GGD cabinet with reinforcing ribs
By introducing reinforcing structures such as side solid structures, unloading rods and cross bars into the GGD cabinet, the problem of insufficient strength of the GGD cabinet front door under multiple impacts was solved, and stronger pressure resistance and convenience of position adjustment were achieved.
Patent Information
- Application Number
- CN202422527579.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-18
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2034-10-18
AI Technical Summary
The front door of the existing GGD cabinet is not strong enough at the connection with the cabinet body under multiple impacts, and the existing technology for improving the strength of the front door needs to be improved.
A reinforced structure is adopted, including side solid structure, load-reducing rod, cross bar and front solid structure. Through the mutual contact and cooperation of these components, the impact force on the cabinet door is shared, thereby improving the solidity of the cabinet door and cabinet body.
The compression resistance of the connection between the cabinet door and the cabinet body is enhanced, the sturdiness of the device is improved, and the position of the crossbar and the front solid structure is easily and quickly adjusted to meet the needs of more users.
Smart Images

Figure CN223402089U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of GGD cabinets, and in particular relates to a GGD cabinet with reinforcing ribs. Background Art
[0002] GGD cabinet, full name is GGD type AC low-voltage distribution cabinet, is a low-voltage switch cabinet with its own unique cabinet body.
[0003] The prior art (publication number: CN217134977U) discloses a GGD cabinet with reinforcing ribs, comprising a cabinet, wherein movable wheels are circumferentially arranged at the lower portion of the cabinet, and reinforcing ribs are arranged on the inner wall of the cabinet, and the reinforcing ribs are transverse reinforcing ribs and longitudinal reinforcing ribs.
[0004] The existing technology improves the sturdiness of the entire device by installing multiple longitudinal and transverse reinforcing ribs on the front door of the device. Although the existing technology can improve the sturdiness of the front door of the entire device, when the front door of the existing technology is subjected to multiple impacts, the connection between the front door and the cabinet body cannot withstand it, because the existing technology only increases the sturdiness of the front door body. Therefore, the method of improving the sturdiness of the device in the existing technology needs to be improved.
[0005] In view of this, the present utility model is proposed. Utility Model Content
[0006] In order to solve the shortcomings of the above-mentioned prior art, the basic concept of the technical solution adopted by the present invention is:
[0007] A GGD cabinet with reinforcement ribs, comprising:
[0008] The cabinet body is a hollow rectangular box with an open front wall. The front wall of the cabinet body is rotatably connected to a cabinet door, which can cover the opening of the cabinet front wall. The cabinet door can be rotated with one side of the cabinet front wall as the center of the circle;
[0009] The reinforcement structure can improve the sturdiness of the cabinet body and cabinet doors. The reinforcement structure includes: side solid structure, unloading rod, cross bar and front solid structure. The side solid structure is symmetrically fixedly connected on both sides of the cabinet cavity, the unloading rod is symmetrically fixedly connected on both sides of the rear wall of the cabinet door, the cross bar is movably connected between the symmetrical unloading rods, and the front solid structure is movably connected to the wall of the cross bar. The rear wall of the symmetrical unloading rod can contact the front wall of the side solid structure, and the front wall of the cross bar and the front solid structure can contact the rear wall of the cabinet door.
[0010] As a preferred embodiment of the present invention, the side solid structure consists of a rectangular frame and an X-shaped rod inside the rectangular frame. The size of the side solid structure is consistent with the inner wall surface of the cabinet cavity. A rectangular slot is provided on the front wall surface of the side solid structure. The length of the unloading rod is consistent with the height of the side solid structure.
[0011] As a preferred embodiment of the present invention, a plurality of cross bars are evenly arranged between the symmetrical unloading bars, and the front solid structure is composed of a rectangular frame and an X-shaped bar in the rectangular frame. The front solid structure is respectively arranged between each upper and lower adjacent cross bars.
[0012] As a preferred embodiment of the present invention, the reinforcement structure also includes an adjustment groove, a limiting groove, and a locking groove. The adjustment groove is opened on the side wall surface of each unloading rod facing the other unloading rod, the adjustment groove is a rectangular groove, the limiting groove is opened on the rear wall surface of each unloading rod, and the locking groove is also opened on the rear wall surface of each unloading rod. The locking groove is a semi-capsule-shaped groove, and the locking groove evenly opens multiple identical locking grooves on the wall surface of the unloading rod. Each locking groove can be connected to the limiting groove, and the limiting groove can be connected to the adjustment groove.
