Splicing type medical equipment mounting bottom plate
By employing a limiting design and reinforcement structure with locking blocks and slots in the splicing medical equipment mounting base plate, the problem of easy breakage at the base plate connection is solved, achieving more stable support and anti-slip effect, which is suitable for the transportation and heat dissipation of medical equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHANGCHUN HUASONG MASCH CO LTD
- Filing Date
- 2025-05-08
- Publication Date
- 2026-04-28
AI Technical Summary
When subjected to pressure, the connection between the slot and the block of the existing spliced base plate is prone to deformation and breakage, affecting the support performance.
The design adopts a combination of locking blocks and slots. The locking blocks are equipped with limiting blocks on both sides, and the slots are equipped with limiting grooves. The locking blocks and slots are fixed together by the limiting blocks and limiting grooves. Metal slip rings and rubber pads are fitted on the support column structure. Reinforcing ribs and ventilation holes are provided between the main body of the base plate, and reinforcing rods are installed in the sliding holes.
It improves the bending moment resistance at the connection of the base plate, avoids the breakage of the side wall of the locking block or slot, enhances the support stability and anti-slip performance, and facilitates transportation and heat dissipation.
Smart Images

Figure CN224178414U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of splicing base plate technology, specifically relating to a splicing medical equipment mounting base plate. Background Technology
[0002] A mounting base plate is a plate-shaped support structure used to install at the bottom of equipment, supporting the equipment to a suitable height and detaching the bottom of the equipment from the ground. Medical equipment generally needs to be supported at the bottom by a base plate during installation. For large medical equipment, spliced base plates are generally used for support and fixation to facilitate transportation.
[0003] Existing splicing base plates generally have slots and matching blocks on the perimeter of the plate. Multiple base plates are connected and fixed by engaging the slots and blocks. However, the equipment installed above the base plates will exert pressure on the connection points of adjacent base plates. Since the connection points of the slots and blocks are relatively weak compared to other parts of the base plate, the side walls of the blocks or slots are prone to deformation and breakage under bending moment after being subjected to pressure, which seriously affects the support performance of the base plate. Utility Model Content
[0004] The purpose of this utility model is to provide a simple and reasonably designed splicing medical equipment mounting base plate to solve the above problems.
[0005] This utility model achieves the above objectives through the following technical solutions:
[0006] A modular medical device mounting base includes multiple base plate bodies. A first set of legs and a second set of legs are mounted at each end of the base plate body. The first and second legs are aligned. The side of the first leg furthest from the end of the base plate body extends outward to form a locking block. Limiting blocks are integrally formed on both sides of the locking block. A locking groove is formed on the side of the second leg furthest from the end of the base plate body. A limiting groove corresponding to the limiting block is formed on the inner wall of the locking groove. Adjacent base plate bodies are fixed together by the first and second legs engaging with the locking block and the locking groove. After the first and second legs are engaged, a support column structure is formed. A metal slip ring is fitted on the end of the support column structure closest to the base plate body.
[0007] As a further optimization of this utility model, the base plate body includes an upper base plate and a lower base plate disposed below the upper base plate. A gap is left between the upper base plate and the lower base plate, and a reinforcing rib plate with a grid structure is disposed in the gap. The adjacent sides of the upper base plate and the lower base plate are fixed to the reinforcing rib plate.
[0008] As a further optimization of this utility model, multiple ventilation holes are provided on both the upper base plate and the lower base plate, and the multiple ventilation holes are distributed in a matrix, and the ventilation holes on the upper base plate and the lower base plate are interconnected.
[0009] As a further optimization of this utility model, the base plate body has multiple equally spaced sliding holes along its length, and a reinforcing rod is slidably connected in the sliding holes.
[0010] As a further optimization of this utility model, the side opposite to the second leg of the locking block and the second leg both extend outward to the outer side of the lower base plate, and the height of the top of the locking block and the second leg is flush with the height of the lower surface of the lower base plate.
[0011] As a further optimization of this utility model, after the first leg and the second leg are snapped together to form a support column structure, a rubber pad is also fitted on the end away from the bottom plate, and an anti-slip groove is formed on the lower surface of the rubber pad.
[0012] The beneficial effects of this utility model are as follows:
[0013] 1. The adjacent base plates are engaged by a locking block on the first leg and a locking groove on the second leg. The locking block and the opposite side of the second leg both extend outward to the outer side of the lower base plate end. After the two base plates are spliced, they can support each other through the first and second legs. The pressure on the connection between the adjacent base plates is transferred to the first and second legs, which minimizes the problem that the locking block or the side wall of the locking groove may break due to bending moment after the connection between the two base plates is subjected to pressure.
