Air conditioner assembly mounting structure and air conditioner

The air conditioning component installation structure, which combines guide rails and sliding parts, solves the problems of maintenance difficulties and safety risks in the wiring scheme of air conditioning indoor units, realizes stable wiring and efficient connection, and improves the service life and safety of air conditioners.

CN224230140UActive Publication Date: 2026-05-12QINGDAO HAIER AIR CONDITIONER GENERAL CORP LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
QINGDAO HAIER AIR CONDITIONER GENERAL CORP LTD
Filing Date
2025-04-22
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing wiring schemes for indoor air conditioning units lead to maintenance difficulties and safety risks, including problems such as reduced operating space, signal interference, cable friction, and overheating.

Method used

The system employs a frame and wire box structure, with guide rails and sliding parts working together to allow the wire box to be slidably installed. Through the interlocking structure of the guide rail inner groove and the sliding groove, combined with elastic buckles and noise reduction pads, the wire box can be quickly positioned and stably connected, forcibly constraining the routing of the connecting wires and reducing noise and friction.

Benefits of technology

It improves the space utilization of wire harness layout, solves the problem of cross interference, enhances connection strength, reduces noise and safety risks, and improves maintenance efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of air conditioners, in particular to an air conditioner assembly mounting structure and an air conditioner. The problems that in the prior art, a wiring scheme of an air conditioner indoor unit is difficult to maintain and has safety risks are solved. Therefore, the utility model provides the air conditioner component mounting structure, the mounting structure comprises a framework and a lead box, the framework comprises a box body, a guide rail is arranged on the box body, a sliding part is arranged on one side of the lead box, and the sliding part is matched with the guide rail, so that the lead box can be mounted on the guide rail in a sliding manner. Based on the above structural arrangement, through the matching structure of the guide rail and the sliding part, the rapid positioning and installation of the wire box are realized, and the orientation sliding design of the wire box forcibly restrains the direction of a machine connecting wire, so that the utilization rate of wiring harness arrangement space is improved, and the problem of cross interference caused by traditional loose wiring is thoroughly solved.
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Description

Technical Field

[0001] This utility model relates to the field of air conditioning technology, specifically providing an air conditioning component installation structure and an air conditioner. Background Technology

[0002] Currently, the internal wiring of air conditioner indoor units generally uses a loose wiring scheme, with the connecting wires directly stacked inside the casing. This scheme has the following problems:

[0003] 1. Difficult to maintain: This disordered state directly leads to the need to manually untangle the messy wire bundles when plugging in the terminal blocks, greatly reducing the operating space and making it difficult to accurately position the tools. At the same time, the tangled wires can easily cause signal interference.

[0004] 2. Safety risks: Unsecured cables are prone to friction with sharp metal edges during transport vibrations; when the casing is closed, the cables may be squeezed and deformed, leading to increased contact resistance and causing localized overheating.

[0005] Therefore, there is a need in the art for an air conditioning component installation structure and an air conditioner to solve the above-mentioned technical problems. Utility Model Content

[0006] The present invention aims to solve the above-mentioned technical problems, namely, the wiring scheme of the air conditioner indoor unit in the prior art has the problems of difficult maintenance and safety risks.

[0007] In a first aspect, this utility model provides an air conditioning component installation structure, the installation structure including a frame and a wiring box.

[0008] The frame includes a box body, on which guide rails are provided.

[0009] A sliding part is provided on one side of the wire box, and the sliding part cooperates with the guide rail so that the wire box can be slidably installed on the guide rail.

[0010] In a specific embodiment of the above-described air conditioning component installation structure, an inner groove for the guide rail is formed between the guide rail and the side wall of the housing.

[0011] A sliding groove is also provided on one side of the sliding part, so that the sliding part can be slidably disposed in the inner groove of the guide rail, and the guide rail can be slidably disposed in the sliding groove.

