Damping antistatic floor
Patent Information
- Application Number
- CN202521633272.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-01
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2035-08-01
AI Technical Summary
常见的减震装置是弹簧等线性弹力元件,因此对于弹力设计就很讲究,若弹力系数设计过高,则减震装置过硬,无法有效起到缓冲效果,而弹力系数设计过低,则弹簧需要收缩的长度也要相应增长,以满足足够的弹性力,这样又会显示出地板面板高度下降过大,与其他地板高度不一致的问题
[0033] The beneficial effect of this utility model is that by setting shock-absorbing ring pads and buffer mechanisms inside the frame body, the shock-absorbing ring pads can support the panel body under normal conditions. When the panel body is subjected to a large impact force, the shock-absorbing ring pads deform to a certain extent, so that when the panel body comes into contact with the buffer mechanism, the buffer mechanism elastically deforms to provide buffering force to the panel body.
Smart Images

Figure CN224705422U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of antistatic flooring technology, and in particular relates to a shock-absorbing antistatic floor. Background Technology
[0002] Antistatic flooring (also known as static dissipation flooring or antistatic flooring) is a specially designed flooring system primarily used in environments requiring strict control of static electricity. Its core function is to safely guide static charge to the ground, preventing static buildup and discharge, thereby protecting sensitive electronic equipment and components, and ensuring a safe working environment.
[0003] In related technologies, shock-absorbing devices for antistatic flooring are typically applied to the foot supports. However, whether it's supporting equipment or people walking on it, the floor panel is in direct contact and lacks direct and effective protection. Common shock-absorbing devices are linear elastic elements such as springs. Therefore, the elasticity design is crucial. If the elasticity coefficient is designed too high, the shock-absorbing device will be too stiff and unable to effectively cushion the impact. Conversely, if the elasticity coefficient is designed too low, the spring needs to be compressed to provide sufficient elastic force, which will result in an excessive drop in floor panel height, causing inconsistencies with other floor levels.
[0004] On the other hand, the primary function of the foot support is to support the panel itself. Designing a spring would contradict the main function of the foot support. If there are obvious defects in the spring design, it may cause the floor panel to collapse.
[0005] Therefore, there is an urgent need to design a shock-absorbing and anti-static floor to solve the technical problem that the shock-absorbing device of the anti-static floor is designed on the foot support and cannot directly protect the panel, and is prone to causing the panel to collapse.
[0006] It should be noted that the information disclosed in this background section is only for understanding the background technology of this application concept, and therefore may include information that does not constitute prior art. Utility Model Content
[0007] This disclosure provides at least one example of a shock-absorbing and anti-static floor.
[0008] In a first aspect, the present disclosure provides a shock-absorbing and anti-static floor, comprising: a separately configured frame body and a panel body, wherein the panel body is slidably disposed inside the frame body;
[0009] The bottom of the frame is provided with a buffer mechanism, and the panel body is provided with several conductive columns on the side facing the buffer mechanism. The outer side of the conductive columns is also provided with an annular block.
[0010] The frame body has a partition plate inside, which is located between the panel body and the buffer mechanism;
[0011] A shock-absorbing ring pad is provided between the partition plate and the panel body, and the two sides of the shock-absorbing ring pad are respectively attached to the partition plate and the panel body;
[0012] Furthermore, when the panel body bears heavy objects, the frame body supports the panel body through shock-absorbing ring pads to keep the panel body flat.
[0013] When the panel body is subjected to an impact force, the panel body descends and compresses the shock-absorbing ring pad to deform, so that the ring block abuts against the buffer mechanism, thereby buffering the impact force on the panel body.
[0014] In one optional embodiment, the buffer mechanism includes a buffer plate and an elastic component, with one side of the buffer plate attached to a partition plate and a conductive post penetrating through the buffer plate;
[0015] The elastic component is located on the side of the buffer plate away from the partition plate;
[0016] When the panel body descends to the point where the annular block abuts against the buffer plate, the buffer plate transmits the impact force to the elastic component.
[0017] In one alternative embodiment, the elastic component includes a plurality of buffer springs, one end of which is connected to the inner bottom wall of the frame and the other end of which is connected to a buffer plate.
