Server power supply monitoring module
By using a snap-fit and positioning structure to fix the bottom shell and top cover, the assembly process of the server power monitoring module is simplified, solving the problems of complex structure and large space occupation, and improving installation efficiency and the convenience of device connection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2026-03-06
AI Technical Summary
Existing server power monitoring modules are complex in structure, occupy a large space, and are cumbersome to assemble, affecting installation efficiency.
The bottom shell and top cover are fixed by a snap-fit structure and a positioning structure, and the PCB board and protective cover are fixed by a fixing structure, which simplifies the assembly process and improves installation accuracy and stability.
The structure of the server power monitoring module has been simplified, reducing its footprint and improving the installation efficiency and ease of device connection for operators.
Smart Images

Figure CN223978873U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of equipment module technology, and in particular to a server power monitoring module. Background Technology
[0002] Server power monitoring modules are mainly used as data acquisition units in high-power rack power module systems in the data center market. Existing server power monitoring modules have a relatively complex structure, require a large space, and are cumbersome to assemble, affecting the installation efficiency of operators. Utility Model Content
[0003] The purpose of this utility model is to solve the shortcomings of existing server power monitoring modules, which have a complex structure, require a large space, and have a cumbersome assembly operation, affecting the installation efficiency of operators, and to provide a server power monitoring module.
[0004] The technical solution adopted by this utility model to solve its technical problem is: a server power monitoring module, including a bottom shell, a PCB board fixed on the bottom shell, and a top cover and a protective cover disposed on the PCB board; the bottom shell includes a first snap-fit surface, a first fixing surface, and a first limiting surface formed by bending; the top cover includes a second snap-fit surface, a second fixing surface, a second limiting surface, and a silkscreen surface formed by bending; the first snap-fit surface and the second snap-fit surface have snap-fit structures for snap-fitting and fixing the bottom shell and the top cover, and positioning structures for positioning the bottom shell and the top cover; the PCB board is fixed to the bottom shell by the first fixing structure, and the protective cover is fixed to the PCB board by the second fixing structure. By using a snap-fit structure to snap and fix the first snap-fit surface of the bottom shell and the second snap-fit surface of the top cover, and by using a positioning structure and the bottom of the second limiting surface of the top cover to abut against the top of the first limiting surface of the bottom shell, the assembly position and height between the bottom shell and the top cover can be effectively limited, thereby effectively improving the assembly accuracy and stability between the bottom shell and the top cover. In addition, by using a first fixing structure to fix the PCB board to the bottom shell and a second fixing structure to fix the protective cover to the PCB board, the stability of fixing the PCB board to the bottom shell and the protective cover to the PCB board can be effectively guaranteed, while simplifying the structure of the server power monitoring module, thereby simplifying the assembly operation of the server power monitoring module and improving the installation efficiency of the operator.
[0005] Furthermore, the snap-fit structure comprises several lugs disposed on the second snap-fit surface of the upper cover and several L-shaped snap-fit grooves disposed on the first snap-fit surface for the lugs to be inserted. By inserting the lugs on the second snap-fit surface into the L-shaped snap-fit grooves on the first snap-fit surface, the convenience of the snap-fit fixing operation between the bottom shell and the upper cover can be effectively improved, and the assembly position between the upper cover and the bottom shell can be defined.
[0006] Furthermore, the positioning structure comprises a positioning portion disposed on the second latching surface of the upper cover and located below the hanging ear, and an abutting portion disposed on the first latching surface of the bottom shell and located below the L-shaped latching groove. When the hanging ear on the second latching surface is inserted into the L-shaped latching groove of the first latching surface, and the bent part of the hanging ear abuts against the inner wall of the horizontal section of the L-shaped latching groove, the positioning portion on the second latching surface of the upper cover abuts against the abutting portion on the first latching surface of the bottom shell, thereby further defining the assembly position between the upper cover and the bottom shell, ensuring the assembly accuracy and stability between the upper cover and the bottom shell.
[0007] Furthermore, the positioning portion of the upper cover abuts against the abutting portion of the bottom shell, and the bottom of the second limiting surface of the upper cover abuts against the top of the first limiting surface of the bottom shell, thereby limiting the height of the upper cover mounted on the bottom shell. By abutting the positioning portion of the upper cover against the abutting portion of the bottom shell, and abutting the bottom of the second limiting surface of the upper cover against the top of the first limiting surface of the bottom shell, the assembly position between the upper cover and the bottom shell can be effectively limited, while further limiting the assembly height between the upper cover and the bottom shell. This effectively limits the overall height of the server power monitoring module, further simplifies the structure of the server power monitoring module, and reduces the space required.
