figure 9 This is another structural schematic diagram of the unpacking detector and mounting bracket provided in some embodiments of this application.
[0167] In some examples, refer to Figure 9 As shown, the second wall 1113 may be provided with a first rotation fulcrum 1131. The operating member 113 may be rotatably connected to the first rotation fulcrum 1131.
[0168] In some examples, refer to Figure 9 As shown, along the extending direction of the operating member 113, the first rotation fulcrum 1131 can be located at the end of the operating member 113 near the latch 1121. That is, the distance between the first rotation fulcrum 1131 and the end of the operating member 113 facing away from the first wall 1112 is less than or equal to the distance between the first rotation fulcrum 1131 and the end of the operating member 113 facing the first wall 1112. Thus, when operating the operating member 113, the lever principle can be used to increase the operating force of the operating member 113 on the movable part 1123, saving the force required from the operator.
[0169] In some examples, the first pivot point 1131 can be a rotation axis. The rotation axis can be fixedly connected to the second sub-wall 1113b. The operating element 113 can be rotatably connected to the rotation axis.
[0170] In some examples, the rotating shaft may be fixedly connected to the operating element 113. The rotating shaft is rotatably connected to the second sub-wall 1113b.
[0171] In this embodiment, by providing a first rotation fulcrum 1131 on the second sub-wall 1113b, the operating member 113 is rotatably connected to the first rotation fulcrum 1131. Thus, when operating the operating member 113, it can rotate relative to the second wall 1113 via the first rotation fulcrum 1131, thereby applying a force to the movable part 1123 in a direction away from the mounting bracket 30 (e.g., along...). Figure 9 The force applied to the movable part 1123 in the direction indicated by the middle arrow d causes the movable part 1123 to drive the latch 1121 out of the latch hole 310. By setting the first rotation fulcrum 1131 on the second sub-wall 1113b, the force required by the operator can be reduced by adjusting the different lever arm lengths of the operating member 113 relative to the first rotation fulcrum 1131. This facilitates the operation of the operating member 113 by the operator.
[0172] In some examples, refer to Figure 9 As shown, when it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the operator can follow... Figure 9 The direction indicated by the middle arrow c applies a force to the operating member 113. The operating member 113 rotates about the first pivot point 1131, and the end of the operating member 113 furthest from the first wall 1112... Figure 9 The direction indicated by the middle arrow d applies a force to the movable part 1123. As a result, the movable part 1123 moves away from the mounting bracket 30, thereby causing the latch 1121 to disengage from the latch hole 310.
[0173] Figure 10 This is a schematic diagram of the structure of an unpacking detector provided in some embodiments of this application.
[0174] In some examples, refer to Figure 10 As shown, the operating member 113 is located on the side of the connecting part 1122 facing away from the mounting bracket 30, and the operating member 113 is connected to the movable part 1123.
[0175] In some examples of embodiments of this application, when the operating member 113 is located on the side of the connecting part 1122 facing away from the mounting bracket 30, the connection relationship between the operating member 113 and the movable part 1123 can be the same, similar or similar to that in the previous embodiments of this application where the operating member 113 is located on the side of the connecting part 1122 facing the mounting bracket 30. For details, please refer to the detailed description of the previous embodiments of this application. This application will not repeat the details in this embodiment.
[0176] In some examples, refer to Figure 10 As shown, when it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the operator can follow... Figure 10 The direction indicated by the middle arrow e applies a force to the operating member 113, and the operating member 113 moves along... Figure 10 The direction indicated by the middle arrow e is translated relative to the second sub-wall 1113b; the end of the operating member 113 away from the first wall 1112 moves along... Figure 10 The movement is indicated by the middle arrow f; the movement of the end of the operating member 113 away from the first wall 1112 drives the movable part 1123 along... Figure 10 The direction indicated by the middle arrow f is deformed, thereby causing the buckle 1121 to exit the card hole 310.
[0177] In this embodiment, the operating member 113 is disposed on the side of the connecting portion 1122 facing away from the mounting bracket 30. In this way, the space on the side of the connecting portion 1122 facing away from the mounting bracket 30 can be used to provide sufficient space for the operating member 113, which facilitates the placement of the operating member 113.
