Building energy-saving performance detection equipment
By adopting shock-absorbing buffer structures in building energy-saving performance testing equipment, including support buffer springs, deformation support rods and rubber moving wheels, the problem of equipment not being able to move smoothly in uneven road sections is solved, improving the passability and reducing the burden on workers.
Patent Information
- Application Number
- CN202421098441.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-20
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-05-20
AI Technical Summary
The existing building energy-saving performance testing equipment cannot move smoothly in uneven road sections, resulting in poor passability and manual handling, which increases the burden on workers.
The shock-absorbing buffer structure is adopted, including a support buffer spring, a deformation support rod and a rubber moving wheel, which cooperate with each other to achieve smooth movement.
It can maintain smooth movement on uneven road sections, reduce the demand for manual handling and reduce the burden on workers.
Smart Images

Figure CN222880218U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a building energy-saving performance detection device, in particular to a building energy-saving performance detection device, and belongs to the technical field of detection equipment. Background Art
[0002] Building energy-saving detection is the process of evaluating the energy consumption of buildings, discovering energy-saving potential and providing optimization suggestions. Building energy-saving detection equipment is a key tool to support this process. These devices evaluate the energy efficiency of buildings by collecting and analyzing internal and external environmental data of buildings, such as indoor temperature, humidity, light intensity, air quality, etc., as well as building system operation data, such as the energy consumption of heating, ventilation, lighting and other systems. By monitoring and analyzing these data, areas of energy waste and unreasonable use can be identified, and corresponding improvement suggestions can be provided;
[0003] However, the mobile chassis of the existing building energy-saving performance testing equipment does not have a shock-absorbing and buffering structure, so that the building energy-saving performance testing equipment cannot move smoothly on bumpy roads and has poor passability. When encountering special roads, manual transportation is required, which greatly increases the burden on workers.
[0004] Therefore, there is an urgent need to improve building energy-saving performance testing equipment to solve the above-mentioned problems. Utility Model Content
[0005] The purpose of the utility model is to provide a building energy-saving performance testing device, which can cooperate with each other among the supporting buffer spring, the deformation support rod and the rubber moving wheel in the shock-absorbing and buffering structure, so that the building energy-saving performance testing device can still move smoothly on bumpy roads with good passability. When encountering special roads, manual handling is no longer required, which greatly reduces the burden on workers.
[0006] In order to achieve the above-mentioned purpose, the main technical scheme adopted by the utility model includes: a bottom plate, the upper surface of which is provided with a performance detection device body, and the lower surface of which is provided with a shock-absorbing and buffering moving structure;
[0007] The shock-absorbing and buffering movable structure comprises a plurality of first connecting blocks, a deformable support rod hinged on both sides of the first connecting block (4), a second connecting block hinged on the other end of the deformable support rod, a rubber movable wheel rotatably connected to the outer side of the second connecting block, and a supporting buffer spring arranged above the deformable support rod.
[0008] Preferably, a first slot is provided on both sides of the first connecting block, one end of the deformation support rod away from the rubber moving wheel is hinged to the inside of the first slot, one end of the support buffer spring is hinged to the top of the deformation support rod through a third connecting block, and the other end of the support buffer spring is hinged to the top of the first slot through a hinge block.
[0009] Preferably, the support buffer spring includes a first clamp and a second clamp, a spring arranged between the first clamp and the second clamp, and a hydraulic rod arranged in the spring.
[0010] Preferably, a connecting plate is provided on one side of the upper surface of the base plate, a supporting block is provided on a side of the base plate close to the connecting plate, and a push-pull rod is hinged on the upper surface of the supporting block.
[0011] Preferably, the push-pull rod comprises a connecting rod, a pull ring arranged at the top end of the connecting rod, and push rods arranged on both sides of the connecting rod and close to the bottom of the pull ring.
[0012] Preferably, the connecting plate is provided with a push-pull rod clamp on one side close to the push-pull rod, and the push-pull rod clamp comprises a clamp block and two clamping blocks hinged at the open end of the clamp block, and the two clamping blocks are fixed by a bolt.
