Vibration reduction structure and air conditioning unit with same

By designing a movable vibration-absorbing assembly and the base, the problem of separate transportation of central air-conditioning vibration isolators is solved, achieving the effect of simplifying transportation and speeding up installation.

CN223270507UActive Publication Date: 2025-08-26GREE ELECTRIC APPLIANCE INC OF ZHUHAI
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422663631.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-01
Publication Date
2025-08-26
Estimated Expiration
2034-11-01

AI Technical Summary

Technical Problem

Existing central air-conditioning vibration isolators need to be packaged separately during transportation, resulting in increased installation complexity, reduced efficiency and risk of damage, and increased transportation costs.

Method used

A vibration-absorbing structure is designed, including a movable vibration-absorbing assembly and a base, which can be switched between a support position and a withdrawal position, and is in a withdrawal position during transportation to be packaged simultaneously, and after reaching the customer, it switches to a support position for installation.

Benefits of technology

Simplify the transportation process, reduce damage risk and transportation costs, shorten installation time, and improve installation efficiency and product reliability.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223270507U_ABST
    Figure CN223270507U_ABST
Patent Text Reader

Abstract

The utility model provides a vibration damping structure and an air conditioning unit with the vibration damping structure, the vibration damping structure is used for supporting and damping vibration source equipment, the vibration damping structure comprises a base and a vibration damping assembly, and the base extends along a preset direction; the vibration reduction assembly is connected with the base, and the vibration reduction assembly is movably arranged relative to the base; the vibration reduction assembly has a supporting position and an avoiding position. When the vibration reduction assembly is located at the supporting position, the vibration reduction assembly is located below the base, so that the vibration source equipment is supported through the vibration reduction assembly; when the vibration reduction assembly is located at the avoiding position, the vibration reduction assembly is located on one side of the base so that the vibration reduction assembly can be unloaded. The vibration reduction structure effectively solves the technical problem that in the prior art, when a central air conditioner finished product is sent to a client location, vibration isolators need to be independently packaged and transported.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of air-conditioning installation, in particular to a vibration reduction structure and an air-conditioning unit having the same. Background Art

[0002] Central air conditioning unit base vibration isolators are designed specifically for central air conditioning systems. They are typically installed below the unit base, perpendicular to the mounting base. Their primary function is to reduce the impact of vibrations generated by the unit during operation on the building structure, while also helping to improve the system's operating efficiency and extend its service life.

[0003] Currently, existing vibration isolators, once installed on the base, are fixed to the base, making packaging and transporting finished central air conditioners difficult. Furthermore, wear and tear can occur during transportation, damaging the isolators. Therefore, when shipping finished central air conditioners to the customer's location, the isolators are often packaged and shipped separately. Upon arrival at the customer's location, the isolators must first be hoisted onto the air conditioner unit before proceeding with subsequent installation steps. This practice not only increases the complexity and risk of after-sales installation, but also reduces installation efficiency and increases the installer's working hours. Utility Model Content

[0004] The purpose of the present invention is to overcome the above technical deficiencies and provide a vibration reduction structure and an air-conditioning unit having the same, so as to solve the technical problem in the prior art that when the finished central air-conditioning product is sent to the customer's location, the vibration isolator needs to be packaged and transported separately.

[0005] In order to achieve the above technical objectives, according to one aspect of the utility model: a vibration damping structure is provided, which is used to support and reduce vibration of a vibration source device, and the vibration damping structure includes: a base and a vibration damping assembly, the base extends along a preset direction; the vibration damping assembly is connected to the base, and the vibration damping assembly is movably arranged relative to the base; the vibration damping assembly has a supporting position and an avoidance position; wherein, when the vibration damping assembly is in the supporting position, the vibration damping assembly is located below the base to support the vibration source device through the vibration damping assembly; when the vibration damping assembly is in the avoidance position, the vibration damping assembly is located at one side of the base to unload the vibration damping assembly.

[0006] Furthermore, a mounting groove is provided on the base, and the mounting groove extends along the extension direction of the base; the vibration damping structure also includes: an adjustment component, which is arranged in the mounting groove, and at least part of the adjustment component is rotatably arranged relative to the base; the adjustment component is connected to the vibration damping component, so that the vibration damping component can be adjusted to a supporting position or an avoidance position through the adjustment component.

[0007] Furthermore, the adjustment assembly includes: an adjustment member and a rotating shaft, the adjustment member is rotatably arranged in the installation groove, and the adjustment member is connected to the vibration damping assembly so that the vibration damping assembly can be driven to move through the adjustment member, so that the vibration damping assembly is located in the supporting position or the avoidance position; the rotating shaft is rotatably arranged in the installation groove, and the axis of the rotating shaft extends along the extension direction of the installation groove; the adjustment member is sleeved on the rotating shaft, and the adjustment member is relatively fixedly connected to the rotating shaft; so that the adjustment member is driven to rotate by rotating the rotating shaft.

[0008] Furthermore, the vibration reduction structure also includes: a first support member and a second support member, the first support member and the second support member are both installed in the installation groove, the first support member and the second support member are respectively located at the two ends of the rotating shaft, and the two ends of the rotating shaft are respectively rotatably inserted in the first support member and the second support member.

[0009] Furthermore, the bottom end of the base is provided with an avoidance groove connected to the mounting groove, and the avoidance groove extends along the width direction of the base; the connecting end of the vibration damping assembly passes through the avoidance groove and is connected to the adjustment assembly; when the adjustment assembly adjusts the vibration damping assembly to the supporting position or the avoidance position, the avoidance groove avoids at least part of the vibration damping assembly.