[0013] As a preferred embodiment of the present invention, the reinforcement structure also includes a connecting block, a spring groove, a return plate, a limit block and a shift block. The connecting block is slidably connected in the adjustment groove, the spring groove is opened on the side wall of the connecting block, the return plate is elastically connected in the spring groove through a spring, the limit block is fixedly connected to the rear wall of the return plate, the shift block is fixedly connected to the rear wall of the limit block, and the rear wall of the connecting block is also opened with a rectangular groove.
[0014] As a preferred embodiment of the present invention, the adjustment groove can be adapted to the connecting block, the side wall surface of the connecting block and the side wall surface of the cross bar are fixedly connected, the spring groove is a convex groove, the spring groove can be adapted to the sliding of the return plate, the limit block is a semi-capsule-shaped block, the locking groove can be adapted to the size of the limit block, the shift block can slide in the rectangular groove on the rear wall of the connecting block, and the limit groove can be adapted to the vertical sliding of the limit block.
[0015] As a preferred embodiment of the present invention, the reinforcing structure also includes a snap groove, a rotating block and a snap block. The snap groove is symmetrically opened on the upper and lower walls of the cross bar, the rotating block is rotatably connected to the rear wall of the cross bar, and the snap block is symmetrically fixed on both sides of the upper and lower walls of the front solid structure.
[0016] As a preferred embodiment of the present invention, the snap block can enter the snap groove, the snap groove can adapt to the size of the snap block, the symmetrical snap grooves on each wall of the cross bar can adapt to the size of the symmetrical snap blocks on each wall of the front solid structure, the snap block is a rectangular block, and the rotating block is rotatably connected between the upper and lower symmetrical snap grooves on the rear wall of the cross bar.
[0017] Compared with the prior art, the present invention has the following beneficial effects:
[0018] 1. By setting up a reinforcement structure, the impact force applied to the cabinet door can be distributed and released. The reinforcement structure can distribute the impact force applied to the cabinet door through the mutually contacting side solid structures, unloading rods, cross bars and front solid structures, thereby improving the solidity of the cabinet door and the cabinet body. In addition, due to the interference of the side solid structures, the connection between the cabinet door and the cabinet body has stronger compressive resistance when subjected to multiple impacts. Therefore, compared with the existing technology, this solution has stronger solidity and compressive resistance.
[0019] 2. By setting up the cross bar and the front solid structure that can be adjusted in position, the scope of application of the device can be improved. While meeting the needs of more users, it can also be faster and more accurate when adjusting the position of the cross bar and the front solid structure, effectively reducing the time required to adjust the position of the cross bar and the front solid structure.
[0020] The specific implementation of the present invention will be described in further detail below with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In the attached figure:
[0022] Figure 1 It is a three-dimensional diagram of the utility model;
[0023] Figure 2 This is a rear perspective view of the cabinet of the utility model;
[0024] Figure 3 This is a schematic diagram of the decomposition of the structure inside the adjustment tank of the utility model;
[0025] Figure 4 This is an exploded schematic diagram of the front solid structure and crossbar of the present invention;
[0026] Figure 5 This is an exploded schematic diagram of the cross bar and the rotating block of the utility model.
[0027] In the figure: 20, cabinet body; 21, cabinet door; 30, side solid structure; 31, unloading rod; 32, adjustment slot; 33, limit slot; 34, locking slot; 35, connecting block; 36, spring slot; 37, return plate; 38, limit block; 39, shift block; 40, cross bar; 41, buckle slot; 42, rotating block; 43, front solid structure; 44, buckle block. DETAILED DESCRIPTION
[0028] In order to make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. The following embodiments are used to illustrate the present invention.
[0029] like Figure 1 and Figure 2As shown, a GGD cabinet with reinforcing ribs, a cabinet body 20, the cabinet body 20 is a hollow rectangular box with an open front wall, the front wall of the cabinet body 20 is rotatably connected to a cabinet door 21, the cabinet door 21 can cover the opening of the front wall of the cabinet body 20, and the cabinet door 21 can be flipped with one side of the front wall of the cabinet body 20 as the center of the circle. A circuit structure is installed in the cavity of the cabinet body 20. This is an existing technology and will not be described here.