[0008] Furthermore, the first fixing surface of the bottom shell has a plurality of first fixing holes, and the second fixing surface of the top cover has a plurality of second fixing holes. A plurality of first locking members pass through the second fixing holes and are locked in the first fixing holes, thereby fixing the top cover to the bottom shell. By abutting the positioning part of the top cover with the abutting part of the bottom shell, and abutting the bottom of the second limiting surface of the top cover with the top of the first limiting surface of the bottom shell, the assembly position and assembly height between the top cover and the bottom shell can be effectively limited, while ensuring the concentricity between the first fixing holes and the second fixing holes, thus ensuring the assembly accuracy between the top cover and the bottom shell. By using first locking members such as bolts, studs, and pins to pass through the second fixing holes and be locked in the first fixing holes, the stability of the fixed connection between the bottom shell and the top cover can be effectively guaranteed.
[0009] Furthermore, the first fixing structure comprises a plurality of first fixing posts disposed on the bottom shell and a plurality of second locking members passing through the PCB board and locked within the first fixing posts. By utilizing second locking members such as spring-loaded flat washer screws to pass through the PCB board and lock them within the first fixing posts of the bottom shell, the stability of the PCB board mounted on the bottom shell can be effectively ensured.
[0010] Furthermore, the second fixing structure comprises several second fixing posts disposed on the bottom shell, several spacer posts for supporting the protective cover, and several third locking members passing through the protective cover and locked within the spacer posts. By using bolts, studs, and pins, etc., to pass through the spacer posts, the stability of the protective cover installed on the spacer posts can be effectively improved. Furthermore, by using the spacer posts to support the protective cover, the stability of the protective cover installed on the PCB can be further improved, while also further limiting the overall height of the server power monitoring module, simplifying the structure of the server power monitoring module, and reducing the space required.
[0011] Furthermore, the spacer includes an external thread for threaded connection with the second fixed post and an internal thread for threaded connection with the third locking element. By threading the external thread of the spacer to the second fixed post, the stability of the spacer installed within the second fixed post can be effectively ensured. Furthermore, by connecting the third locking elements, such as bolts, studs, and pins, to the spacer via their internal threads, the stability of the third locking elements locked within the spacer can be effectively ensured, thereby further guaranteeing the stability of the protective cover mounted on the PCB board.
[0012] Furthermore, the screen-printed surface of the upper cover has several screen-printed portions formed by bending. By forming these screen-printed portions on the upper cover's screen-printed surface, the screen-printed area can be effectively increased, thereby increasing the size of the screen-printed font, improving the convenience of screen-printing operations, and enhancing the ease of use for operators.
[0013] Furthermore, the first snap-fit surface of the bottom shell also has a spring-loaded latch for connecting to external devices, and a plastic handle glove is provided on the spring-loaded latch. By using the spring-loaded latch to connect the server power monitoring module to external devices, the convenience and stability of connecting the server power monitoring module to external devices can be effectively improved, and the plastic handle glove on the spring-loaded latch can effectively improve the safety and convenience of the operator during operation.
[0014] The beneficial effects of the server power monitoring module provided by this utility model are as follows: By using a snap-fit structure to snap and fix the first snap-fit surface of the bottom shell and the second snap-fit surface of the top cover, and by using a positioning structure and the bottom of the second limiting surface of the top cover to abut against the top of the first limiting surface of the bottom shell, the assembly position and height between the bottom shell and the top cover can be effectively limited, thereby effectively improving the assembly accuracy and stability between the bottom shell and the top cover; In addition, by using a first fixing structure to fix the PCB board to the bottom shell and using a second fixing structure to fix the protective cover to the PCB board, the stability of fixing the PCB board to the bottom shell and the protective cover to the PCB board can be effectively guaranteed, while effectively simplifying the structure of the server power monitoring module, thereby simplifying the assembly operation of the server power monitoring module and improving the installation efficiency of the operator. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the server power monitoring module provided by this utility model.