[0178] Figure 11 This is another structural schematic diagram of the unpacking detector and mounting bracket provided in some embodiments of this application. Figure 12 This is another structural schematic diagram of the unpacking detector provided in some embodiments of this application.
[0179] In some examples, refer to Figure 11 and Figure 12 As shown, the second sub-wall 1113b may be provided with a second rotation fulcrum 1132. The operating member 113 may be rotatably connected to the second rotation fulcrum 1132.
[0180] It is understood that in some examples of the embodiments of this application, the setting method of the second rotation fulcrum 1132 may be the same as, similar to or similar to the setting method of the first rotation fulcrum 1131 in the foregoing embodiments of this application. For details, please refer to the detailed description of the first rotation fulcrum 1131 in the foregoing embodiments of this application. This application will not repeat the description in this embodiment.
[0181] In some examples, refer to Figure 11 As shown, when it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the operator can follow... Figure 11 The direction indicated by the middle arrow g applies a force to the operating member 113. At this time, the operating member 113 rotates relative to the second wall 1113 with the second rotation fulcrum 1132. The end of the operating member 113 away from the first wall 1112 drives the movable part 1123 to move away from the mounting bracket 30, thereby causing the buckle 1121 to disengage from the locking hole 310.
[0182] In some examples of embodiments of this application, a second rotation fulcrum 1132 is provided on the second wall 1113, and the operating member 113 is rotatably connected to the second rotation fulcrum 1132. Thus, when it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the operating member 113 can rotate relative to the second wall 1113 via the second rotation fulcrum 1132, causing the end of the operating member 113 away from the first wall 1112 to pull the movable part 1123 away from the mounting bracket 30. The movable part 1123 then causes the latch 1121 to disengage from the latch hole 310. This facilitates the removal of the unpacking detector 10 from the mounting bracket 30.
[0183] In some examples of embodiments of this application, at least a portion of the operating member 113 may protrude from the first wall 1112. This facilitates operation of the operating member 113 by an operator.
[0184] In some examples of embodiments of this application, reference is made to Figures 3-5 As shown, the first wall 1112 may have an opening. The detection probe 121 of the detector body 120 may pass through the opening. That is, the detection probe 121 can extend out of the first wall 1112 from the opening.
[0185] In some examples, the length of the operating element 113 protruding from the first wall 1112 may be less than the trigger stroke of the detection probe 121. This ensures that the detection probe 121 of the detector body 120 can be effectively triggered when the cover 20 of the electronic device is in place, and avoids the operating element 113 from affecting the detection probe 121.
[0186] In some examples, there may be two second sub-walls 1113b. The two second sub-walls 1113b may be disposed opposite each other at both ends of the first wall 1112.
[0187] In some examples, both second sub-walls 1113b may be provided with a snap fastener 112 and an operating element 113. In this way, the box opening detector 10 can be fixed from both sides, which can improve the stability of the box opening detector 10.
[0188] The above examples of embodiments in this application represent improvements made to the housing 110 of the unpacking detector 10 to facilitate removal from the mounting bracket 30. It should be noted that in other examples of embodiments in this application, the mounting bracket 30 may also be improved to facilitate removal from the mounting bracket 30. The mounting bracket 30 of embodiments in this application will now be described in detail with reference to the accompanying drawings of some embodiments.
[0189] Figure 13 This is another structural schematic diagram of the unpacking detector and mounting bracket provided in some embodiments of this application. Figure 14This is another structural schematic diagram of the unpacking detector and mounting bracket provided in some embodiments of this application.
[0190] In some examples of embodiments of this application, reference is made to Figure 13 and Figure 14 As shown, a mounting bracket 30 is provided. The mounting bracket 30 can be a fan bracket for a server.
[0191] In some examples, mounting bracket 30 may include bracket body 301. Bracket body 301 may have mounting positions (not shown) and snap holes 310.