[0012] In a specific embodiment of the above-mentioned air conditioning component installation structure, the contact surface between the sliding part and the guide rail is provided with a noise reduction pad.

[0013] In the specific embodiment of the above-mentioned air conditioning component installation structure, the number of guide rails is two, and the two guide rails are arranged opposite to each other.

[0014] There are two sliding parts, which are respectively arranged in the two guide rails.

[0015] In a specific embodiment of the above-mentioned air conditioning component installation structure, the side wall of the housing is provided with a snap fastener.

[0016] When the wire box slides to the predetermined position, the buckle locks the wire box.

[0017] In a specific embodiment of the above-described air conditioning component installation structure, the wiring box is provided with a snap-fit ​​groove.

[0018] The buckle is an elastic buckle, and the elastic buckle corresponds to the snap-fit ​​groove.

[0019] In a specific embodiment of the above-mentioned air conditioning component installation structure, the elastic buckle includes a guide bevel and an anti-loosening surface.

[0020] The guide ramp is disposed along the assembly direction of the wire box of the elastic buckle.

[0021] The anti-loosening surface is the connection surface between the top of the guide slope and the side wall of the box.

[0022] In a specific embodiment of the above-mentioned air conditioning component installation structure, the wiring box is provided with a communicating inlet, a wiring channel, and an outlet.

[0023] In a specific embodiment of the above-mentioned air conditioning component installation structure, an installation slot is provided on the outside of the wiring box for connecting other functional modules of the air conditioner.

[0024] Secondly, this utility model also provides an air conditioner, which includes the air conditioning component mounting structure as described in the above embodiments.

[0025] By adopting the above technical solution, this utility model provides an air conditioning component installation structure. This installation structure includes a frame and a wiring box. The frame includes a housing with a guide rail. A sliding part is provided on one side of the wiring box, and the sliding part cooperates with the guide rail to allow the wiring box to be slidably installed on the guide rail. Based on the above structural design, this utility model achieves rapid positioning and installation of the wiring box through the cooperation of the guide rail and the sliding part. Furthermore, the directional sliding design of the wiring box forcibly constrains the routing of the wiring cables, improving the utilization rate of wiring harness space and completely solving the problem of cross-interference caused by traditional loose wiring.

[0026] Furthermore, the air conditioning component installation structure provided by this utility model defines that the sliding part is slidably disposed in the inner groove of the guide rail, and the guide rail is slidably disposed in the sliding groove. Therefore, the sliding part and the guide rail form an interlocking structure, which further improves the connection strength between the sliding part and the guide rail and prevents the sliding part and the guide rail from becoming loose during the sliding process.

[0027] Furthermore, the air conditioning component installation structure provided by this utility model stipulates that the contact surface between the sliding part and the guide rail is provided with noise reduction pads to reduce the noise generated by sliding friction between the sliding part and the guide rail.

[0028] Furthermore, the air conditioning component installation structure provided by this utility model limits the number of guide rails and sliding parts to two, and they are arranged opposite to each other, so as to constrain the sliding direction of the sliding parts and prevent the sliding parts from separating from the guide rails during the sliding process.

[0029] Furthermore, the air conditioning component installation structure provided by this utility model limits the wiring box to a predetermined position, whereby the buckle locks the wiring box, and the wiring box is assembled by the buckle in conjunction with the guide rail.

[0030] Furthermore, the air conditioning component installation structure provided by this utility model defines an elastic buckle and a snap-fit ​​groove. The elastic buckle deforms when it is snapped into the snap-fit ​​groove, and the locking is achieved by utilizing its elastic deformation.

[0031] Furthermore, the air conditioning component installation structure provided by this utility model defines a guide slope provided at the end of the elastic buckle along the assembly direction of the wire box, which facilitates the deformation of the elastic buckle into the snap-fit ​​groove. After resetting, the anti-loosening surface abuts against the edge of the snap-fit ​​groove to form a continuous tensile force to enhance the fastening.