[0013] Preferably, heat dissipation holes are provided on the upper surface of the performance testing equipment body, and sealing doors are hinged on both sides of the performance testing equipment body.
[0014] Preferably, the performance testing device body is provided with an illuminating lamp on a side away from the connecting rod, and the push rod and the rubber moving wheel are both provided with rubber anti-skid groove pads.
[0015] The utility model has at least the following beneficial effects:
[0016] 1. The utility model can make the building energy-saving performance testing equipment move smoothly on bumpy roads through the cooperation between the supporting buffer spring, the deformation support rod and the rubber moving wheel in the shock-absorbing and buffering structure, with good passability. When encountering special roads, no manual handling is required, which greatly reduces the burden on workers. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The drawings described herein are used to provide a further understanding of the present application and constitute a part of the present application. The illustrative embodiments of the present application and their descriptions are used to explain the present application and do not constitute an improper limitation on the present application. In the drawings:
[0018] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0019] Figure 2 This is a schematic diagram of the shock-absorbing and buffering mobile structure of the utility model;
[0020] Figure 3 This is a schematic diagram of the push-pull rod structure of the utility model;
[0021] Figure 4 This is a schematic diagram of the push-pull rod latch structure of the utility model.
[0022] In the figure, 1-bottom plate; 2-performance testing equipment body; 3-shock-absorbing and buffering moving structure; 4-first connecting block; 5-first slot; 6-deformation support rod; 7-second connecting block; 8-rubber moving wheel; 9-support buffer spring; 10-third connecting block; 11-hinge block; 12-first clamp; 13-second clamp; 14-spring; 15-hydraulic rod; 16-connecting plate; 17-support block; 18-push-pull rod; 19-pull ring; 20-push rod; 21-push-pull rod clamp; 22-pin block; 23-clamping block; 24-bolt; 25-heat dissipation hole; 26-seal door; 27-lighting lamp; 28-rubber anti-skid groove pad; 1801-connecting rod. DETAILED DESCRIPTION
[0023] The following will describe the implementation methods of the present application in detail with the help of accompanying drawings and examples, so that the implementation process of how the present application uses technical means to solve technical problems and achieve technical effects can be fully understood and implemented accordingly.
[0024] like Figure 1-Figure 4 As shown, the building energy-saving performance testing device provided in this embodiment includes a base plate 1, a performance testing device body 2 is arranged on the upper surface of the base plate 1, and a shock-absorbing and buffering movable structure 3 is arranged on the lower surface of the base plate 1. The base plate 1 plays the role of supporting and fixing the performance testing device body 2 and connecting the shock-absorbing and buffering movable structure 3. The shock-absorbing and buffering movable structure 3 is convenient for keeping the overall device stable when passing through special sections and passing smoothly;
[0025] The shock-absorbing and buffering movable structure 3 includes a plurality of first connecting blocks 4, a deformation support rod 6 hinged on both sides of the first connecting block 4, a second connecting block 7 hinged at the other end of the deformation support rod 6, a rubber moving wheel 8 rotatably connected to the outside of the second connecting block 7, and a support buffer spring 9 arranged above the deformation support rod 6. The first connecting block 4 facilitates the fixed connection between the shock-absorbing and buffering movable structure 3 and the base plate 1. The deformation support rod 6 can provide a deformation buffer or rebound space for shock absorption and buffering, and is convenient for connecting and supporting the rubber moving wheel 8. The support buffer spring 9 provides a buffering support rebound force for the shock-absorbing and buffering movable structure 3.
[0026] First slots 5 are provided on both sides of the first connecting block 4, and one end of the deformation support rod 6 away from the rubber moving wheel 8 is hinged to the inside of the first slot 5. One end of the support buffer spring 9 is hinged to the top of the deformation support rod 6 through the third connecting block 10, and the other end of the support buffer spring 9 is hinged to the top of the first slot 5 through the hinge block 11. The first slot 5 facilitates the deformation support rod 6 to be hinged on both sides of the first connecting block 4, and the third connecting block 10 and the hinge block 11 play the role of hingedly fixing the support buffer spring 9.