[0018] In one optional embodiment, the buffer plate has several through holes, and the conductive post is disposed through the through holes;
[0019] The outer wall of the conductive column is provided with several snap-fit blocks along the circumference. The bottom of the snap-fit blocks is hinged to the conductive column, and the top of the snap-fit blocks unfolds outward.
[0020] In one alternative implementation, the maximum diameter of the snap-fit block is greater than the inner diameter of the through hole.
[0021] In one alternative implementation, the annular block is located above the snap-fit block.
[0022] In one alternative embodiment, the outer diameter of the annular block is larger than the inner diameter of the through hole.
[0023] Secondly, this disclosure also provides a shock-absorbing and anti-static floor, comprising: a separately configured frame body and a panel body, wherein the panel body is slidably disposed inside the frame body;
[0024] The bottom of the frame is provided with a buffer mechanism, and a number of conduction columns are provided on the side of the panel body facing the buffer mechanism, with a gap between the conduction columns and the buffer mechanism.
[0025] The frame body has a partition plate inside, which is located between the panel body and the buffer mechanism;
[0026] A shock-absorbing ring pad is provided between the partition plate and the panel body, and the two sides of the shock-absorbing ring pad are respectively attached to the partition plate and the panel body;
[0027] Furthermore, when the panel body bears heavy objects, the frame body supports the panel body through shock-absorbing ring pads to keep the panel body flat.
[0028] When the panel body is subjected to an impact force, the panel body descends and compresses the shock-absorbing ring pad to deform, so that the ring block abuts against the buffer mechanism, thereby buffering the impact force on the panel body.
[0029] In one alternative embodiment, the buffer mechanism includes a buffer plate and an elastic component, with one side of the buffer plate attached to the partition plate;
[0030] The elastic component is located on the side of the buffer plate away from the partition plate;
[0031] When the panel body descends to the point where the conduction column and the buffer plate come into contact, the buffer plate transmits the impact force to the elastic component.
[0032] In one alternative embodiment, the elastic component includes a plurality of buffer springs, one end of which is connected to the inner bottom wall of the frame and the other end of which is connected to a buffer plate.
[0033] The beneficial effect of this utility model is that by setting shock-absorbing ring pads and buffer mechanisms inside the frame body, the shock-absorbing ring pads can support the panel body under normal conditions. When the panel body is subjected to a large impact force, the shock-absorbing ring pads deform to a certain extent, so that when the panel body comes into contact with the buffer mechanism, the buffer mechanism elastically deforms to provide buffering force to the panel body.
[0034] Other features and advantages of this invention will be set forth in the description which follows, and will be apparent in part from the description, or may be learned by practicing the invention. The objectives and other advantages of this invention are realized and obtained in the structures particularly pointed out in the description, claims, and drawings.
[0035] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, preferred embodiments are described below in detail with reference to the accompanying drawings. Attached Figure Description
[0036] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0037] Figure 1 A perspective view of a shock-absorbing and anti-static floor provided in an embodiment of this disclosure;
[0038] Figure 2 An exploded view of a shock-absorbing and anti-static floor provided in an embodiment of this disclosure;
[0039] Figure 3 This is a first structural schematic diagram of a shock-absorbing and anti-static floor provided in an embodiment of the present disclosure;
[0040] Figure 4 This is a schematic diagram of a second structure of a shock-absorbing and anti-static floor provided in an embodiment of the present disclosure;
[0041] Figure 5 This is a schematic diagram of a frame structure provided in an embodiment of the present disclosure;
[0042] Figure 6 This is a schematic diagram of the structure of a panel body provided in an embodiment of the present disclosure;
[0043] Figure 7 A first partial cross-sectional view of a panel body provided in an embodiment of this disclosure;
[0044] Figure 8 A second partial cross-sectional view of a panel body provided in an embodiment of this disclosure;
[0045] Figure 9 A third partial cross-sectional view of a panel body provided in an embodiment of this disclosure.