[0010] Furthermore, the vibration damping assembly includes: a vibration damping body and a connecting rod, the vibration damping body is used to support the vibration source equipment; the connecting rod is relatively fixedly connected to the vibration damping body, and the connecting rod protrudes from the top end of the vibration damping body; the connecting rod is away from one end of the vibration damping body to form a connecting end of the vibration damping assembly; the connecting rod is adjustably connected to the adjustment assembly to adjust the position of the vibration damping body relative to the base when the relative position between the connecting rod and the adjustment assembly is adjusted; wherein, when the vibration damping assembly is in the supporting position, the vibration damping body has a locked state and an unlocked state; when the vibration damping body is in the locked state, it moves toward the direction of the adjustment assembly through the connecting rod, driving the vibration damping body to move toward the direction of the base, so that the top end of the vibration damping body abuts against the bottom end of the base; when the vibration damping body is in the unlocked state, it moves toward the direction away from the adjustment assembly through the connecting rod, driving the vibration damping body to move toward the direction away from the base, so that the top end of the vibration damping body is separated from the bottom end of the base.

[0011] Furthermore, the vibration-damping structure further includes: a first locking member, which is disposed in the mounting groove and is used for locking connection with the adjustment assembly to fix the vibration-damping assembly at the avoidance position.

[0012] Furthermore, a first matching portion is provided on the adjustment assembly; the first locking member includes a fixing portion and a second matching portion, the fixing portion is installed on the inner wall of the mounting groove, and the second matching portion is arranged on a side of the fixing portion close to the adjustment assembly; when the vibration damping assembly is in the avoidance position, the first matching portion is hung and connected with the second matching portion.

[0013] Furthermore, the vibration-damping structure further includes: a second locking member, which is disposed in the mounting groove and is used to be locked in connection with the adjustment assembly to fix the vibration-damping assembly at the supporting position.

[0014] According to another aspect of the present invention: an air-conditioning unit is provided, including: an outdoor unit and a vibration damping structure, the vibration damping structure is the above-mentioned vibration damping structure, the vibration damping structure is installed at the bottom of the outdoor unit, the outdoor unit is set on the installation base through the vibration damping structure, and the vibration damping structure is used to support and reduce vibration of the outdoor unit.

[0015] Beneficial effects:

[0016] The present invention employs the technical solution of a vibration-damping structure, comprising a base and a vibration-damping assembly. The base extends in a predetermined direction and is mounted on the bottom of a vibration source device. The vibration-damping assembly is connected to the base and is movably mounted relative to the base. The vibration-damping assembly has a support position and a relief position. When in the support position, the vibration-damping assembly is located at the bottom of the base, allowing the vibration source device to be mounted on a mounting base via the vibration-damping assembly, thereby providing support for the vibration source device. During operation of the vibration source device, if vibration occurs, the vibration-damping assembly can also act as a vibration damper, reducing the impact of vibration generated by the vibration source device on the building structure. When in the relief position, the vibration-damping assembly is located to one side of the base, allowing the vibration-damping assembly to be unloaded, thereby reducing or eliminating the force exerted on the vibration-damping assembly. Thus, by designing the vibration-damping assembly to be movably mounted relative to the base, the vibration-damping assembly can be installed simultaneously with the base before transportation, enabling the vibration-damping assembly and base to be packaged and transported together, eliminating the need to package the vibration isolator separately. This simplifies the transportation and packaging process while reducing packaging materials and transportation costs. And when the vibration damping assembly is in the avoidance position, it can reduce or eliminate the force on the vibration damping assembly and reduce the space required for packaging the vibration source equipment and the vibration damping structure, thereby effectively reducing the risk of damage to the vibration damping assembly during transportation. At the same time, the vibration damping assembly is assembled with the base before transportation, so that after arriving at the customer's location, the vibration damping assembly only needs to be adjusted from the avoidance position to the support position to complete the installation. This process simplifies the installation steps, greatly shortens the installation time, and improves the installation efficiency. In addition, it can also reduce the after-sales problems caused by separately packaging the vibration damping assembly, further improving the reliability of the product and the trust of customers. The vibration damping structure effectively solves the technical problem in the prior art that the vibration isolators need to be separately packaged and transported when the finished central air-conditioning products are shipped to the customer's location. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 A schematic structural diagram of an embodiment of a vibration reduction structure according to the present utility model is shown;

[0018] Figure 2 A schematic structural diagram of the vibration reduction assembly in the embodiment of the vibration reduction structure according to the present utility model is shown when the vibration reduction assembly is in the avoidance position;

[0019] Figure 3 FIG1 shows a schematic structural diagram of the vibration reduction body in the embodiment of the vibration reduction structure according to the present utility model when the vibration reduction body is in a locked state;

[0020] Figure 4 A schematic structural diagram of the embodiment of the vibration reduction structure according to the present utility model is shown, with the vibration reduction component and the adjustment component removed.

[0021] The above drawings include the following reference numerals:

[0022] 1. Base; 10. Mounting slot; 11. Avoidance slot; 12. First side panel; 13. Second side panel; 14. Third side panel; 2. Vibration damping assembly; 21. Vibration damping body; 22. Connecting rod; 3. Adjustment assembly; 31. Adjustment member; 32. Rotation shaft; 4. First support member; 5. Second support member; 6. First locking member; 7. Second locking member. DETAILED DESCRIPTION

[0023] In order to enable those skilled in the art to better understand the present invention, the following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts should fall within the scope of protection of this application.

