High-efficiency vibration damping and noise reduction components for intelligently controlled electromechanical equipment in building installation

CN224634919UActive Publication Date: 2026-08-14YANJIAN GRP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-21
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

[0005]本实用新型的目的在于提供建筑安装用数智调控的机电设备高效减震降噪组件,以解决背景技术中减震结构较为单一,导致减震效果较差的问题

Benefits of technology

1、本实用新型通过第一缓冲机构、第二缓冲机构、第三缓冲机构与第四缓冲机构的配合,使该组件具备了多重缓冲功能,有效降低机电设备工作时产生的振动,进而降低噪音,提高了实用性。

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Abstract

This utility model discloses a high-efficiency vibration reduction and noise reduction component for intelligently controlled electromechanical equipment used in building installation, relating to the field of vibration reduction and noise reduction technology for electromechanical equipment. It includes a base, with mounting blocks fixedly installed on both outer sides of the base. Two first buffer mechanisms are installed inside the base, with mounting plates installed on top of the two first buffer mechanisms. Third buffer mechanisms are installed at each of the four corners inside the base, and a second buffer mechanism is installed between the two first buffer mechanisms. Mounting grooves are formed on all four sides of the base's interior, and a fourth buffer mechanism is installed inside each of the mounting grooves. Through the cooperation of the first, second, third, and fourth buffer mechanisms, this utility model provides multiple buffering functions, effectively reducing the vibration generated during the operation of electromechanical equipment, thereby reducing noise and improving practicality.
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Description

Technical Field

[0001] This utility model relates to the field of vibration reduction and noise reduction technology for electromechanical equipment, specifically to a high-efficiency vibration reduction and noise reduction component for building installation electromechanical equipment with intelligent control. Background Technology

[0002] The requirements for environmental quality in construction projects are becoming increasingly stringent, especially for buildings such as schools, hospitals, office buildings, and high-end hotels, which have very strict requirements for noise and vibration control. The main source of noise and vibration is the equipment room, which houses power and electromechanical equipment such as refrigeration units, air conditioning circulating water pumps, air handling units, various fans, cooling towers, transformers, HVAC systems, and water supply and drainage systems.

[0003] Existing vibration damping components for electromechanical equipment have a relatively simple damping structure, resulting in poor damping effect and difficulty in adjusting the damping effect according to needs. It is necessary to specially manufacture vibration damping components according to the weight of the electromechanical equipment and the vibration generated during operation, which leads to high costs.

[0004] Based on this, we now offer high-efficiency vibration reduction and noise reduction components for building installation electromechanical equipment with intelligent control, which can eliminate the drawbacks of existing devices. Utility Model Content

[0005] The purpose of this utility model is to provide a high-efficiency vibration reduction and noise reduction component for intelligent control of electromechanical equipment used in building installation, so as to solve the problem that the vibration reduction structure in the background technology is relatively simple, resulting in poor vibration reduction effect.

[0006] To achieve the above objectives, this utility model provides the following technical solution: A high-efficiency vibration reduction and noise reduction component for building installation electromechanical equipment with digital control, including a base, on both sides of the base, mounting blocks are fixedly installed, and two first buffer mechanisms are installed inside the base, with mounting plates installed on the top of the two first buffer mechanisms. A third buffer mechanism is installed at each of the four corners inside the base, and a second buffer mechanism is installed between the two first buffer mechanisms. A mounting groove is opened on each of the four sides inside the base, and a fourth buffer mechanism is installed inside the mounting groove.

[0007] Based on the above technical solutions, this utility model also provides the following optional technical solutions: In one alternative: the first buffer mechanism includes two fixed plates, both of which are fixedly installed inside the base, and two slide rods are fixedly installed between the two fixed plates. A movable block is slidably installed on the outside of the two slide rods. A first spring is sleeved on the outside of the slide rods and on one side of the movable block. A connecting component is installed on the top of the movable block.

[0008] In one alternative embodiment: the connecting assembly includes two first fixing seats, both of which are fixedly installed on the top of the movable block, and a connecting rod is rotatably mounted inside each of the two first fixing seats via a pin. A second fixing seat is rotatably mounted at one end of each of the two connecting rods via a pin, and both second fixing seats are fixedly installed at the bottom of the mounting plate.

[0009] In one alternative: a sliding groove is provided at the bottom of the base, and the first buffer mechanism is slidably installed with the base through the sliding groove.