[0014] 2. The base plate has multiple equally spaced sliding holes along its length. Reinforcing rods are slidably connected in the sliding holes. After the two base plates are spliced together, the reinforcing rods can be pushed along the sliding holes so that both ends of the reinforcing rods are inserted into the two base plates respectively, thereby reinforcing the connection between the two base plates and further improving the bending moment resistance of the connection between the two base plates. Attached Figure Description
[0015] Figure 1 This is a structural diagram of the overall assembly of this utility model;
[0016] Figure 2 This is a schematic diagram of one end of the base plate of this utility model;
[0017] Figure 3 This is a schematic diagram of the structure at the other end of the base plate of this utility model;
[0018] Figure 4 This is a cross-sectional structural diagram of the main body of the base plate of this utility model;
[0019] Figure 5 This is a schematic diagram of the installation position of the rubber pad of this utility model.
[0020] In the diagram: 1. Upper base plate; 2. Lower base plate; 3. Reinforcing rib; 4. Ventilation hole; 5. Sliding hole; 6. Reinforcing rod; 7. First leg; 8. Locking block; 9. Limiting block; 10. Second leg; 11. Locking groove; 12. Limiting groove; 13. Metal slip ring; 14. Rubber pad; 15. Anti-slip groove. Detailed Implementation
[0021] The present application will now be described in further detail with reference to the accompanying drawings. It should be noted that the following specific embodiments are only used to further illustrate the present application and should not be construed as limiting the scope of protection of the present application. Those skilled in the art can make some non-essential improvements and adjustments to the present application based on the above application content.
[0022] Example
[0023] like Figure 1 - Figure 5 As shown, a splicing medical equipment mounting base plate includes multiple base plate main bodies. Each base plate main body includes an upper base plate 1 and a lower base plate 2 located below the upper base plate 1. A gap is left between the upper base plate 1 and the lower base plate 2, and a reinforcing rib plate 3 with a grid structure is installed in the gap. The upper base plate 1 and the lower base plate 2 are fixed to the reinforcing rib plate 3 on adjacent sides. The upper base plate 1 and the lower base plate 2 are set, and a gap is left between the upper base plate 1 and the lower base plate 2 for installing the reinforcing rib plate 3 between the upper base plate 1 and the lower base plate 2. By setting the reinforcing rib plate 3, the self-weight of the base plate main body is greatly reduced without affecting the supporting performance of the base plate main body, which facilitates the transportation of the base plate main body.
[0024] Multiple ventilation holes 4 are provided on both the upper base plate 1 and the lower base plate 2. The multiple ventilation holes 4 are distributed in a matrix and the ventilation holes 4 on the upper base plate 1 and the lower base plate 2 are interconnected. When the medical equipment is installed on the base plate body, the medical equipment can be cooled through the interconnected ventilation holes 4 on the upper base plate 1 and the lower base plate 2.
[0025] A set of first legs 7 and a set of second legs 10 are respectively installed at both ends of the base plate body. The first legs 7 and the second legs 10 are aligned. The side of the first leg 7 away from the end of the base plate body extends outward to form a locking block 8. The side of the second leg 10 away from the end of the base plate body has a locking groove 11. When multiple base plates need to be spliced, the locking block 8 formed on the first leg 7 at the end of one base plate body can be slidably inserted into the locking groove 11 on the second leg 10 at the end of another base plate body.
[0026] The two sides of the card block 8 are integrally formed with limiting blocks 9. The inner side wall of the card groove 11 is provided with a limiting groove 12 that is opposite to the limiting block 9. When the two base plate bodies are slidably connected by the card block 8 and the card groove 11, the limiting block 9 and the limiting groove 12 are used to limit the connection, so that the two base plate bodies are stably connected.
[0027] The opposite sides of the locking block 8 and the second leg 10 both extend outward to the outer side of the lower base plate 2, and the top height of the locking block 8 and the second leg 10 is flush with the lower surface of the lower base plate 2. This allows the two base plates to support each other after being spliced together, thus minimizing the bending moment that may occur at the connection between the two base plates under pressure, which could cause the side wall of the locking block 8 or the slot 11 to be easily subjected to bending moment and break.
[0028] After the first leg 7 and the second leg 10 are engaged, a support column structure is formed. A metal slip ring 13 is fitted on one end of the support column structure near the main body of the base plate. The metal slip ring 13 is used to fit on the support column structure to further reinforce the splice of the first leg 7 and the second leg 10, thereby further improving the stability of the splice of the first leg 7 and the second leg 10.