[0032] Furthermore, the air conditioning component installation structure provided by this utility model limits the wiring box to have a communicating inlet, wiring channel and outlet, so as to constrain the direction of the connection wire.

[0033] Furthermore, the air conditioning component installation structure provided by this utility model defines an installation slot on the outside of the wiring box for connecting other functional modules of the air conditioner. Attached Figure Description

[0034] The preferred embodiments of this utility model are described below with reference to the accompanying drawings, in which:

[0035] Figure 1 This is a schematic diagram of the overall structure of the air conditioning component installation structure provided by this utility model;

[0036] Figure 2 This is a schematic diagram of the overall structure of the housing in the air conditioning component installation structure provided by this utility model;

[0037] Figure 3 This is a partial structural diagram of the housing in the air conditioning component installation structure provided by this utility model;

[0038] Figure 4 This is a schematic diagram of the wiring box in the air conditioning component installation structure provided by this utility model.

[0039] Figure label:

[0040] 1. Frame; 11. Housing; 12. Guide rail; 13. Inner groove of guide rail; 14. Inverted fastener; 141. Guide slope; 142. Anti-loosening surface;

[0041] 2. Wire box; 21. Sliding part; 22. Sliding groove; 23. Snap-fit ​​groove; 24. Cable inlet; 25. Cable outlet; 26. Mounting slot;

[0042] 3. Connector. Detailed Implementation

[0043] Preferred embodiments of the present invention will now be described with reference to the accompanying drawings. Those skilled in the art should understand that these embodiments are merely illustrative of the technical principles of the present invention and are not intended to limit the scope of protection of the present invention. Those skilled in the art can make adjustments as needed to adapt to specific applications. For example, although this specific embodiment is described in conjunction with the application of the air conditioning component mounting structure in an air conditioner, the air conditioning component mounting structure of the present invention can obviously also be used in other scenarios. Such changes in application scenarios do not deviate from the basic principles of the present invention and fall within the scope of protection of the present invention.

[0044] In this disclosure, the terms "upper," "lower," "inner," "middle," "outer," "front," and "rear," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for better description of the embodiments of this disclosure and their implementations, and are not intended to limit the indicated devices, elements, or components to having a specific orientation, or to require them to be constructed and operated in a specific orientation. Furthermore, some of the aforementioned terms may be used to indicate other meanings besides orientation or positional relationship; for example, the term "upper" may in some cases indicate a dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in the embodiments of this disclosure according to the specific circumstances.

[0045] Currently, the internal wiring of air conditioner indoor units generally uses a loose wiring scheme, with the connecting wires directly stacked inside the casing. This scheme has the following problems:

[0046] 1. Difficult to maintain: This disordered state directly leads to the need to manually untangle the messy wire bundles when plugging in the terminal blocks, greatly reducing the operating space and making it difficult to accurately position the tools. At the same time, the tangled wires can easily cause signal interference.

[0047] 2. Safety risks: Unsecured cables are prone to friction with sharp metal edges during transport vibrations; when the casing is closed, the cables may be squeezed and deformed, leading to increased contact resistance and causing localized overheating.

[0048] To solve the above-mentioned technical problems, this utility model provides an air conditioning component installation structure and an air conditioner.

[0049] First, see Figure 1 , Figure 1 This is a schematic diagram of the overall structure of the air conditioning component installation structure provided by this utility model, as shown below. Figure 1 As shown, this utility model provides an air conditioning component installation structure, which includes a frame 1 and a wiring box 2. The frame 1 includes a housing 11; see also... Figure 2 , Figure 2 This is a schematic diagram of the overall structure of the housing in the air conditioning component installation structure provided by this utility model, as shown below. Figure 2 As shown, a guide rail 12 is provided on the housing 11, and a sliding part 21 is provided on one side of the wire box 2. The sliding part 21 cooperates with the guide rail 12 so that the wire box 2 can be slidably installed on the guide rail 12. Based on the above structural configuration, this utility model achieves rapid positioning and installation of the wire box 2 through the cooperation structure of the guide rail 12 and the sliding part 21. The directional sliding design of the wire box 2 forcibly constrains the routing of the connecting cables, thereby improving the utilization rate of the wiring harness layout space and completely solving the problem of cross-interference caused by traditional loose wiring. It should be noted that this utility model does not impose any restrictions on the specific structure and setting position of the housing 11, guide rail 12, and sliding part 21. Technicians can set them according to actual usage requirements.