[0030] like Figure 2 、 Figure 3 、 Figure 4 and Figure 5 As shown, the reinforcement structure can improve the firmness of the cabinet body 20 and the cabinet door 21. The reinforcement structure includes: a side solid structure 30, a unloading rod 31, a cross bar 40 and a front solid structure 43. The side solid structure 30 is symmetrically fixedly connected on both sides of the cavity of the cabinet body 20, the unloading rod 31 is symmetrically fixedly connected on both sides of the rear wall of the cabinet door 21, the cross bar 40 is movably connected between the symmetrical unloading rods 31, and the front solid structure 43 is movably connected to the wall of the cross bar 40. The rear wall of the symmetrical unloading rod 31 can contact the front wall of the side solid structure 30, and the front wall of the cross bar 40 and the front solid structure 43 can contact the rear wall of the cabinet door 21.
[0031] like Figure 2 、 Figure 3 、 Figure 4 and Figure 5 As shown, the side solid structure 30 is composed of a rectangular frame and an X-shaped rod in the rectangular frame. The size of the side solid structure 30 is consistent with the inner wall of the cabinet 20 cavity. A rectangular notch is opened on the front wall of the side solid structure 30. The length of the unloading rod 31 is consistent with the height of the side solid structure 30. A plurality of cross bars 40 are evenly arranged between the symmetrical unloading rods 31. The front solid structure 43 is composed of a rectangular frame and an X-shaped rod in the rectangular frame. The front solid structure 43 is respectively arranged between each upper and lower adjacent cross bars 40. The reinforcement structure also includes an adjustment slot 32, limiting groove 33, locking groove 34, the adjustment groove 32 is provided on the side wall surface of each unloading rod 31 facing the other unloading rod 31, the adjustment groove 32 is a rectangular groove, the limiting groove 33 is provided on the rear wall surface of each unloading rod 31, and the locking groove 34 is also provided on the rear wall surface of each unloading rod 31, and the locking groove 34 is a semi-capsule-shaped groove. The locking groove 34 evenly provides multiple identical locking grooves 34 on the wall surface of the unloading rod 31, each locking groove 34 can be connected to the limiting groove 33, and the limiting groove 33 can be connected to the adjustment groove 32;
[0032] When in use, the cabinet door 21 is flipped along one side of the front wall of the cabinet body 20 and the opening of the front wall of the cabinet body 20 is blocked. The unloading rod 31 can block the front wall of the cabinet body 20 through the cabinet door 21, thereby contacting the front wall of the side solid structure 30 at each side symmetrical position. At this time, the shift block 39 will be in the rectangular notch of the front wall of the side solid structure 30. When the cabinet door 21 is subjected to an impact force, the unloading rod 31 will also be subjected to the impact force, and the front wall of the side solid structure 30 will contact the rear wall of the unloading rod 31, thereby simultaneously sharing the force received by the unloading rod 31. When the cabinet door 21 is subjected to an impact force, the cross bar 40 and the front solid structure 43 will also be subjected to the impact force at the same time. The cross bar 40 and the front solid structure 43 can share the impact force received to the unloading rod 31, and the unloading rod 31 can share the impact force received to the side solid structure 30;
[0033] To sum up, by setting up a reinforcement structure, the impact force received by the cabinet door 21 can be distributed and released. The reinforcement structure can distribute the impact force received by the cabinet door 21 through the mutually contacting side solid structure 30, the unloading rod 31, the cross bar 40 and the front solid structure 43, thereby improving the solidity of the cabinet door 21 and the cabinet body 20. Moreover, due to the interference of the side solid structure 30, the connection between the cabinet door 21 and the cabinet body 20 has stronger compressive resistance when subjected to multiple impacts. Therefore, compared with the existing technology, this solution has stronger solidity and compressive resistance.