[0027] The support buffer spring 9 includes a first clamp 12 and a second clamp 13, a spring 14 arranged between the first clamp 12 and the second clamp 13, and a hydraulic rod 15 arranged in the spring 14. The spring 14 and the hydraulic rod 15 are convenient for providing supporting rebound force for the shock-absorbing and buffering movable structure 3, and the first clamp 12 and the second clamp 13 are convenient for connecting and fixing the support buffer spring 9.
[0028] A connecting plate 16 is provided on one side of the upper surface of the base plate 1 , and a supporting block 17 is provided on the side of the base plate 1 close to the connecting plate 16 . A push-pull rod 18 is hinged on the upper surface of the supporting block 17 . The supporting block 17 is convenient for supporting the push-pull rod 18 , and the connecting plate 16 is convenient for fixing and connecting the push-pull rod clamp 21 .
[0029] The push-pull rod 18 includes a connecting rod 1801, a pull ring 19 arranged at the top of the connecting rod 1801, and a push rod 20 arranged on both sides of the connecting rod 1801 and close to the bottom of the pull ring 19. The connecting rod 1801 plays a role in transmitting push and pull forces, the pull ring 19 is convenient for use when pulling, and the push rod 20 is convenient for use when pushing.
[0030] A push-pull rod clamp 21 is provided on one side of the connecting plate 16 close to the push-pull rod 18. The push-pull rod clamp 21 includes a pin block 22 and two clamping blocks 23 hinged at the open end of the pin block 22. The two clamping blocks 23 are fixed by a bolt 24. The push-pull rod clamp 21 is used to fix the push-pull rod 18.
[0031] Heat dissipation holes 25 are provided on the upper surface of the performance testing equipment body 2, and sealing doors 26 are hinged on both sides of the performance testing equipment body 2. The heat dissipation holes 25 facilitate heat dissipation of the performance testing equipment body 2 when working, and the sealing doors 26 facilitate taking out the test object or inspecting and maintaining the inside of the performance testing equipment body 2.
[0032] The performance testing equipment body 2 is provided with an illumination lamp 27 on the side away from the connecting rod 1801, and the push rod 20 and the rubber moving wheel 8 are provided with rubber anti-skid groove pads 28. The illumination lamp 27 facilitates movement in dimly lit working areas, and the rubber anti-skid groove pads 28 play an anti-skid role.
[0033] like Figure 1-Figure 4As shown, the principle of the building energy-saving performance testing equipment provided by this embodiment is as follows: when the device is used, the moving mode of the device should be selected according to the habits of the operators or different road conditions. When passing through relatively flat roads, the device can be pushed to move. At this time, the push-pull rod 18 hinged on the support block 17 is first pushed into the pin block 22, and then reversed and clamped by the clamping block 23 and fixed by the plug 24. Then the operator can push the device to the specified position through the push rod 20. When passing through special sections, the device can be pulled to move. At this time, the plug 24 is first taken out and the clamping block 23 is opened, and then the push-pull rod 18 is taken out from the pin block 22, and then the clamping block 23 is reversed and clamped and fixed by the plug 24. In this way, the push-pull rod 18 hinged to the support block 17 will be flipped to a comfortable angle for the user;
[0034] When the device moves, its own gravity will cause the shock-absorbing and buffering moving structure 3 to be in a downward pressure state. When the shock-absorbing and buffering moving structure 3 passes through a low-lying area, the supporting buffer spring 9 will bounce the rubber moving wheel 8 hinged at the end of the deformation support rod 6 to the bottom of the low-lying area through the rebound force. At this time, the hydraulic rod 15 in the supporting buffer spring 9 will stretch out to play an overall supporting role, so that it can pass smoothly.
[0035] When the device passes through the protrusion, the support buffer spring 9 will touch the protrusion so that the hydraulic rod 15 in the support buffer spring 9 will shrink and support, and the shrinking spring 14 will pull the deformation support rod 6 to rise, and at the same time, it will smoothly pass through the protrusion. The shrinking hydraulic rod 15 and spring 14 will smoothly bounce when passing through the protrusion and support the device to move;
[0036] Each rubber moving part 8 in the shock-absorbing and buffering moving structure 3 has an independent shock-absorbing and buffering structure, so that each can be divided into parts and cooperated when passing through a special road section, thereby improving the passability of the device in different road sections.