[0192] In some examples, the mounting position is configured to mount the unpacking detector 10. For example, the hook 114 on the housing body 111, which is described in detail in the foregoing embodiments of this application, can be attached to the mounting position.
[0193] In some examples, the slot 310 can be configured to engage with the latch 112 of the unpacking detector 10. For example, the latch 1121 described in detail in the foregoing embodiments of this application can be inserted into the slot 310 to secure the unpacking detector 10.
[0194] In some examples, the mounting position and the card hole 310 may be set in the same, similar or identical way as the relevant prior art, and the embodiments of this application do not limit this.
[0195] In some examples, refer to Figure 13 and Figure 14 As shown, the mounting bracket 30 may include an operating element 113. The operating element 113 may be disposed on the bracket body 301.
[0196] In some examples, the actuating element 113 may be movably connected to the bracket body 301. The actuating element 113 may be configured to extend from the edge of the bracket body 301 toward the latch 310 and actuate the latch 112, thereby driving the latch 1121 out of the latch 310.
[0197] In some examples, the operating element 113 can apply a force to the latch 1121 of the latching element 112 that is opposite to the bracket body 301, causing the latch 1121 to move away from the bracket body 301 and exit the latch hole 310.
[0198] In this embodiment, by providing an installation position and a locking hole 310 on the bracket body 301, the unpacking detector 10 is installed at the installation position, and the locking hole 310 engages with the locking fastener 112 of the unpacking detector 10, which facilitates the fixing of the unpacking detector 10.
[0199] An operating member 113 is provided on the bracket body 301, extending from the edge of the bracket body 301 toward the latching hole 310. Thus, when it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the latching member 112 of the unpacking detector 10 can be operated via the operating member 113. For example, refer to... Figure 13 As shown, the operator can follow... Figure 13 The direction indicated by the middle arrow h is used to operate the operating member 113, with the end of the operating member 113 furthest from the support body 301 facing towards... Figure 13 The direction indicated by the middle arrow i applies a force to the buckle 1121 of the buckle 112. After being subjected to the force, the buckle 1121 moves in the direction indicated by the arrow i and exits the buckle hole 310.
[0200] Thus, when disassembling the unpacking detector 10, the operator only needs to operate the latch 1121 through the operating component 113 at the opening of the electronic device to quickly disassemble the unpacking detector 10. There is no need for the operator to insert their fingers into the side of the unpacking detector 10 facing away from the electronic device cover 20 to operate the latch 1121, which simplifies the disassembly of the unpacking detector 10 and shortens the replacement and maintenance time of the unpacking detector 10.
[0201] In some examples, the operating element 113 may be located on the side of the bracket body 301 facing the unpacking detector 10. When it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the operating element 113 can be operated to push against the movable part 1123 in a direction away from the bracket body 301, thereby causing the latch 1121 to disengage from the latch hole 310.
[0202] In some examples, the operating element 113 may be located on the side of the bracket body 301 facing away from the unpacking detector 10. When it is necessary to remove the unpacking detector 10 from the mounting bracket 30, the operating element 113 can be operated, for example, referring to... Figure 13 As shown, the operator can follow... Figure 13 The direction indicated by the middle arrow h is used to operate the operating member 113, with the end of the operating member 113 furthest from the support body 301 facing towards... Figure 13 The direction indicated by the middle arrow i applies a force to the latch 1121 of the latching member 112. After being subjected to the force, the latch 1121 moves in the direction indicated by arrow i and exits the latching hole 310. The operating member 113 pushes against the latch 1121 in a direction away from the bracket body 301, forcing the latch 1121 to exit the latching hole 310.
[0203] In some examples, the operating element 113 may be a spring-loaded tab on the mounting bracket 30. In some examples, the spring-loaded tab may be a metal spring.