[0034] like Figure 2 、 Figure 3 、 Figure 4 and Figure 5As shown, the reinforcement structure also includes a connecting block 35, a spring groove 36, a return plate 37, a limit block 38 and a dial block 39. The connecting block 35 is slidably connected to the adjustment groove 32. The spring groove 36 is provided on the side wall of the connecting block 35. The return plate 37 is elastically connected to the spring groove 36 by a spring. The limit block 38 is fixedly connected to the rear wall of the return plate 37. The dial block 39 is fixedly connected to the rear wall of the limit block 38. The rear wall of the connecting block 35 is also provided with a rectangular groove. The adjustment groove 32 can adapt to the connecting block 35. The side wall of the connecting block 35 and the side wall of the cross bar 40 are fixedly connected. The spring groove 36 is a convex groove. The spring groove 36 can adapt to the sliding of the return plate 37. The limit block 38 is a semi-capsule-shaped block. The locking groove 34 can adapt to the size of the limit block 38. The dial block 39 can be connected to the connecting block 35. The block 35 slides in the rectangular groove on the rear wall, and the limit groove 33 can adapt to the vertical sliding of the limit block 38. The reinforcement structure also includes a snap groove 41, a rotating block 42 and a snap block 44. The snap groove 41 is symmetrically opened on the upper and lower walls of the cross bar 40, and the rotating block 42 is rotatably connected to the rear wall of the cross bar 40. The snap blocks 44 are symmetrically fixed on both sides of the upper and lower walls of the front solid structure 43. The snap blocks 44 can enter the snap groove 41. The snap groove 41 can adapt to the size of the snap block 44. The symmetrical snap grooves 41 on each wall of the cross bar 40 can adapt to the size of the symmetrical snap blocks 44 on each wall of the front solid structure 43. The snap block 44 is a rectangular block, and the rotating block 42 is rotatably connected between the snap grooves 41 symmetrical in the upper and lower walls of the rear wall of the cross bar 40;
[0035] In actual use, when it is necessary to adjust the position of the cross bar 40 and the front solid structure 43 between the symmetrical unloading rods 31, first, the symmetrical shifting blocks 39 are shifted toward their respective corresponding sides. The shifting blocks 39 can slide in the rectangular grooves of the connecting blocks 35, so that the shifting blocks 39 drive the limit blocks 38 to slide from the locking grooves 34 to the limit grooves 33. At this time, the cross bar 40 is slid up and down along the rear wall of the cabinet door 21. After the cross bar 40 slides to the desired position, the shifting blocks 39 are released. At this time, the springs in the spring grooves 36 can move the return plates 37 toward the other side. When the connecting block 35 is pushed in the direction of each other, the return plate 37 can drive the limit block 38 to enter the locking groove 34 at the corresponding position, thereby fixing the position of the cross bar 40. When the front solid structure 43 is installed, the rotating block 42 is rotated until it no longer blocks the buckle groove 41. Then, the buckle block 44 on the wall of the front solid structure 43 can be snapped into each corresponding buckle groove 41. Then, the rotating block 42 is rotated to block the buckle groove 41. At this time, the position of the front solid structure 43 will be snapped between each upper and lower adjacent cross bars 40 to complete the fixation.
[0036] To sum up, by setting up the cross bar 40 and the front solid structure 43 that can adjust the position, the applicability of the device can be improved. While meeting the needs of more users, it can also make the position of the cross bar 40 and the front solid structure 43 more rapid and accurate, effectively reducing the time required to adjust the position of the cross bar 40 and the front solid structure 43.
[0037] Working principle: After the cabinet door 21 is flipped along one side of the front wall of the cabinet body 20 and the opening of the front wall of the cabinet body 20 is blocked, the unloading rod 31 can block the front wall of the cabinet body 20 through the cabinet door 21, thereby contacting the front wall of the side solid structure 30 at a symmetrical position on each side. At this time, the shift block 39 will be in the rectangular groove of the front wall of the side solid structure 30. When the cabinet door 21 is subjected to impact force, the unloading rod 31 will also be subjected to impact force. The front wall of the side solid structure 30 will resist the rear wall of the unloading rod 31, thereby sharing the force received by the unloading rod 31 at the same time. When the cabinet door 21 is subjected to impact force, the cross bar 40 and the front solid structure 43 will also be subjected to impact force at the same time. The cross bar 40 and the front solid structure 43 can share the impact force received to the unloading rod 31, and the unloading rod 31 can share the impact force received to the side solid structure 30.
[0038] It is understood that the present invention is described by way of certain embodiments, and those skilled in the art will appreciate that various changes or equivalent substitutions may be made to these features and embodiments without departing from the spirit and scope of the present invention. Furthermore, under the guidance of the present invention, these features and embodiments may be modified to suit specific circumstances and materials without departing from the spirit and scope of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application are intended to be protected by the present invention.
Claims
1. A GGD cabinet with reinforcing ribs, characterized in that: include: The cabinet (20) is a hollow rectangular box with an open front wall. The front wall of the cabinet (20) is rotatably connected to a cabinet door (21). The cabinet door (21) can cover the opening of the front wall of the cabinet (20). The cabinet door (21) can be turned around with one side of the front wall of the cabinet (20) as the center of the circle. The reinforcing structure can improve the firmness of the cabinet body (20) and the cabinet door (21). The reinforcing structure includes: a side firm structure (30), a load-releasing rod (31), a cross bar (40) and a front firm structure (43). The side firm structure (30) is symmetrically fixedly connected to both sides of the cavity of the cabinet body (20). The load-releasing rod (31) is symmetrically fixedly connected to both sides of the rear wall of the cabinet door (21). The cross bar (40) is movably connected between the symmetrical load-releasing rods (31). The front firm structure (43) is movably connected to the wall of the cross bar (40). The rear wall of the symmetrical load-releasing rod (31) can contact the front wall of the side firm structure (30). The front wall of the cross bar (40) and the front firm structure (43) can contact the rear wall of the cabinet door (21).