[0046] In the picture:
[0047] 1. Frame structure; 11. Partition panels;
[0048] 2. Panel body; 21. Conductive post; 22. Snap-fit block; 23. Annular block;
[0049] 3. Buffer mechanism; 31. Buffer plate; 32. Buffer spring; 33. Through hole; 4. Shock-absorbing ring pad. Detailed Implementation
[0050] To make the objectives, technical solutions, and advantages of the embodiments of this disclosure clearer, the technical solutions of the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0051] Research has revealed that in related technologies, shock-absorbing devices for antistatic flooring are typically applied to the foot supports. However, whether it's supporting equipment or people walking on it, the floor panel itself is in direct contact and lacks effective protection. Common shock-absorbing devices are linear elastic elements such as springs, making the elasticity design crucial. If the elasticity coefficient is too high, the shock-absorbing device is too stiff and cannot effectively cushion the impact. Conversely, if the elasticity coefficient is too low, the spring needs to contract to provide sufficient elastic force, resulting in an excessive drop in floor panel height and inconsistency with other floor levels.
[0052] On the other hand, the primary function of the foot support is to support the panel itself. Designing a spring would contradict the main function of the foot support. If there are obvious defects in the spring design, it may cause the floor panel to collapse.
[0053] Therefore, there is an urgent need to design a shock-absorbing and anti-static floor to solve the technical problem that the shock-absorbing device of the anti-static floor is designed on the foot support and cannot directly protect the panel, and is prone to causing the panel to collapse.
[0054] The shortcomings of the above solutions are the result of the inventor's practical experience and careful research. Therefore, the discovery process of the above problems and the solutions proposed in this disclosure below should be considered as the inventor's contribution to this disclosure.
[0055] The following detailed description of some embodiments of the present invention is provided in conjunction with the accompanying drawings. Unless otherwise specified, the embodiments and features described below can be combined with each other. Furthermore, in the accompanying drawings, the thickness of components may be exaggerated or reduced for the purpose of effectively describing the technical content.
[0056] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0057] Based on the above research, and referring to Figure 1 This disclosure provides a shock-absorbing and anti-static floor, comprising: a separate frame 1 and a panel body 2. The frame 1 is generally square, with a square opening at the top. The panel body 2 has the same shape and size as the opening at the top of the frame 1, and the panel body 2 is slidably disposed inside the frame 1 so that the panel body 2 can move up and down relative to the frame 1.
[0058] Reference Figure 5 In at least one embodiment, the frame body 1 has an integrally formed partition plate 11 inside. The partition plate 11 is located in the middle part of the frame body 1 along the thickness direction, and the center of the partition plate 11 is circular, with the outer side attached to the inner wall of the frame body 1.
[0059] Reference Figure 2 In at least one embodiment, a shock-absorbing ring pad 4 is provided between the partition plate 11 and the panel body 2, with both sides of the shock-absorbing ring pad 4 respectively attached to the partition plate 11 and the panel body 2. The shock-absorbing ring pad 4 is flexible and relatively thick to fill the 2-3 cm gap between the partition plate 11 and the panel body 2, thereby allowing the shock-absorbing ring pad 4 to elastically deform while maintaining a relatively "rigid" overall state. That is, when a person steps on the panel body 2, the shock-absorbing ring pad 4 supports the human body and keeps the panel body 2 flat without significant height changes. When bearing equipment or other heavy objects, multiple panel bodies 2 form an array to distribute the pressure, thereby ensuring normal use.
[0060] Reference Figure 3 When the panel body 2 is subjected to a large impact force, causing the deformation of the shock-absorbing ring pad 4 to exceed the design bearing pressure, the shock-absorbing ring pad 4 may crack or be damaged. Furthermore, the panel body 2 requires further shock absorption and cushioning to reduce damage. Therefore, in at least one embodiment, a buffer mechanism 3 is provided at the bottom of the frame body 1, with the buffer mechanism 3 and the shock-absorbing ring pad 4 located on opposite sides of the partition plate 11. When the shock-absorbing ring pad 4 deforms significantly, the panel body 2 can contact the buffer mechanism 3, which further buffers the impact force on the panel body 2 to protect it.