[0037] For example, certain words are used in the specification and claims to refer to specific components. Those skilled in the art should understand that hardware manufacturers may use different terms to refer to the same component. This specification and claims do not use differences in names as a way to distinguish components, but use differences in the functions of components as the criteria for distinction. For example, "including" mentioned throughout the specification and claims is an open term, so it should be interpreted as "including but not limited to". "Approximately" means that within an acceptable error range, those skilled in the art can solve technical problems within a certain error range and basically achieve technical effects.
[0038] It should be noted that the terms "include", "comprises" or any other variations thereof are intended to cover non-exclusive inclusion, so that a product or system including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such product or system. In the absence of more restrictions, the elements defined by the sentence "comprises a ..." do not exclude the existence of other identical elements in the product or system including the elements.
[0039] The above description shows and describes several preferred embodiments of the utility model, but as mentioned above, it should be understood that the utility model is not limited to the form disclosed herein, and should not be regarded as excluding other embodiments, but can be used in various other combinations, modifications and environments, and can be modified within the scope of the utility model concept described herein through the above teachings or the technology or knowledge of the relevant field. The changes and modifications made by those skilled in the art do not deviate from the spirit and scope of the utility model, and should be within the scope of protection of the claims attached to the utility model.
Claims
1. A building energy-saving performance testing device, comprising a base plate (1), characterized in that: The upper surface of the base plate (1) is provided with a performance detection device body (2), and the lower surface of the base plate (1) is provided with a shock-absorbing and buffering moving structure (3); The shock-absorbing and buffering movable structure (3) comprises a plurality of first connecting blocks (4), a deformable support rod (6) hinged on both sides of the first connecting blocks (4), a second connecting block (7) hinged on the other end of the deformable support rod (6), a rubber movable wheel (8) rotatably connected to the outside of the second connecting block (7), and a supporting buffer spring (9) arranged above the deformable support rod (6).
2. A building energy-saving performance testing device according to claim 1, characterized in that: A first slot (5) is provided on both sides of the first connecting block (4); one end of the deformation support rod (6) away from the rubber moving wheel (8) is hinged to the inside of the first slot (5); one end of the support buffer spring (9) is hinged to the top of the deformation support rod (6) through a third connecting block (10); and the other end of the support buffer spring (9) is hinged to the top of the first slot (5) through a hinge block (11).
3. A building energy-saving performance testing device according to claim 1, characterized in that: The support buffer spring (9) comprises a first clamp (12) and a second clamp (13), a spring (14) arranged between the first clamp (12) and the second clamp (13), and a hydraulic rod (15) arranged in the spring (14).
4. A building energy-saving performance testing device according to claim 1, characterized in that: A connecting plate (16) is provided on one side of the upper surface of the base plate (1), a supporting block (17) is provided on the side of the base plate (1) close to the connecting plate (16), and a push-pull rod (18) is hinged on the upper surface of the supporting block (17).
5. A building energy-saving performance testing device according to claim 4, characterized in that: The push-pull rod (18) comprises a connecting rod (1801), a pull ring (19) arranged at the top end of the connecting rod (1801), and a push rod (20) arranged on both sides of the connecting rod (1801) and close to the bottom of the pull ring (19).
6. A building energy-saving performance testing device according to claim 5, characterized in that: The connecting plate (16) is provided with a push-pull rod clamp (21) on one side close to the push-pull rod (18), and the push-pull rod clamp (21) comprises a clamp block (22) and two clamp blocks (23) hinged at the open ends of the clamp block (22), and the two clamp blocks (23) are fixed by a bolt (24).
7. A building energy-saving performance testing device according to claim 1, characterized in that: The upper surface of the performance testing device body (2) is provided with heat dissipation holes (25), and sealing doors (26) are hingedly connected on both sides of the performance testing device body (2).
8. A building energy-saving performance testing device according to claim 5, characterized in that: The performance testing device body (2) is provided with an illuminating lamp (27) on a side away from the connecting rod (1801), and the push rod (20) and the rubber moving wheel (8) are both provided with rubber anti-skid groove pads (28).