2. The GGD cabinet with reinforcement ribs according to claim 1, characterized in that: The side solid structure (30) is composed of a rectangular frame and an X-shaped rod inside the rectangular frame. The size of the side solid structure (30) is consistent with the inner wall surface of the cabinet (20). A rectangular notch is provided on the front wall surface of the side solid structure (30). The length of the unloading rod (31) is consistent with the height of the side solid structure (30).
3. The GGD cabinet with reinforcement ribs according to claim 1, characterized in that: The cross bars (40) are evenly arranged in plurality between the symmetrical unloading bars (31). The front solid structure (43) is composed of a rectangular frame and an X-shaped bar in the rectangular frame. The front solid structure (43) is respectively arranged between each upper and lower adjacent cross bars (40).
4. The GGD cabinet with reinforcement ribs according to claim 1, characterized in that: The reinforcement structure further comprises an adjustment groove (32), a limiting groove (33), and a locking groove (34). The adjustment groove (32) is provided on the side wall surface of each unloading rod (31) facing the other unloading rod (31). The adjustment groove (32) is a rectangular groove. The limiting groove (33) is provided on the rear wall surface of each unloading rod (31). The locking groove (34) is also provided on the rear wall surface of each unloading rod (31). The locking groove (34) is a semi-capsule-shaped groove. A plurality of identical locking grooves (34) are evenly provided on the wall surface of the unloading rod (31). Each locking groove (34) can be communicated with the limiting groove (33), and the limiting groove (33) can be communicated with the adjustment groove (32).
5. The GGD cabinet with reinforcement ribs according to claim 4, characterized in that: The reinforcing structure further comprises a connecting block (35), an elastic groove (36), a return plate (37), a limiting block (38) and a shifting block (39), wherein the connecting block (35) is slidably connected in the adjusting groove (32), the elastic groove (36) is provided on the side wall surface of the connecting block (35), the return plate (37) is elastically connected in the elastic groove (36) through a spring, the limiting block (38) is fixedly connected to the rear wall surface of the return plate (37), the shifting block (39) is fixedly connected to the rear wall surface of the limiting block (38), and the rear wall surface of the connecting block (35) is also provided with a rectangular groove.
6. The GGD cabinet with reinforcement ribs according to claim 5, characterized in that: The adjusting groove (32) can be adapted to the connecting block (35), the side wall surface of the connecting block (35) and the side wall surface of the cross bar (40) are fixedly connected, the elastic groove (36) is a convex groove, the elastic groove (36) can be adapted to the sliding of the return plate (37), the limiting block (38) is a semi-capsule-shaped block, the locking groove (34) can be adapted to the size of the limiting block (38), the shifting block (39) can slide in the rectangular groove on the rear wall of the connecting block (35), and the limiting groove (33) can be adapted to the vertical sliding of the limiting block (38).
7. The GGD cabinet with reinforcement ribs according to claim 5, characterized in that: The reinforcing structure further comprises a snap groove (41), a rotating block (42) and a snap block (44); the snap groove (41) is symmetrically opened on the upper and lower wall surfaces of the cross bar (40); the rotating block (42) is rotatably connected to the rear wall surface of the cross bar (40); and the snap block (44) is symmetrically fixedly connected on both sides of the upper and lower wall surfaces of the front solid structure (43).
8. The GGD cabinet with reinforcement ribs according to claim 7, characterized in that: The snap block (44) can enter the snap groove (41), the snap groove (41) can adapt to the size of the snap block (44), the symmetrical snap grooves (41) on each wall surface of the cross bar (40) can adapt to the size of the symmetrical snap block (44) on each wall surface of the front solid structure (43), the snap block (44) is a rectangular block, and the rotating block (42) is rotatably connected between the upper and lower symmetrical snap grooves (41) on the rear wall surface of the cross bar (40).
Citation Information
Patent Citations
GGD cabinet body with reinforcing ribs
CN217134977U