[0024] See also Figures 1 to 4 According to an embodiment of the utility model, the utility model provides a vibration reduction structure, which is used to support and reduce vibration of a vibration source device. The vibration reduction structure includes: a base 1 and a vibration reduction assembly 2, the base 1 extends along a preset direction; the vibration reduction assembly 2 is connected to the base 1, and the vibration reduction assembly 2 is movably arranged relative to the base 1; the vibration reduction assembly 2 has a supporting position and an avoidance position; wherein, when the vibration reduction assembly 2 is in the supporting position, the vibration reduction assembly 2 is located below the base 1 to support the vibration source device through the vibration reduction assembly 2; when the vibration reduction assembly 2 is in the avoidance position, the vibration reduction assembly 2 is located at one side of the base 1 to enable the vibration reduction assembly 2 to be unloaded.

[0025] It can be seen that the vibration reduction structure provided by the present invention is provided with a base 1 and a vibration reduction assembly 2. The base 1 extends along a preset direction, and the base 1 is used to be installed at the bottom of the vibration source device; the vibration reduction assembly 2 is connected to the base 1, and the vibration reduction assembly 2 is movably arranged relative to the base 1. The vibration reduction assembly 2 has a supporting position and an avoidance position. When the vibration reduction assembly 2 is in the supporting position, the vibration reduction assembly 2 is located at the bottom of the base 1, so that the vibration source device is installed on the installation base through the vibration reduction assembly 2, and then the vibration reduction assembly 2 provides support for the vibration source device; during the operation of the vibration source device, if vibration occurs, the vibration reduction assembly 2 can also play a vibration reduction role, reducing the impact of the vibration generated by the vibration source device during operation on the building structure. When the vibration reduction assembly 2 is in the avoidance position, the vibration reduction assembly 2 is located on one side of the base 1, so that the vibration reduction assembly 2 is unloaded, thereby reducing or eliminating the force on the vibration reduction assembly 2. As can be seen, by designing the vibration damping assembly 2 to be movable relative to the base 1, the vibration damping assembly 2 can be installed simultaneously with the base 1 before transportation. This allows for the vibration damping assembly 2 and base 1 to be packaged and transported together, eliminating the need to package the vibration isolator separately. This simplifies the transportation and packaging process while reducing packaging materials and transportation costs. Furthermore, when the vibration damping assembly 2 is in the avoidance position, the forces acting on the vibration damping assembly 2 are reduced or eliminated, and the space required to package the vibration source equipment and the vibration damping structure is reduced, effectively reducing the risk of damage to the vibration damping assembly 2 during transportation. Furthermore, by assembling the vibration damping assembly 2 with the base 1 before transportation, upon arrival at the customer's location, installation can be completed by simply adjusting the vibration damping assembly 2 from the avoidance position to the support position. This process simplifies the installation process, significantly shortens installation time, and improves installation efficiency. Furthermore, it reduces after-sales issues associated with separately packaging the vibration damping assembly 2, further enhancing product reliability and customer trust. This vibration damping structure effectively solves the technical problem of the prior art requiring the vibration isolator to be separately packaged and transported when shipping the finished central air conditioner to the customer's location.

[0026] The above-mentioned "when the vibration reduction assembly 2 is in the avoidance position, the vibration reduction assembly 2 is located at one side of the base 1, so that the vibration reduction assembly 2 is unloaded" can be understood as that when the vibration reduction assembly 2 is in the avoidance position, the vibration reduction assembly 2 moves relative to the base 1 and moves to one side of the base 1, so that the vibration reduction assembly 2 is no longer subjected to the direct action of the vibration source equipment or other external forces. In this way, the load applied to the vibration reduction assembly 2 is reduced or eliminated, thereby reducing the force acting on the vibration reduction assembly 2 to a minimum. This process realizes "unloading of force", which helps to protect the vibration reduction assembly 2, reduce wear and tear, and extend its service life.

[0027] Optionally, when the vibration reduction assembly 2 moves to one side of the base 1 , the bottom of the vibration reduction assembly 2 is suspended (ie, the bottom surface of the vibration reduction assembly 2 is facing upward), so that the vibration reduction assembly 2 is in a suspended state.

[0028] Optionally, when the vibration source device and the vibration reduction structure need to be sent to the customer's location, the base 1 needs to be connected to the vibration reduction assembly 2 first, and then the base 1 needs to be installed on the bottom of the vibration source device. When packaging is required, the vibration reduction assembly 2 is moved to one side of the base 1 so that the vibration reduction assembly 2 is in an avoidance position, thereby reducing the force acting on the vibration reduction assembly 2 to a minimum, thereby avoiding damage due to loading during transportation, and no longer needing to use a wooden box to separately pack the vibration reduction assembly 2. When the vibration source device and the vibration reduction structure arrive at the customer's location for installing the vibration source device, the vibration reduction assembly 2 is moved to the bottom of the base 1 so that the vibration reduction assembly 2 is in a supporting position to provide support for the vibration source device, so that the vibration source device is installed on the installation base through the vibration reduction assembly 2.

[0029] Optionally, the vibration reduction component 2 is a vibration isolator.