[0061] Reference Figure 3 and Figure 9 In at least one embodiment, since there is a partition plate 11 and a shock-absorbing ring pad 4 between the panel body 2 and the buffer mechanism 3, and the shock-absorbing ring pad 4 cannot be fully compressed, a plurality of conduction columns 21 are provided on the side of the panel body 2 facing the buffer mechanism 3, and the conduction columns 21 are spaced apart from the buffer mechanism 3. Under normal circumstances, the panel body 2 is supported by the shock-absorbing ring pad 4, and the conduction columns 21 do not contact the buffer mechanism 3. When the panel body 2 is subjected to a large instantaneous impact force, causing the shock-absorbing ring pad 4 to deform significantly, the panel body 2 descends and the conduction columns 21 abut against the buffer mechanism 3, so that the buffer mechanism 3 buffers the impact force on the panel body 2.
[0062] Reference Figure 3 In at least one embodiment, the buffer mechanism 3 includes a buffer plate 31 and an elastic component, wherein the elastic component includes a plurality of buffer springs 32, which are disposed on the side of the buffer plate 31 away from the partition plate 11. One end of the buffer spring 32 is connected to the inner bottom wall of the frame body 1, and the other end is connected to the buffer plate 31. The buffer spring 32 pushes the buffer plate 31 upward and fits against the partition plate 11. When the panel body 2 descends to the point where the conduction column 21 abuts against the buffer plate 31, the buffer plate 31 transmits the impact force to the elastic component.
[0063] It should be noted that in the situation described above, when the conductive column 21 comes into contact with the buffer plate 31, the shock-absorbing ring pad 4 has already deformed significantly and may be cracked, so it is necessary to identify and inspect it.
[0064] Reference Figure 5 In at least one embodiment, the buffer plate 31 is provided with a plurality of through holes 33, and the conductive post 21 is disposed through the through holes 33.
[0065] Reference Figure 4 and Figure 7 In at least one embodiment, an annular block 23 is provided on the outer wall of the conductive column 21. The outer diameter of the annular block 23 is larger than the inner diameter of the penetrating hole 33, so that when the conductive column 21 descends, it pushes against the buffer plate 31 through the annular block 23. Simultaneously, a plurality of locking blocks 22 are provided circumferentially on the outer wall of the conductive column 21. The maximum diameter of the locking block 22 is larger than the inner diameter of the penetrating hole 33. The bottom of the locking block 22 is hinged to the conductive column 21, and the top of the locking block 22 extends outward. The locking block 22 is located below the annular block 23.
[0066] Reference Figure 7 In at least one embodiment, under normal conditions, the bottom of the conductive post 21 passes through the buffer plate 31, and the through hole 33 pushes the snap-fit block 22 into a semi-retracted state.
[0067] Reference Figure 7 In at least one embodiment, when the panel body 2 is subjected to a large impact force, the conduction column 21 descends to allow the locking block 22 to completely pass through the buffer plate 31. At this time, the locking block 22 unfolds outward, so that the locking block 22 and the annular block 23 respectively lock the buffer plate 31 from both sides. If the panel body 2 continues to descend, the annular block 23 can push the buffer plate 31. When the buffer spring 32 rebounds, due to the setting of the locking block 22, the conduction column 21 cannot return to its original position, so that the panel body 2 is in a concave state. At this time, the site management personnel can be reminded that the floor may be subjected to a large impact force, and the shock-absorbing ring pad 4 should be removed and inspected in time to see if it is damaged, as well as whether the panel body 2 is damaged and whether it can properly perform the anti-static function.
[0068] In the several embodiments provided in this application, it should be understood that the disclosed systems, apparatuses, and methods can be implemented in other ways. The apparatus embodiments described above are merely illustrative. For example, the division of units is only a logical functional division, and in actual implementation, there may be other division methods. Furthermore, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Based on the above-described ideal embodiments according to this utility model, and through the above description, those skilled in the art can make various changes and modifications without departing from the technical spirit of the disclosed embodiments. The technical scope of the embodiments of this disclosure is not limited to the contents of the specification, but must be determined according to the scope of the claims.