[0050] In this preferred embodiment, a plug-in terminal 3 is also provided on one side of the housing 11 for connecting the wire harness extending from the wiring box 2, thereby realizing the wiring harness connection inside the air conditioner. It should be noted that this utility model does not impose any limitations on the specific structure of the plug-in terminal 3; those skilled in the art can design it according to actual usage requirements. Specifically, for example... Figure 2 As shown, the plug-in terminal 3 is located at the top of the housing 11. Therefore, the outlet of the wiring box 2 should be located on the upper side of the wiring box 2 to facilitate the connection of the wiring harness. Specifically, the wiring harnesses in the air conditioning system mainly include power wiring harnesses, control signal wiring harnesses, communication bus wiring harnesses, motor drive wiring harnesses, etc. All of these wiring harnesses can be organized using the aforementioned wiring box 2 structure, thereby improving the utilization rate of wiring harness layout space and completely solving the problem of cross-interference caused by traditional loose wiring.

[0051] In one possible implementation, the guide rail 12 adopts a T-shaped cross-section design, and the sliding part 21 is correspondingly provided with a T-shaped groove. The T-shaped flange of the guide rail 12 and the groove of the sliding part 21 form a mechanical interlock, so that the three-sided contact structure of the T-shaped cross-section ensures that the wire box 2 maintains a stable trajectory during sliding, avoiding swaying or jamming. In addition, the T-shaped structure saves 20% of vertical space compared with a rectangular guide rail under the same strength, which is particularly suitable for ultra-thin air conditioner indoor unit design. The inverted trapezoidal cross-section of the guide rail 12 can also automatically remove dust and impurities, avoiding the cleaning and maintenance requirements of traditional open guide rails.

[0052] In this preferred embodiment, see Figure 3 , Figure 3 This is a partial structural diagram of the housing in the air conditioning component installation structure provided by this utility model, as shown below. Figure 3 As shown, an inner groove 13 is formed between the guide rail 12 and the side wall of the housing 11; see also Figure 4 , Figure 4 This is a schematic diagram of the wiring box in the air conditioning component installation structure provided by this utility model, as shown below. Figure 4 As shown, a sliding groove 22 is also provided on one side of the sliding part 21 that forms the inner groove 13 between the guide rail 12 and the side wall of the housing 11. Combined with... Figure 3 and Figure 4 The sliding part 21 is slidably disposed in the inner groove 13 of the guide rail, and the guide rail 12 is slidably disposed in the sliding groove 22. Therefore, the sliding part 21 and the guide rail 12 form an interlocking structure, further enhancing the connection strength between them and preventing loosening during sliding. It should be noted that this invention does not impose any restrictions on the specific structure and placement of the inner groove 13 and the sliding groove 22; those skilled in the art can set them according to actual usage requirements. It is understood that the width of the inner groove 13 can be slightly larger than the width of the guide rail 12 to ensure smooth sliding of the guide rail 12 within the sliding groove 22. Similarly, the width of the inner groove 13 also needs to be slightly larger than the width of the sliding part 21 to ensure smooth sliding of the sliding part 21 within the inner groove 13.