[0030] Specifically, if Figures 1 to 4 As shown, the base 1 is provided with a mounting slot 10 extending along the extension direction of the base 1. The vibration damping structure also includes an adjustment assembly 3, which is disposed within the mounting slot 10, with at least a portion of the adjustment assembly 3 rotatable relative to the base 1. The adjustment assembly 3 is connected to the vibration damping assembly 2 so that the vibration damping assembly 2 can be adjusted to a support position or a retreat position. With this structural arrangement, by providing the mounting slot 10 on the base 1 and disposing the adjustment assembly 3 within the mounting slot 10, the adjustment assembly 3 can rotate relative to the base 1, allowing the vibration damping assembly 2 to be flexibly adjusted between the support position and the retreat position to adapt to different working environments and requirements. Furthermore, by adjusting the position of the vibration damping assembly 2, the adjustment assembly 3 can effectively optimize the vibration damping performance of the vibration damping assembly 2, ensuring that the vibration damping assembly 2 provides sufficient support when needed and retreats when not needed, reducing damage to the vibration damping assembly 2 and extending its service life. Furthermore, the design of the adjustment assembly 3 enables effective adjustment within a limited space, avoiding the problem of insufficient vibration damping performance due to space constraints. In addition, arranging the adjustment component 3 in the installation groove 10 simplifies the installation process of the overall structure, facilitates maintenance and adjustment, and improves the convenience of use.

[0031] Optionally, the base 1 extends in a horizontal direction, and the mounting groove 10 is located at one side of the base 1 , and the mounting groove 10 is an open groove.

[0032] Furthermore, the base 1 includes a first side panel 12, a second side panel 13 and a third side panel 14 connected in sequence, the first side panel 12 and the third side panel 14 are arranged opposite to each other, and the first side panel 12 is located above the third side panel 14; the first side panel 12, the second side panel 13 and the third side panel 14 form an installation groove 10.

[0033] Optionally, the first side panel 12 forms the top of the base 1, and the third side panel 14 forms the bottom of the base 1. The first side panel 12 and the second side panel 13 are perpendicular to each other, and the second side panel 13 and the third side panel 14 are perpendicular to each other.

[0034] In this embodiment, Figures 1 to 4 As shown, the adjustment assembly 3 includes: an adjustment member 31 and a rotation shaft 32. The adjustment member 31 is rotatably disposed in the mounting groove 10 and connected to the vibration damping assembly 2. The adjustment member 31 drives the vibration damping assembly 2 to move, so that the vibration damping assembly 2 is positioned in the support position or the avoidance position. The rotation shaft 32 is rotatably disposed in the mounting groove 10, with the axis of the rotation shaft 32 extending along the extension direction of the mounting groove 10. The adjustment member 31 is sleeved on the rotation shaft 32, and the adjustment member 31 and the rotation shaft 32 are relatively fixedly connected. The adjustment member 31 is driven to rotate by rotating the rotation shaft 32. With this arrangement, by disposing the rotation shaft 32 in the mounting groove 10 and sleeved on the rotation shaft 32, the vibration damping assembly 2 can be adjusted. The rotation shaft 32 is rotatably disposed, which can drive the adjustment member 31 to rotate relative to the base 1, so that the vibration damping assembly 2 can be adjusted to the support position or the avoidance position according to the usage scenario. This improves the flexibility of the vibration damping structure, simplifies the installation steps, and improves installation efficiency.

[0035] Specifically, if Figures 1 to 4 As shown, the vibration reduction structure further includes: a first support member 4 and a second support member 5, both of which are mounted in the mounting groove 10. The first support member 4 and the second support member 5 are respectively located at both ends of the rotating shaft 32, and the two ends of the rotating shaft 32 are rotatably inserted in the first support member 4 and the second support member 5. With this structural arrangement, the rotating shaft 32 is disposed in the mounting groove 10 by arranging the first support member 4 and the second support member 5, and the rotating shaft 32 is then supported by the first support member 4 and the second support member 5.

[0036] Optionally, in addition to being fixedly connected to the rotating shaft 32, the adjusting member 31 can also rotate relative to the rotating shaft 32. When the adjusting member 31 is sleeved on the rotating shaft 32 and is rotatable about the axis of the rotating shaft 32, both ends of the rotating shaft 32 are inserted into the first support member 4 and the second support member 5, and the rotating shaft 32 is fixed relative to the first support member 4 and the second support member 5. Therefore, when the adjusting member 31 rotates about the axis of the rotating shaft 32, the vibration reduction assembly 2 is driven to move, so that the vibration reduction assembly 2 is located in the supporting position or the avoidance position.

[0037] Specifically, the bottom end of the base 1 is provided with an avoidance groove 11 connected to the installation groove 10, and the avoidance groove 11 extends along the width direction of the base 1; the connection end of the vibration damping assembly 2 passes through the avoidance groove 11 and is connected to the adjustment assembly 3; when the adjustment assembly 3 adjusts the vibration damping assembly 2 to the support position or the avoidance position, the avoidance groove 11 avoids at least part of the vibration damping assembly 2. With such a structural arrangement, by providing the avoidance groove 11 at the bottom of the base 1, the vibration damping assembly 2 can move unimpeded during the adjustment process, thereby saving installation space and improving the compactness of the overall structure. In addition, the vibration damping assembly 2 can be adjusted to the support position or the avoidance position at will according to the usage scenario, thereby achieving more flexible operation and adapting to different usage scenarios.

[0038] Furthermore, an avoidance groove 11 is provided on the third side plate 14 , and the connecting end of the vibration damping assembly 2 is connected to the adjusting member 31 .

[0039] Optionally, the avoidance groove 11 is an open groove, and the shape of the open groove is U-shaped.