[0016] Figure 2 An exploded view of the server power monitoring module provided by this utility model;
[0017] Figure 3 This is an assembly diagram of the upper cover and bottom shell of the server power monitoring module provided by this utility model.
[0018] Figure 4 This is a schematic diagram of the bottom shell structure of the server power monitoring module provided by this utility model.
[0019] Figure 5 This is a schematic diagram of the structure of the upper cover in the server power monitoring module provided by this utility model.
[0020] In the picture:
[0021] 100-Server Power Monitoring Module
[0022] 10-Bottom shell, 11-First insert surface, 111-L-shaped insert groove, 112-Abutting part, 12-First limiting surface,
[0023] 13-First fixing surface, 14-First fixing post, 15-Second fixing post, 20-Top cover
[0024] 21-Second insert surface, 211-Hook ear, 212-Positioning part, 22-Second limiting surface, 23-Second fixing surface,
[0025] 24-Silk screen printing surface, 241-Silk screen printing section, 25-First locking component, 30-PCB board, 31-Second locking component
[0026] 40-Protective cover, 41-Spacer post, 42-Third locking element, 50-Spring clip lock. Detailed Implementation
[0027] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0028] See Figure 1-5 This utility model provides a server power monitoring module 100, which includes a bottom shell 10, a PCB board 30 fixed on the bottom shell 10, and a top cover 20 and a protective cover 40 disposed on the PCB board 30. The bottom shell 10 includes a first snap-fit surface 11, a first fixing surface 13, and a first limiting surface 12 formed by bending. The top cover 20 includes a second snap-fit surface 21, a second fixing surface 23, a second limiting surface 22, and a silkscreen surface 24 formed by bending. The first snap-fit surface 11 and the second snap-fit surface 21 have snap-fit structures for snap-fitting and fixing the bottom shell 10 and the top cover 20, and positioning structures for positioning the bottom shell 10 and the top cover 20. The PCB board 30 is fixed to the bottom shell 10 by the first fixing structure, and the protective cover 40 is fixed to the PCB board 30 by the second fixing structure. The server power monitoring module 100 provided by this utility model uses a snap-fit structure to snap-fit and fix the first snap-fit surface 11 of the bottom shell 10 and the second snap-fit surface 21 of the top cover 20. Furthermore, by utilizing a positioning structure and the bottom of the second limiting surface 22 of the top cover 20 abutting against the top of the first limiting surface 12 of the bottom shell 10, the assembly position and height between the bottom shell 10 and the top cover 20 can be effectively limited, thereby effectively improving the assembly accuracy and stability between the bottom shell 10 and the top cover 20. In addition, by using a first fixing structure to fix the PCB board 30 to the bottom shell 10 and a second fixing structure to fix the protective cover 40 to the PCB board 30, the stability of fixing the PCB board 30 to the bottom shell 10 and the protective cover 40 to the PCB board 30 can be effectively ensured, while simultaneously simplifying the structure of the server power monitoring module 100, thereby simplifying the assembly operation of the server power monitoring module 100 and improving the installation efficiency of operators.
[0029] like Figure 2 and Figure 3As shown, the snap-fit structure provided by this utility model consists of multiple lugs 211 disposed on the second snap-fit surface 21 of the upper cover 20 and multiple L-shaped snap-fit grooves 111 disposed on the first snap-fit surface 11 for the lugs 211 to be inserted. The L-shaped snap-fit groove 111 includes a vertical section and a horizontal section that are perpendicular to each other. During installation, the lugs 211 are first inserted into the L-shaped snap-fit groove 111 through the vertical section, and then the bent part of the lugs 211 abuts against the inner wall of the horizontal section of the L-shaped snap-fit groove 111, thereby realizing the operation of snapping the lugs 211 on the second snap-fit surface 21 into the L-shaped snap-fit groove 111 of the first snap-fit surface 11. This effectively improves the convenience of the snap-fit fixing operation between the bottom shell 10 and the upper cover 20, and limits the assembly position between the upper cover 20 and the bottom shell 10.