[0010] In one alternative embodiment: the second buffer mechanism includes a first telescopic sleeve and two first telescopic rods. The first telescopic sleeve is fixedly installed at the bottom inside the base. Both first telescopic rods are slidably installed with the first telescopic sleeve, and a sealing ring is provided between the first telescopic sleeve and the first telescopic rods. One end of each of the two first telescopic rods passes through a fixed plate and is fixedly installed with two movable blocks. A connecting pipe is fixedly installed on the outside of the first telescopic sleeve, and an air pump is fixedly installed at one end of the connecting pipe. The air pump is fixedly installed inside the base.

[0011] In one alternative embodiment: the third buffer mechanism includes a second telescopic sleeve, which is fixedly installed inside the base. A second telescopic rod is slidably installed inside the second telescopic sleeve. A sealing gasket is fixedly installed at the bottom end of the second telescopic rod inside the second telescopic sleeve. A second spring is fixedly installed at the bottom inside the second telescopic sleeve, and the top end of the second spring is fixedly installed with the sealing gasket. An air hole is provided on the outside of the second telescopic sleeve. The top end of the second telescopic rod is fixedly installed with the bottom of the mounting plate.

[0012] In one alternative: the fourth buffer mechanism includes two third springs, which are fixedly installed inside the mounting groove. One end of each of the two third springs is fixedly installed with a buffer block, which is slidably installed inside the mounting groove.

[0013] In one alternative: the outer side of the buffer block is chamfered, and the buffer block is made of rubber.

[0014] Compared with the prior art, the beneficial effects of this utility model are as follows: 1. This utility model, through the cooperation of the first buffer mechanism, the second buffer mechanism, the third buffer mechanism and the fourth buffer mechanism, enables the component to have multiple buffer functions, effectively reducing the vibration generated during the operation of electromechanical equipment, thereby reducing noise and improving practicality.

[0015] 2. The air pump of this utility model can control the shock absorption effect of the component by introducing or expelling air from the first telescopic sleeve through the connecting pipe, and can be easily adjusted according to actual usage needs. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model.

[0017] Figure 2 This is a schematic diagram of the internal structure of the base of this utility model.

[0018] Figure 3 This is a schematic diagram of the first buffer mechanism of this utility model.

[0019] Figure 4 This is a schematic diagram of the third buffer mechanism of this utility model.

[0020] Figure 5 This utility model Figure 2 Enlarged structural diagram at point A in the middle.

[0021] Figure reference numerals: 1. Base; 2. Mounting block; 3. First buffer mechanism; 31. Fixing plate; 32. Slide rod; 33. Moving block; 34. First spring; 35. First fixed seat; 36. Connecting rod; 37. Second fixed seat; 4. Mounting plate; 5. Slide groove; 6. Second buffer mechanism; 61. First telescopic sleeve; 62. First telescopic rod; 63. Air pump; 64. Connecting pipe; 7. Third buffer mechanism; 71. Second telescopic sleeve; 72. Second telescopic rod; 73. Sealing gasket; 74. Second spring; 75. Air hole; 8. Mounting groove; 9. Third spring; 10. Buffer block. Detailed Implementation

[0022] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments.

[0023] In one embodiment, such as Figures 1-5 As shown, a high-efficiency vibration reduction and noise reduction component for building installation electromechanical equipment with digital control includes a base 1. Mounting blocks 2 are fixedly installed on both sides of the outer side of the base 1. Two first buffer mechanisms 3 are installed inside the base 1. Mounting plates 4 are installed on the top of the two first buffer mechanisms 3. A third buffer mechanism 7 is installed at each of the four corners inside the base 1, and a second buffer mechanism 6 is installed between the two first buffer mechanisms 3. A mounting groove 8 is opened on each of the four sides inside the base 1, and a fourth buffer mechanism is installed inside the mounting groove 8.

[0024] In this embodiment, the electromechanical equipment is installed on the top of the mounting plate 4. Through the cooperation of the first buffer mechanism 3, the second buffer mechanism 6, the third buffer mechanism 7 and the fourth buffer mechanism, the component has multiple buffer functions, which effectively reduces the vibration generated when the electromechanical equipment is working, thereby reducing noise and improving practicality.