[0040] In the prior art, the bottom of the base 1 only has a hole for the connection end of the vibration damping assembly 2. To facilitate the adjustment of the vibration damping assembly 2 to the supporting position or the avoidance position, the original hole is expanded. To compensate for the strength loss of the base 1 due to the avoidance groove 11, the first support member 4 and the second support member 5 are located on both sides of the avoidance groove 11 to compensate for the strength loss caused by the avoidance groove 11 and meet quality requirements.

[0041] Specifically, the vibration reduction assembly 2 includes: a vibration reduction body 21 and a connecting rod 22, the vibration reduction body 21 is used to support the vibration source equipment; the connecting rod 22 is relatively fixedly connected to the vibration reduction body 21, and the connecting rod 22 is protruded from the top end of the vibration reduction body 21; the connecting rod 22 is away from the end of the vibration reduction body 21 to form the connection end of the vibration reduction assembly 2; the connecting rod 22 is adjustably connected to the adjustment assembly 3, so that when the relative position between the connecting rod 22 and the adjustment assembly 3 is adjusted, the position of the vibration reduction body 21 relative to the base 1 is adjusted; wherein, when the vibration reduction assembly When the vibration damping assembly 2 is in the supporting position, the vibration damping body 21 has a locked state and an unlocked state. When the vibration damping body 21 is in the locked state, it moves toward the adjustment assembly 3 via the connecting rod 22, driving the vibration damping body 21 toward the base 1, causing the top end of the vibration damping body 21 to abut against the bottom end of the base 1. When the vibration damping body 21 is in the unlocked state, it moves away from the adjustment assembly 3 via the connecting rod 22, driving the vibration damping body 21 away from the base 1, causing the top end of the vibration damping body 21 to separate from the bottom end of the base 1. With this structural arrangement, the position of the vibration damping body 21 relative to the base 1 can be adjusted through the adjustable connection between the connecting rod 22 and the adjustment assembly 3. This allows the vibration damping body 21 to be switched between different states according to actual conditions when the vibration damping assembly 2 is in the supporting position. Furthermore, the adjustable connection between the connecting rod 22 and the adjustment assembly 3 allows the vibration damping body 21 to effectively and directly move toward the base 1 in the locked state, ensuring that the vibration source device is supported in a stable and secure manner. This structural design ensures the support strength and stability of the vibration-damping assembly 2, effectively reducing the impact of vibration on the equipment. Since the top of the vibration-damping body 21 is firmly in contact with the bottom of the base 1 in the locked state, it helps prevent accidental movement of the equipment due to vibration during operation, thereby enhancing the safety and reliability of the equipment. In addition, the vibration-damping body 21 can be moved away from the base 1 in the unlocked state, thereby increasing the distance between the vibration-damping body 21 and the base 1, providing sufficient space for the operator, avoiding interference, reducing the complexity of operation, and improving the overall comfort of use, thereby facilitating the switching of the vibration-damping assembly 2 from the support position to the avoidance position.

[0042] Furthermore, the connecting rod 22 is connected to the adjusting member 31 in an adjustable manner.

[0043] Furthermore, the connecting rod 22 is provided with external threads, and the bottom of the adjusting member 31 is provided with an internally threaded hole that matches the external threads on the connecting rod 22. The internally threaded hole extends along the height direction of the adjusting member 31. The connecting rod 22 is threadedly connected to the adjusting member 31. The threaded connection between the connecting rod 22 and the adjusting member 31 allows the relative position of the connecting rod 22 and the adjusting member 31 to be adjusted (i.e., the position of the connecting rod 22 relative to the adjusting member 31).

[0044] Optionally, the connecting rod 22 is a bolt.

[0045] In this embodiment, if Figures 1 to 4 As shown, the vibration damping structure also includes: a first locking member 6, which is arranged in the installation groove 10, and the first locking member 6 is used to lock the adjustment component 3 to fix the vibration damping component 2 in the avoidance position. With such a structural setting, the first locking member 6 can be locked with the adjustment component 3 when the vibration damping component 2 is in the avoidance position, thereby effectively fixing the vibration damping component 2. This design can prevent the adjustment component 3 from accidentally causing the vibration damping component 2 to move due to external factors, thereby ensuring the stability of the system. At the same time, it can also prevent the vibration damping component 2 from returning to the support position due to accidental touch or improper operation during operation, thereby reducing potential risks and equipment damage. In addition, during transportation, the locking mechanism can also prevent the vibration damping component 2 from being damaged due to load, further improving the safety and reliability of the equipment.

[0046] The first embodiment of the locking connection between the first locking member 6 and the adjusting assembly 3 provided by the present invention is as follows: the first locking member 6 is a first positioning magnet, and the adjusting member 31 of the adjusting assembly 3 is made of metal material. When the adjusting member 31 drives the vibration damping assembly 2 to rotate to the avoidance position, the adjusting member 31 is magnetically connected to the first locking member 6 (that is, the adjusting member 31 is attracted by the first positioning magnet), thereby fixing the vibration damping assembly 2 in the avoidance position.

[0047] Furthermore, the first locking member 6 is located at the bottom of the mounting groove 10, and the first locking member 6 is located on one side of the adjusting member 31. When the adjusting member 31 adjusts the vibration damping assembly 2 to the avoidance position, the end of the adjusting member 31 away from the vibration damping assembly 2 is locked and connected to the first locking member 6 (that is, the end of the adjusting member 31 away from the vibration damping assembly 2 is magnetically connected to the first locking member 6).