[0029] After the first leg 7 and the second leg 10 are snapped together to form a support column structure, a rubber pad 14 is also fitted on the end away from the bottom plate 2. An anti-slip groove 15 is opened on the lower surface of the rubber pad 14. The rubber pad 14 is used to support the support column structure formed by splicing the first leg 7 and the second leg 10. The anti-slip groove 15 at the bottom of the rubber pad 14 can greatly improve the anti-slip performance of the support column structure in contact with the ground.
[0030] The base plate has multiple equally spaced sliding holes 5 along its length. Reinforcing rods 6 are slidably connected in the sliding holes 5. After the two base plates are spliced together, the reinforcing rods 6 can be pushed along the sliding holes 5 so that the two ends of the reinforcing rods 6 are respectively inserted into the two base plates to reinforce the connection between the two base plates and further improve the bending moment resistance of the connection between the two base plates.
[0031] It should be noted that when multiple base plates need to be spliced together, the locking block 8 extending from the first leg 7 at the end of one base plate can be slidably inserted into the slot 11 opened on the second leg 10 at the end of another base plate. At this time, the integrally formed limiting blocks 9 on both sides of the locking block 8 are accommodated in the limiting grooves 12 opened on the inner sidewall of the slot 11, realizing the splicing of the two base plates. After the splicing is completed, the user puts the metal slip ring 13 on the support column structure formed by the splicing of the first leg 7 and the second leg 10 to connect the first leg 7 and the second leg 10. Further reinforcement will complete the splicing of the base plate. Since the opposite sides of the locking block 8 and the second support leg 10 both extend outward to the outer side of the lower base plate 2, the two base plates can support each other through the locking block 8 and the second support leg 10 after splicing. Therefore, the pressure at the connection of adjacent base plates is entirely applied to the first support leg 7 and the second support leg 10, and no bending moment is applied to the side wall of the locking block 8 and the slot 11. This minimizes the problem that the connection of the two base plates is prone to breakage due to bending moment after being compressed, and greatly improves the stability of the base plate support.
[0032] The embodiments described above are merely examples of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these modifications and improvements all fall within the protection scope of this utility model.
Claims
1. A modular medical equipment mounting base plate, comprising multiple base plate main bodies, characterized in that: A first leg (7) and a second leg (10) are respectively installed at both ends of the base plate. The first leg (7) and the second leg (10) are aligned. The side of the first leg (7) away from the end of the base plate extends outward to form a locking block (8). Limiting blocks (9) are integrally formed on both sides of the locking block (8). A locking groove (11) is opened on the side of the second leg (10) away from the end of the base plate. A limiting groove (12) that is opposite to the limiting block (9) is opened on the inner side wall of the locking groove (11). Adjacent base plates are fixed by the first leg (7) and the second leg (10) in conjunction with the locking block (8) and the locking groove (11). After the first leg (7) and the second leg (10) are locked together, a support column structure is formed. A metal slip ring (13) is sleeved on the end of the support column structure near the base plate.
2. The modular medical equipment mounting base plate according to claim 1, characterized in that: The base plate body includes an upper base plate (1) and a lower base plate (2) disposed below the upper base plate (1). A gap is left between the upper base plate (1) and the lower base plate (2). A reinforcing rib plate (3) with a grid structure is disposed in the gap. The adjacent sides of the upper base plate (1) and the lower base plate (2) are fixed to the reinforcing rib plate (3).
3. The splicing medical equipment mounting base plate according to claim 2, characterized in that: Both the upper base plate (1) and the lower base plate (2) are provided with a plurality of ventilation holes (4), which are distributed in a matrix and are interconnected.
4. The splicing medical equipment mounting base plate according to claim 2, characterized in that: The base plate has multiple equally spaced sliding holes (5) along its length, and a reinforcing rod (6) is slidably connected in the sliding holes (5).
5. The splicing medical equipment mounting base plate according to claim 2, characterized in that: The opposite sides of the locking block (8) and the second leg (10) both extend outward to the outer side of the lower base plate (2), and the top height of the locking block (8) and the second leg (10) is flush with the lower surface of the lower base plate (2).
6. The splicing medical equipment mounting base plate according to claim 2, characterized in that: After the first leg (7) and the second leg (10) are engaged, a support column structure is formed. A rubber pad (14) is also fitted on one end away from the lower base plate (2). An anti-slip groove (15) is provided on the lower surface of the rubber pad (14).