[0025] In one embodiment, such as Figure 2 and Figure 3 As shown, the first buffer mechanism 3 includes two fixed plates 31, both of which are fixedly installed inside the base 1. Two sliding rods 32 are fixedly installed between the two fixed plates 31. Moving blocks 33 are slidably installed on the outside of the two sliding rods 32. A first spring 34 is sleeved on the outside of each sliding rod 32 and on one side of the moving block 33. A connecting assembly is installed on the top of the moving block 33. The connecting assembly includes two first fixed seats 35, both of which are fixedly installed on the top of the moving block 33. The interiors of the two first fixed seats 35 are rotated via pins. The mounting plate 4 is equipped with connecting rods 36. One end of each connecting rod 36 is rotatably mounted with a second fixed seat 37 via a pin. Both second fixed seats 37 are fixedly mounted on the bottom of the mounting plate 4. The bottom of the base 1 is provided with a sliding groove 5. The first buffer mechanism 3 is slidably mounted with the base 1 through the sliding groove 5. When the electromechanical equipment vibrates, the mounting plate 4 moves up and down inside the base 1. Due to the cooperation of the second fixed seat 37, connecting rods 36 and first fixed seat 35, the moving block 33 moves left and right. During this process, the first spring 34 is continuously compressed and reset, thereby playing a role in shock absorption.

[0026] In one embodiment, such as Figure 2 and Figure 3 As shown, the second buffer mechanism 6 includes a first telescopic sleeve 61 and two first telescopic rods 62. The first telescopic sleeve 61 is fixedly installed at the bottom inside the base 1. The two first telescopic rods 62 are slidably installed with the first telescopic sleeve 61, and a sealing ring is provided between the first telescopic sleeve 61 and the first telescopic rods 62. One end of each of the two first telescopic rods 62 passes through the fixed plate 31 and is fixedly installed with two moving blocks 33. A connecting pipe 64 is fixedly installed on the outside of the first telescopic sleeve 61. An air pump 63 is fixedly installed at one end of the connecting pipe 64 and is fixedly installed inside the base 1. During the movement of the two moving blocks 33, the two first telescopic rods 62 slide inside the first telescopic sleeve 61. Since the first telescopic sleeve 61 is completely sealed, it plays a damping role. When the air pump 63 works, air is introduced or discharged from the first telescopic sleeve 61 through the connecting pipe 64, which can control the shock absorption effect of the component and facilitate adjustment according to actual usage needs.

[0027] In one embodiment, such as Figure 2 and Figure 4 As shown, the third buffer mechanism 7 includes a second telescopic sleeve 71, which is fixedly installed inside the base 1. A second telescopic rod 72 is slidably installed inside the second telescopic sleeve 71. A sealing gasket 73 is fixedly installed at the bottom of the second telescopic rod 72 inside the second telescopic sleeve 71. A second spring 74 is fixedly installed at the bottom inside the second telescopic sleeve 71, and the top of the second spring 74 is fixedly installed with the sealing gasket 73. An air hole 75 is provided on the outside of the second telescopic sleeve 71. The top of the second telescopic rod 72 is fixedly installed with the bottom of the mounting plate 4. During the up-and-down movement of the mounting plate 4, the second telescopic rod 72 is driven to slide back and forth inside the second telescopic sleeve 71. During this process, the second spring 74 is continuously compressed and reset, which plays a role in shock absorption. The air inside the second telescopic sleeve 71 can only enter or exit through the air hole 75, which plays a role in air damping and improves the stability of shock absorption.

[0028] In one embodiment, such as Figure 2 and Figure 5 As shown, the fourth buffer mechanism includes two third springs 9, which are fixedly installed inside the mounting groove 8. A buffer block 10 is fixedly installed at one end of each of the two third springs 9, and the buffer block 10 is slidably installed inside the mounting groove 8. A chamfer is provided on one side of the outer side of the buffer block 10, and the buffer block 10 is made of rubber. Due to the chamfer, when the mounting plate 4 moves up and down, the mounting plate 4 squeezes the buffer block 10, causing the buffer block 10 to move into the mounting groove 8. The third springs 9 are compressed, further reducing shock and improving the shock absorption effect of the component.

[0029] The above embodiments disclose a high-efficiency vibration damping and noise reduction component for building installation with intelligent control of electromechanical equipment. The electromechanical equipment is installed on top of the mounting plate 4. When the equipment vibrates, the mounting plate 4 moves up and down inside the base 1. Due to the cooperation of the second fixed seat 37, the connecting rod 36, and the first fixed seat 35, the moving block 33 moves left and right. During this process, the first spring 34 is continuously compressed and reset, thus achieving vibration damping. As the two moving blocks 33 move, they drive the two first telescopic rods 62 to slide inside the first telescopic sleeve 61. Since the first telescopic sleeve 61 is completely sealed, it provides damping. The air pump 63 operates, introducing or expelling air from the first telescopic sleeve 61 through the connecting pipe 64. This allows control of the component's vibration damping effect, facilitating adjustment according to actual usage requirements.