[0048] Optionally, when the vibration damping assembly 2 needs to be switched from the avoidance position to the support position, the first locking member 6 (ie, the first positioning magnet) can be separated from the adjusting member 31 externally.

[0049] The second embodiment of the locking connection between the first locking member 6 and the adjusting assembly 3 provided by the present invention is: a first matching portion is provided on the adjusting assembly 3; the first locking member 6 includes a fixing portion and a second matching portion, the fixing portion is installed on the inner wall of the mounting groove 10, and the second matching portion is arranged on a side of the fixing portion close to the adjusting assembly 3; when the vibration damping assembly 2 is in the avoidance position, the first matching portion and the second matching portion are hung and connected.

[0050] Furthermore, the first locking member 6 is located at the bottom of the mounting groove 10 and on one side of the adjusting member 31. Specifically, the fixing portion of the first locking member 6 is disposed on the bottom wall of the mounting groove 10, and the fixing portion of the first locking member 6 protrudes from the bottom wall of the mounting groove 10. The second mating portion of the first locking member 6 is disposed on a side of the fixing portion of the first locking member 6 that is proximate to the adjusting member 31. The first mating portion is disposed on a side of the adjusting member 31 that is proximate to the fixing portion of the first locking member 6. When the vibration damping assembly 2 is in the avoidance position, the first mating portion is connected to the second mating portion.

[0051] Alternatively, the fixing portion of the first locking member 6 is a square iron block, the first mating portion is a first hook, and the second mating portion is a circular ring, so that the first hook is hung on the circular ring to fix the vibration damping assembly 2 in the avoidance position. Alternatively, the first mating portion is a first hook, and the second mating portion is a second hook, and the vibration damping assembly 2 is fixed in the avoidance position by hanging and connecting the first hook and the second hook.

[0052] Specifically, if Figures 1 to 4 As shown, the vibration damping structure also includes: a second locking member 7, the second locking member 7 is arranged in the installation groove 10, and the second locking member 7 is used to lock and connect with the adjustment assembly 3 to fix the vibration damping assembly 2 in the support position. With such a structural arrangement, the first locking member 6 is arranged to lock and connect with the adjustment assembly 3 when the vibration damping assembly 2 is in the support position, thereby effectively fixing the vibration damping assembly 2. This design can prevent the adjustment assembly 3 from accidentally causing the vibration damping assembly 2 to move due to external factors, and ensure that the adjustment assembly 3 remains fixed when the vibration damping assembly 2 is in the support state, thereby improving the reliability of the overall operation and reducing problems that arise during maintenance and operation. By effectively fixing the vibration damping assembly 2, the supporting force of the vibration damping assembly 2 can be improved, and the noise and vibration during the operation of the vibration source equipment can be further reduced, creating a better working environment.

[0053] Furthermore, the second locking member 7 is a second positioning magnet, and the adjusting member 31 of the adjusting assembly 3 is made of metal material. When the adjusting member 31 drives the vibration reduction assembly 2 to rotate to the supporting position, the adjusting member 31 is magnetically connected to the second locking member 7 (that is, the adjusting member 31 is attracted by the second positioning magnet), thereby fixing the vibration reduction assembly 2 in the supporting position.

[0054] Furthermore, the second locking member 7 is located at the top of the mounting groove 10, and the second locking member 7 is located on one side of the adjusting member 31. When the adjusting member 31 adjusts the vibration damping assembly 2 to the supporting position, the end of the adjusting member 31 away from the vibration damping assembly 2 is locked and connected to the second locking member 7 (that is, the end of the adjusting member 31 away from the vibration damping assembly 2 is magnetically connected to the second locking member 7).

[0055] Optionally, when the vibration damping assembly 2 needs to be switched from the supporting position to the avoiding position, the second locking member 7 (ie, the second positioning magnet) can be separated from the adjusting member 31 externally.

[0056] Furthermore, there are multiple adjustment components 3, and the multiple adjustment components 3 are arranged at intervals along the extension direction of the installation groove 10. There are multiple vibration damping components 2, and the multiple adjustment components 3 are arranged in a one-to-one correspondence with the multiple vibration damping components 2.

[0057] Optionally, the assembly process of the vibration damping structure and the position switching process of the vibration damping component 2 are as follows:

[0058] When the vibration source device needs to be shipped to the customer's location, before packaging, the adjustment assembly 3 is first installed in the installation slot 10 of the base 1. Then, the vibration reduction body 21 is connected to the adjustment member 31 via the connecting rod. At this time, the vibration reduction assembly 2 is in the supporting position, and the vibration reduction body 21 and the bottom of the base 1 are at a distance that facilitates the adjustment of the position of the vibration reduction body 21. After the vibration reduction assembly 2 and the base 1 are connected, the base 1 is installed on the vibration source device.

[0059] Then, the adjustment member 31 of the adjustment assembly 3 rotates to drive the vibration reduction assembly 2 to move from the supporting position to the avoidance position. The first locking member 6 is then locked with the adjustment member 31 to secure the vibration reduction assembly 2 in the avoidance position. After the adjustment is completed, the packaging process can be carried out.