[0030] like Figure 2 and Figure 3 As shown, in the embodiment provided by this utility model, the positioning structure consists of a positioning part 212 disposed on the second snap-fit surface 21 of the upper cover 20 and located below the hook 211, and an abutment part 112 disposed on the first snap-fit surface 11 of the bottom shell 10 and located below the L-shaped snap-fit groove 111. When the hook 211 on the second snap-fit surface 21 is inserted into the L-shaped snap-fit groove 111 of the first snap-fit surface 11, and the bent part of the hook 211 abuts against the inner wall of the horizontal section of the L-shaped snap-fit groove 111, the positioning part 212 on the second snap-fit surface 21 of the upper cover 20 abuts against the abutment part 112 on the first snap-fit surface 11 of the bottom shell 10, thereby further defining the assembly position between the upper cover 20 and the bottom shell 10, and ensuring the assembly accuracy and stability between the upper cover 20 and the bottom shell 10. The positioning portion 212 of the upper cover 20 abuts against the abutting portion 112 of the bottom shell 10, and the bottom of the second limiting surface 22 of the upper cover 20 abuts against the top of the first limiting surface 12 of the bottom shell 10, thereby limiting the height of the upper cover 20 assembled on the bottom shell 10. By abutting the positioning portion 212 of the upper cover 20 against the abutting portion 112 of the bottom shell 10, and abutting the bottom of the second limiting surface 22 of the upper cover 20 against the top of the first limiting surface 12 of the bottom shell 10, the assembly position between the upper cover 20 and the bottom shell 10 can be effectively limited, while further limiting the assembly height between the upper cover 20 and the bottom shell 10. This effectively limits the overall height of the server power monitoring module 100, further simplifies the structure of the server power monitoring module 100, and reduces the space required.
[0031] like Figure 2 and Figure 4As shown, in the embodiment provided by this utility model, the first fixing structure consists of multiple first fixing posts 14 disposed on the bottom shell 10 and multiple second locking members 31 passing through the PCB board and locked within the first fixing posts 14. By using spring-loaded flat washer screws and other second locking members 31 to pass through the PCB board and lock within the first fixing posts 14 of the bottom shell 10, the stability of the PCB board 30 mounted on the bottom shell 10 can be effectively ensured. The second fixing structure consists of multiple second fixing posts 15 disposed on the bottom shell 10, multiple spacer posts 41 for supporting the protective cover 40, and multiple third locking members 42 passing through the protective cover 40 and locked within the spacer posts 41. By using bolts, studs, and pins and other third locking members 42 to pass through the spacer posts 41, the stability of the protective cover 40 mounted on the spacer posts 41 can be effectively improved. By using the spacer posts 41 to support the protective cover 40, the stability of the protective cover 40 mounted on the PCB can be further improved, while further limiting the overall height of the server power monitoring module 100, simplifying the structure of the server power monitoring module 100, and reducing the space required. Furthermore, the spacer post 41 includes an external thread for threaded connection with the second fixed post 15 and an internal thread for threaded connection with the third locking member 42. By threading the external thread of the spacer post 41 to the second fixed post 15, the stability of the spacer post 41 installed within the second fixed post 15 can be effectively ensured. Furthermore, by connecting the third locking member 42, such as bolts, studs, and pins, to the spacer post 41 via its internal thread, the stability of the third locking member locked within the spacer post 41 can be effectively ensured, thereby further guaranteeing the stability of the protective cover 40 installed on the PCB board 30.
[0032] like Figure 3 and Figure 4 As shown, the first fixing surface 13 of the bottom shell 10 provided by this utility model has a plurality of first fixing holes, and the second fixing surface 23 of the top cover 20 has a plurality of second fixing holes. A plurality of first locking members pass through the second fixing holes and are locked in the first fixing holes, so that the top cover 20 and the bottom shell 10 are fixedly connected. By abutting the positioning part 212 of the upper cover 20 with the abutting part 112 of the bottom shell 10, and abutting the bottom of the second limiting surface 22 of the upper cover 20 with the top of the first limiting surface 12 of the bottom shell 10, the assembly position and assembly height between the upper cover 20 and the bottom shell 10 can be effectively limited, while ensuring the concentricity between the first fixing hole and the second fixing hole, and ensuring the assembly accuracy between the upper cover 20 and the bottom shell 10. By using bolts, studs and pins and other first locking elements to pass through the second fixing hole and lock them in the first fixing hole, the stability of the fixed connection between the bottom shell 10 and the upper cover 20 can be effectively guaranteed, while the assembly operation can be achieved by the fastening and interlocking structure of the upper cover 20 and the bottom shell 10 through the first locking element.