[0030] During the up-and-down movement of the mounting plate 4, the second telescopic rod 72 slides back and forth inside the second telescopic sleeve 71. During this process, the second spring 74 is continuously compressed and reset, which plays a role in shock absorption. The air inside the second telescopic sleeve 71 can only enter or exit through the air hole 75, which plays a role in air damping and improves the stability of shock absorption. Due to the chamfer setting, when the mounting plate 4 moves up and down, the mounting plate 4 squeezes the buffer block 10, and the buffer block 10 moves into the mounting groove 8. The third spring 9 is compressed, which further plays a role in shock absorption and improves the shock absorption effect of the component.

[0031] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.

Claims

1. A high-efficiency vibration reduction and noise reduction component for building installation electromechanical equipment with digital control, including a base (1), wherein mounting blocks (2) are fixedly installed on both sides of the base (1), and two first buffer mechanisms (3) are installed inside the base (1), and mounting plates (4) are installed on the top of the two first buffer mechanisms (3); characterized in that A third buffer mechanism (7) is installed at each of the four corners inside the base (1), and a second buffer mechanism (6) is installed between the two first buffer mechanisms (3). An installation groove (8) is opened on each of the four sides inside the base (1), and a fourth buffer mechanism is installed inside the installation groove (8).

2. The high efficient shock-absorbing and noise-reducing assembly of the digitally regulated electromechanical equipment for building installation according to claim 1, characterized in that, The first buffer mechanism (3) includes two fixed plates (31), both of which are fixedly installed inside the base (1). Two slide rods (32) are fixedly installed between the two fixed plates (31). A moving block (33) is slidably installed on the outside of the two slide rods (32). A first spring (34) is sleeved on the outside of the slide rods (32) and on one side of the moving block (33). A connecting component is installed on the top of the moving block (33).

3. The high efficient shock-absorbing and noise-reducing assembly of the digitally regulated electromechanical equipment for building installation according to claim 2, characterized in that, The connecting assembly includes two first fixing seats (35), both of which are fixedly installed on the top of the movable block (33). A connecting rod (36) is rotatably installed inside each of the two first fixing seats (35) via a pin. A second fixing seat (37) is rotatably installed at one end of each of the two connecting rods (36) via a pin. Both second fixing seats (37) are fixedly installed at the bottom of the mounting plate (4).

4. The high efficient shock-absorbing and noise-reducing assembly of the digitally regulated electromechanical equipment for building installation according to claim 2, characterized in that, The bottom of the base (1) is provided with a sliding groove (5), and the first buffer mechanism (3) is slidably installed with the base (1) through the sliding groove (5).

5. The high efficient shock-absorbing and noise-reducing assembly of the digitally regulated electromechanical equipment for building installation according to claim 2, characterized in that, The second buffer mechanism (6) includes a first telescopic sleeve (61) and two first telescopic rods (62). The first telescopic sleeve (61) is fixedly installed at the bottom inside the base (1). The two first telescopic rods (62) are slidably installed with the first telescopic sleeve (61). A sealing ring is provided between the first telescopic sleeve (61) and the first telescopic rods (62). One end of each of the two first telescopic rods (62) passes through the fixing plate (31) and is fixedly installed with two moving blocks (33). A connecting pipe (64) is fixedly installed on the outside of the first telescopic sleeve (61). An air pump (63) is fixedly installed at one end of the connecting pipe (64), and the air pump (63) is fixedly installed inside the base (1).

6. The digitally regulated, electromechanical equipment high-efficiency shock-absorbing and noise-reducing assembly for architectural installations of claim 1, wherein, The third buffer mechanism (7) includes a second telescopic sleeve (71), which is fixedly installed inside the base (1). A second telescopic rod (72) is slidably installed inside the second telescopic sleeve (71). A sealing gasket (73) is fixedly installed at the bottom of the second telescopic rod (72) inside the second telescopic sleeve (71). A second spring (74) is fixedly installed at the bottom inside the second telescopic sleeve (71), and the top of the second spring (74) is fixedly installed with the sealing gasket (73). An air hole (75) is opened on the outside of the second telescopic sleeve (71). The top of the second telescopic rod (72) is fixedly installed with the bottom of the mounting plate (4).

7. The digitally regulated, electromechanical equipment high-efficiency shock-absorbing and noise-reducing assembly for architectural installations of claim 1, wherein, The fourth buffer mechanism includes two third springs (9), which are fixedly installed inside the mounting groove (8). A buffer block (10) is fixedly installed at one end of each of the two third springs (9), and the buffer block (10) is slidably installed inside the mounting groove (8).

8. The digitally regulated, electromechanical equipment high-efficiency shock-absorbing and noise-reducing assembly for building installations according to claim 7, characterized in that, The buffer block (10) has a chamfer on one side of its outer side, and the buffer block (10) is made of rubber.