Claims
1. A shock-absorbing and anti-static floor, characterized in that, include: The frame (1) and panel body (2) are set separately, and the panel body (2) is slidably set inside the frame (1); The bottom of the frame (1) is provided with a buffer mechanism (3), and the panel body (2) is provided with a number of conduction columns (21) on the side facing the buffer mechanism (3). The outer side of the conduction column (21) is also provided with an annular block (23). The frame body (1) has a partition plate (11) inside, which is located between the panel body (2) and the buffer mechanism (3). There is a shock-absorbing ring pad (4) between the partition plate (11) and the panel body (2), and the two sides of the shock-absorbing ring pad (4) are respectively attached to the partition plate (11) and the panel body (2); Furthermore, when the panel body (2) bears heavy objects, the frame body (1) supports the panel body (2) through the shock-absorbing ring pad (4) so that the panel body (2) remains flat; When the panel body (2) is subjected to an impact force, the panel body (2) descends and squeezes the shock-absorbing ring pad (4) to deform, so that the ring block (23) abuts against the buffer mechanism (3), so that the buffer mechanism (3) buffers the impact force on the panel body (2).
2. The shock-absorbing and anti-static floor as described in claim 1, characterized in that, The buffer mechanism (3) includes a buffer plate (31) and an elastic component. The buffer plate (31) is attached to the partition plate (11) on one side, and the transmission column (21) passes through the buffer plate (31). The elastic component is disposed on the side of the buffer plate (31) away from the partition plate (11); When the panel body (2) descends to the point where the annular block (23) abuts against the buffer plate (31), the buffer plate (31) transmits the impact force to the elastic component.
3. The shock-absorbing and anti-static floor as described in claim 2, characterized in that, The elastic component includes several buffer springs (32), one end of which is connected to the inner bottom wall of the frame body (1), and the other end is connected to the buffer plate (31).
4. The shock-absorbing and anti-static floor as described in claim 2, characterized in that, The buffer plate (31) has several through holes (33), and the conductive column (21) is installed through the through holes (33); The outer wall of the conductive column (21) is provided with several snap-fit blocks (22) along the circumferential direction. The bottom of the snap-fit block (22) is hinged to the conductive column (21), and the top of the snap-fit block (22) unfolds outward.
5. The shock-absorbing and anti-static floor as described in claim 4, characterized in that, The maximum diameter of the snap-fit block (22) is greater than the inner diameter of the through hole (33).
6. The shock-absorbing and anti-static floor as described in claim 4, characterized in that, The annular block (23) is located above the snap-fit block (22).
7. The shock-absorbing and anti-static floor as described in claim 6, characterized in that, The outer diameter of the annular block (23) is larger than the inner diameter of the through hole (33).
8. A shock-absorbing and anti-static floor, characterized in that, include: The frame (1) and panel body (2) are set separately, and the panel body (2) is slidably set inside the frame (1); The bottom of the frame body (1) is provided with a buffer mechanism (3), and a number of transmission columns (21) are provided on the side of the panel body (2) facing the buffer mechanism (3), and the transmission columns (21) are separated from the buffer mechanism (3). The frame body (1) has a partition plate (11) inside, which is located between the panel body (2) and the buffer mechanism (3). There is a shock-absorbing ring pad (4) between the partition plate (11) and the panel body (2), and the two sides of the shock-absorbing ring pad (4) are respectively attached to the partition plate (11) and the panel body (2); Furthermore, when the panel body (2) bears heavy objects, the frame body (1) supports the panel body (2) through the shock-absorbing ring pad (4) so that the panel body (2) remains flat; When the panel body (2) is subjected to an impact force, the panel body (2) descends and squeezes the shock-absorbing ring pad (4) to deform, so that the ring block (23) abuts against the buffer mechanism (3), so that the buffer mechanism (3) buffers the impact force on the panel body (2).
9. The shock-absorbing and anti-static floor as described in claim 8, characterized in that, The buffer mechanism (3) includes a buffer plate (31) and an elastic component, with one side of the buffer plate (31) attached to the partition plate (11); The elastic component is disposed on the side of the buffer plate (31) away from the partition plate (11); When the panel body (2) descends to the point where the conduction column (21) abuts against the buffer plate (31), the buffer plate (31) transmits the impact force to the elastic component.
10. The shock-absorbing and anti-static floor as described in claim 9, characterized in that, The elastic component includes several buffer springs (32), one end of which is connected to the inner bottom wall of the frame body (1), and the other end is connected to the buffer plate (31).