[0033] like Figure 5As shown, the upper cover 20 provided by this utility model has multiple screen printing portions 241 formed by bending on its screen printing surface 24. By bending the screen printing portions 241 on the screen printing surface 24 of the upper cover 20, the area of the screen printing surface 24 can be effectively increased, thereby increasing the size of the screen printing font, improving the convenience of screen printing operation, and enhancing the ease of use for the operator. Furthermore, as... Figure 1 As shown, the first latching surface 11 of the bottom shell 10 also has a spring-loaded latch 50 for connecting to external devices, and a plastic handle glove is provided on the spring-loaded latch 50. By using the spring-loaded latch 50 to connect the server power monitoring module 100 to external devices, the convenience and stability of connecting the server power monitoring module 100 to external devices can be effectively improved, and the plastic handle glove provided on the spring-loaded latch 50 can effectively improve the safety and convenience of the operator during operation.
[0034] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A server power monitoring module, comprising: The bottom shell (10), the PCB board (30) fixed on the bottom shell (10), and the upper cover (20) and the protective cover (40) arranged on the PCB board (30); The bottom shell (10) comprises a first clamping surface (11) formed by bending, a first fixing surface (13), and a first limiting surface (12); the upper cover (20) comprises a second clamping surface (21) formed by bending, a second fixing surface (23), a second limiting surface (22), and a silk screen surface (24); the first clamping surface (11) and the second clamping surface (21) are provided with clamping structures for clamping and fixing the bottom shell (10) and the upper cover (20), and positioning structures for positioning the bottom shell (10) and the upper cover (20); the PCB board (30) is fixed on the bottom shell (10) through a first fixing structure; and the protective cover (40) is fixed on the PCB board (30) through a second fixing structure.
2. A server power monitoring module as claimed in claim 1, wherein, The clamping structures are a plurality of hanging ears (211) arranged on the second clamping surface (21) of the upper cover (20) and a plurality of L-shaped clamping grooves (111) arranged on the first clamping surface (11) of the bottom shell (10) and used for embedding the hanging ears (211).
3. A server power monitoring module as claimed in claim 2, wherein, The positioning structures are a positioning portion (212) arranged on the second clamping surface (21) of the upper cover (20) and located below the hanging ears (211), and an abutting portion (112) arranged on the first clamping surface (11) of the bottom shell (10) and located below the L-shaped clamping grooves (111).
4. A server power monitoring module as claimed in claim 3, wherein, The positioning portion (212) of the upper cover (20) abuts against the abutting portion (112) of the bottom shell (10), and the bottom of the second limiting surface (22) of the upper cover (20) abuts against the top of the first limiting surface (12) of the bottom shell (10), so as to limit the height of the upper cover (20) assembled on the bottom shell (10).
5. A server power monitoring module as claimed in claim 1, wherein, The first fixing surface (13) of the bottom shell (10) is provided with a plurality of first fixing holes, the second fixing surface (23) of the upper cover (20) is provided with a plurality of second fixing holes, a plurality of first locking members (25) pass through the second fixing holes and are locked in the first fixing holes, so that the upper cover (20) and the bottom shell (10) are fixedly connected.
6. A server power monitoring module as claimed in claim 1, wherein, The first fixing structure comprises a plurality of first fixing columns (14) arranged on the bottom shell (10) and a plurality of second locking members (31) passing through the PCB board (30) and locked in the first fixing columns (14).
7. A server power monitoring module as claimed in claim 1, wherein, The second fixing structure comprises a plurality of second fixing columns (15) arranged on the bottom shell (10), a plurality of spacing columns (41) for supporting the protective cover (40), and a plurality of third locking members (42) passing through the protective cover (40) and locked in the spacing columns (41).
8. A server power monitoring module as claimed in claim 7, wherein, The spacing column (41) comprises an external thread for threadedly connecting with the second fixing column (15) and an internal thread for threadedly connecting with the third locking member (42). The spacing column (41) comprises an external thread for threadedly connecting with the second fixing column (15) and an internal thread for threadedly connecting with the third locking member (42).
9. A server power monitoring module as claimed in claim 1, wherein, The silk screen surface (24) of the upper cover (20) has several silk screen parts (241) formed by bending.
10. A server power monitoring module as claimed in claim 1, wherein, The first clamping surface (11) of the bottom shell (10) further has a spring lock (50) for connecting with external equipment, and the spring lock (50) is provided with a plastic handle cover.