[0204] In some examples, the bracket body 301 may be provided with a third rotation fulcrum (not shown in the figure), and the operating member 113 may be rotatably disposed at the third rotation fulcrum. Thus, when it is necessary to remove the unpacking detector 10 from the mounting bracket 30, it can be operated by manipulating the end of the operating member 113 near the first wall 1112 (e.g., towards...). Figure 13 (Applying force in the direction indicated by the middle arrow h), the operating member 113 rotates around the third rotation fulcrum, and the end of the operating member 113 away from the first wall 1112 pushes against the buckle 1121 in the direction away from the bracket body 301, forcing the buckle 1121 to exit the buckle hole 310.
[0205] By providing a third rotation fulcrum on the mounting bracket 30, the operating member 113 is rotatably mounted at the third rotation fulcrum. This facilitates the movable connection between the operating member 113 and the mounting bracket 30.
[0206] The embodiments described above are merely specific embodiments of this application and are not intended to limit the scope of protection of this application. Any modifications, equivalent substitutions, improvements, etc., made based on the technical solution of this application should be included within the scope of protection of this application.
Claims
1. A casing for an unpacking detector of a computing device, characterized in that, include: The shell body (111) has a first wall (1112) and a second wall (1113), the first wall (1112) and the second wall (1113) together form a receiving space (1111), the receiving space (1111) is used to receive a detector body (120), the detection probe (121) of the detector body (120) is arranged facing the first wall (1112); A snap fastener (112) is provided on the second wall (1113) and has a snap fastener (1121); the snap fastener (1121) is configured to pass through a snap hole (310) in the mounting bracket (30); An operating element (113) is movably disposed on the shell body (111). The operating element (113) is configured to extend from the first wall (1112) toward the latch (1121). The operating element (113) is used to operate the latch (1121) to drive the latch (1121) out of the latch hole (310).
2. The unpacking detector housing of the computing device according to claim 1, characterized in that, The second wall (1113) includes a first sub-wall (1113a) and a second sub-wall (1113b). The first sub-wall (1113a) is disposed opposite to the first wall (1112), and the second sub-wall (1113b) is connected between the first sub-wall (1113a) and the first wall (1112). The operating member (113) is movably disposed on the second sub-wall (1113b).
3. The unpacking detector housing of the computing device according to claim 2, characterized in that, The fastener (112) includes: The connecting part (1122) is fixed to the second sub-wall (1113b); The movable part (1123) is connected to the connecting part (1122), and the movable part (1123) is located at the end of the connecting part (1122) away from the first wall (1112); the buckle (1121) is provided on the movable part (1123); The operating element (113) is used to operate the movable part (1123) to move it away from the mounting bracket (30) so as to drive the buckle (1121) out of the slot (310).
4. The unpacking detector housing of the computing device according to claim 3, characterized in that, The operating element (113) is located on the side of the connecting part (1122) facing the mounting bracket (30).
5. The unpacking detector housing of the computing device according to claim 4, characterized in that, The operating component (113) is connected to the movable part (1123).
6. The unpacking detector housing of the computing device according to claim 4, characterized in that, The second sub-wall (1113b) is provided with a first rotation fulcrum (1131), and the operating member (113) is rotatably connected to the first rotation fulcrum (1131).
7. The unpacking detector housing of the computing device according to any one of claims 1-6, characterized in that, At least a portion of the operating element (113) protrudes from the first wall (1112).
8. The unpacking detector housing of the computing device according to claim 7, characterized in that, The first wall (1112) has an opening, through which the detection probe (121) of the detector body (120) passes, and the length of the operating member (113) protruding from the first wall (1112) is less than the trigger stroke of the detection probe (121).
9. An unpacking detector for a computing device, characterized in that, include: The housing (110) of the unpacking detector according to any one of claims 1-8; The detector body (120) is located in the receiving space (1111) of the unpacking detector housing (110), and the detection probe (121) of the detector body (120) is positioned facing the first wall (1112) of the unpacking detector housing (110).
10. A computing device, characterized in that, include: Chassis; The chassis contains a computing module and a cooling fan; Mounting bracket (30) is provided inside the chassis; the mounting bracket is used to install a cooling fan, which is used to dissipate heat from the computing module; And, the unpacking detector (10) of claim 9, wherein the unpacking detector (10) is disposed on the mounting bracket (30).