[0060] When the vibration source equipment with the vibration reduction structure installed arrives at the customer's location and needs to be installed, first separate the adjustment member 31 from the first locking member 6, then rotate the adjustment member 31 of the adjustment assembly 3 to drive the vibration reduction assembly 2 to move, so as to switch the vibration reduction assembly 2 from the avoidance position to the support position, and then lock the connection with the adjustment member 31 through the second locking member 7, so as to fix the vibration reduction assembly 2 in the support position. Finally, by rotating the connecting rod 22 with an external thread, the vibration reduction body 21 is driven to move toward the bottom of the base 1 until the bottom end of the base 1 abuts against the top end of the vibration reduction body 21, so that the vibration reduction body 21 is in a locked state. Then, the vibration source equipment is installed on the installation base through the vibration reduction structure.

[0061] The present invention provides an air conditioning unit, comprising: an outdoor unit and a vibration-damping structure, wherein the vibration-damping structure is the vibration-damping structure of the above-described embodiment, and is mounted on the bottom of the outdoor unit. The outdoor unit is mounted on a mounting base via the vibration-damping structure, and the vibration-damping structure is used to support and reduce vibration of the outdoor unit. By adopting such a structural arrangement, the vibration-damping structure provided at the bottom of the outdoor unit can provide support and vibration reduction for the outdoor unit.

[0062] Furthermore, there are multiple vibration damping structures, and the multiple vibration damping structures are evenly spaced along a preset direction.

[0063] The utility model provides a vibration reduction structure, which is used to support and reduce vibration of a vibration source device. The vibration reduction structure includes: a base 1 and a vibration reduction assembly 2, the base 1 extends along a preset direction; the vibration reduction assembly 2 is connected to the base 1, and the vibration reduction assembly 2 is movably arranged relative to the base 1; the vibration reduction assembly 2 has a supporting position and an avoidance position; wherein, when the vibration reduction assembly 2 is in the supporting position, the vibration reduction assembly 2 is located below the base 1 to support the vibration source device through the vibration reduction assembly 2; when the vibration reduction assembly 2 is in the avoidance position, the vibration reduction assembly 2 is located at one side of the base 1 to enable the vibration reduction assembly 2 to be unloaded.

[0064] It can be seen that the vibration reduction structure provided by the present invention is provided with a base 1 and a vibration reduction assembly 2. The base 1 extends along a preset direction, and the base 1 is used to be installed at the bottom of the vibration source device; the vibration reduction assembly 2 is connected to the base 1, and the vibration reduction assembly 2 is movably arranged relative to the base 1. The vibration reduction assembly 2 has a supporting position and an avoidance position. When the vibration reduction assembly 2 is in the supporting position, the vibration reduction assembly 2 is located at the bottom of the base 1, so that the vibration source device is installed on the installation base through the vibration reduction assembly 2, and then the vibration reduction assembly 2 provides support for the vibration source device; during the operation of the vibration source device, if vibration occurs, the vibration reduction assembly 2 can also play a vibration reduction role, reducing the impact of the vibration generated by the vibration source device during operation on the building structure. When the vibration reduction assembly 2 is in the avoidance position, the vibration reduction assembly 2 is located on one side of the base 1, so that the vibration reduction assembly 2 is unloaded, thereby reducing or eliminating the force on the vibration reduction assembly 2. As can be seen, by designing the vibration damping assembly 2 to be movable relative to the base 1, the vibration damping assembly 2 can be installed simultaneously with the base 1 before transportation. This allows for the vibration damping assembly 2 and base 1 to be packaged and transported together, eliminating the need to package the vibration isolator separately. This simplifies the transportation and packaging process while reducing packaging materials and transportation costs. Furthermore, when the vibration damping assembly 2 is in the avoidance position, the forces acting on the vibration damping assembly 2 are reduced or eliminated, and the space required to package the vibration source equipment and the vibration damping structure is reduced, effectively reducing the risk of damage to the vibration damping assembly 2 during transportation. Furthermore, by assembling the vibration damping assembly 2 with the base 1 before transportation, upon arrival at the customer's location, installation can be completed by simply adjusting the vibration damping assembly 2 from the avoidance position to the support position. This process simplifies the installation process, significantly shortens installation time, and improves installation efficiency. Furthermore, it reduces after-sales issues associated with separately packaging the vibration damping assembly 2, further enhancing product reliability and customer trust. This vibration damping structure effectively solves the technical problem of the prior art requiring the vibration isolator to be separately packaged and transported when shipping the finished central air conditioner to the customer's location.

[0065] It should be noted that the terms "first", "second", etc. in the specification and claims of the present application and the above-mentioned drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or sequential order. It should be understood that the data used in this way can be interchangeable where appropriate, so that the embodiments of the present application described herein can be implemented in a sequence other than those illustrated or described herein. In addition, the terms "including" and "having" and any of their variations are intended to cover non-exclusive inclusions, for example, a process, method, system, product or device comprising a series of steps or units is not necessarily limited to those steps or units clearly listed, but may include other steps or units that are not clearly listed or inherent to these processes, methods, products or devices.

[0066] Optionally, the specific examples in this embodiment may refer to the examples described in the above embodiments, and this embodiment will not be described in detail here.

[0067] The serial numbers of the above embodiments of the present application are for description only and do not represent the advantages or disadvantages of the embodiments.

[0068] In the above embodiments of the present application, the description of each embodiment has its own focus. For parts that are not described in detail in a certain embodiment, please refer to the relevant description of other embodiments.

[0069] The above is only a preferred embodiment of the present application. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present application. These improvements and modifications should also be regarded as the scope of protection of the present application.

Claims

1. A vibration reduction structure, which is used to support and reduce vibration of a vibration source device, characterized in that: The vibration reduction structure comprises: A base (1), the base (1) extending along a preset direction; A vibration damping component (2) is connected to the base (1), and the vibration damping component (2) is movably arranged relative to the base (1); the vibration damping component (2) has a supporting position and an avoidance position; Wherein, when the vibration reduction assembly (2) is in the supporting position, the vibration reduction assembly (2) is located below the base (1) so as to support the vibration source equipment through the vibration reduction assembly (2); when the vibration reduction assembly (2) is in the avoiding position, the vibration reduction assembly (2) is located at one side of the base (1) so as to unload the vibration reduction assembly (2).

2. The vibration damping structure according to claim 1, characterized in that: The base (1) is provided with a mounting groove (10), and the mounting groove (10) extends along the extension direction of the base (1); the vibration reduction structure further comprises: An adjustment component (3) is arranged in the mounting groove (10), and at least a portion of the adjustment component (3) is rotatably arranged relative to the base (1); the adjustment component (3) is connected to the vibration reduction component (2) so as to adjust the vibration reduction component (2) to the supporting position or the avoidance position through the adjustment component (3).

3. The vibration damping structure according to claim 2, characterized in that: The regulating component (3) comprises: an adjusting member (31), the adjusting member (31) being rotatably disposed in the mounting groove (10), the adjusting member (31) being connected to the vibration damping assembly (2), so as to drive the vibration damping assembly (2) to move via the adjusting member (31), so that the vibration damping assembly (2) is located at the supporting position or the avoiding position; A rotating shaft (32) is rotatably disposed in the mounting groove (10), and an axis of the rotating shaft (32) extends along an extension direction of the mounting groove (10); the adjusting member (31) is sleeved on the rotating shaft (32), and the adjusting member (31) and the rotating shaft (32) are relatively fixedly connected; the adjusting member (31) is driven to rotate by rotating the rotating shaft (32).

4. The vibration damping structure according to claim 3, characterized in that: The vibration reduction structure further comprises: a first support member (4) and a second support member (5), wherein the first support member (4) and the second support member (5) are both mounted in the mounting groove (10), the first support member (4) and the second support member (5) are respectively located at two ends of the rotating shaft (32), and the two ends of the rotating shaft (32) are respectively rotatably inserted in the first support member (4) and the second support member (5).

5. The vibration damping structure according to claim 2, characterized in that: The bottom end of the base (1) is provided with a relief groove (11) connected to the mounting groove (10), and the relief groove (11) extends along the width direction of the base (1); the connection end of the vibration damping component (2) passes through the relief groove (11) and is connected to the adjustment component (3); when the adjustment component (3) adjusts the vibration damping component (2) to the supporting position or the relief position, the relief groove (11) avoids at least part of the vibration damping component (2).

6. The vibration damping structure according to claim 5, characterized in that: The vibration reduction assembly (2) comprises: A vibration-damping body (21), wherein the vibration-damping body (21) is used to support the vibration source equipment; a connecting rod (22), the connecting rod (22) being relatively fixedly connected to the vibration-damping body (21), and the connecting rod (22) being arranged to protrude from the top end of the vibration-damping body (21); an end of the connecting rod (22) being away from the vibration-damping body (21) to form a connecting end of the vibration-damping assembly (2); the connecting rod (22) being adjustably connected to the adjusting assembly (3), so that when the relative position between the connecting rod (22) and the adjusting assembly (3) is adjusted, the position of the vibration-damping body (21) relative to the base (1) is adjusted; When the vibration damping assembly (2) is in the supporting position, the vibration damping body (21) has a locked state and an unlocked state; when the vibration damping body (21) is in the locked state, the vibration damping body (21) is moved toward the adjustment assembly (3) through the connecting rod (22), driving the vibration damping body (21) to move toward the base (1), so that the top end of the vibration damping body (21) abuts against the bottom end of the base (1); when the vibration damping body (21) is in the unlocked state, the vibration damping body (21) is moved in a direction away from the adjustment assembly (3) through the connecting rod (22), driving the vibration damping body (21) to move in a direction away from the base (1), so that the top end of the vibration damping body (21) is separated from the bottom end of the base (1).

7. The vibration damping structure according to claim 2, characterized in that: The vibration damping structure further comprises a first locking member (6), the first locking member (6) being arranged in the mounting groove (10), the first locking member (6) being used for locking connection with the adjustment assembly (3) to fix the vibration damping assembly (2) at the avoidance position.

8. The vibration damping structure according to claim 7, characterized in that: The adjustment component (3) is provided with a first matching portion; the first locking member (6) includes a fixing portion and a second matching portion, the fixing portion is mounted on the inner wall of the mounting groove (10), and the second matching portion is arranged on a side of the fixing portion close to the adjustment component (3); when the vibration damping component (2) is located in the avoidance position, the first matching portion is hung and connected with the second matching portion.

9. The vibration damping structure according to claim 2, characterized in that: The vibration damping structure further comprises: a second locking member (7), the second locking member (7) being arranged in the mounting groove (10), the second locking member (7) being used for lockingly connecting with the adjustment assembly (3) to fix the vibration damping assembly (2) at the supporting position.

10. An air conditioning unit, characterized in that: include: Outdoor unit; A vibration damping structure, wherein the vibration damping structure is the vibration damping structure according to any one of claims 1 to 9, wherein the vibration damping structure is installed at the bottom of the outdoor unit, wherein the outdoor unit is arranged on a mounting base through the vibration damping structure, and wherein the vibration damping structure is used to support and dampen vibrations of the outdoor unit.