[0053] This preferred embodiment significantly improves the connection strength and sliding stability between the wire box 2 and the frame 1 through the interlocking structure of the inner groove 13 of the guide rail and the sliding groove 22. Specifically, the inner groove 13 of the guide rail formed by the guide rail 12 and the side wall of the box 11 provides the first-level guiding constraint, and the sliding groove 22 of the sliding part 21 forms a second-level sliding fit with the guide rail 12. The dual guiding structure greatly improves the anti-lateral swaying ability of the wire box 2 during the sliding process, ensuring accurate alignment, thereby making the guide rail 12 embedded in the sliding groove 22 to form a mechanical interlock, preventing it from disengaging during the sliding process.

[0054] In one possible implementation, an auxiliary guide wheel (not shown in the figure) can be added to the bottom of the wire box 2 to reduce sliding friction resistance. Optionally, the guide wheel can be a polymer self-lubricating bearing, which greatly reduces the coefficient of sliding friction between the wire box 2 and the guide rail 12. In this preferred embodiment, the guide wheels are symmetrically distributed on both sides of the bottom of the wire box 2, forming a three-point positioning system, which effectively suppresses the swaying generated during the sliding process of the wire box 2. Optionally, a pre-loaded spring mechanism can also be installed in the guide wheel to automatically compensate for the height error of the guide rail, so that it can still maintain smooth movement under the condition of slight deformation of the housing 11.

[0055] In this preferred embodiment, a noise-reducing pad (not shown in the figure) is provided on the contact surface between the sliding part 21 and the guide rail 12 to reduce noise between the sliding part 21 and the guide rail 12. It should be noted that this invention does not impose any restrictions on the specific type or placement of the noise-reducing pad; those skilled in the art can set it according to actual usage requirements. Optionally, the noise-reducing pad can be a composite pad, comprising three layers: a surface layer of PTFE (polytetrafluoroethylene), a middle layer of sound-absorbing cotton, and a bottom layer of adhesive. In one possible implementation, microcapsule lubricant can also be embedded in the surface of the noise-reducing pad to ensure smooth and seamless sliding of the sliding part 21, further reducing noise between the sliding part 21 and the guide rail 12.

[0056] In this preferred embodiment, combined with Figure 3 and Figure 4 There are two guide rails 12, which are arranged opposite to each other. There are also two sliding parts 21, corresponding to each of the two guide rails 12. This arrangement constrains the sliding direction of the sliding parts 21, preventing them from separating from the guide rails 12 during sliding. This preferred embodiment employs a symmetrical arrangement of two guide rails and two corresponding sliding parts 21. The two guide rails 12 create a symmetrical force couple balance on the sliding parts 21, reducing lateral offset and thus allowing them to withstand larger rotational torques, reducing the occurrence of derailment. Simultaneously, the weight of the wire box 2 is evenly distributed between the two guide rails 12, reducing the load on a single rail by 50%, significantly extending the service life of the guide rails 12. Even if one guide rail 12 fails unexpectedly, the other side can still maintain basic guiding function.

[0057] Specifically, two guide rails 12 are arranged opposite each other on the side wall of the housing 11. The upper guide rail 12 is closed at the top, and the lower guide rail 12 is closed at the bottom to limit the vertical displacement of the sliding part 21.

[0058] In this preferred embodiment, a snap fastener 14 is provided on the side wall of the housing 11. When the wire box 2 slides to the predetermined position, the snap fastener 14 locks the wire box 2 in place. The assembly of the wire box 2 is completed by the snap fastener 14 in conjunction with the guide rail 12. This structure facilitates assembly by the installer. When the wire box slides to the predetermined position, the snap fastener 14 makes a "click" sound, indicating that the installation is in place. It should be noted that this utility model does not impose any restrictions on the specific size and location of the snap fastener 14; technicians can set it according to actual usage requirements.

[0059] In one possible implementation, when the wiring harness inside the air conditioner needs temperature protection, the inverted fastener 14 can be integrated with a bimetallic strip structure. At the same time, the wiring box 2 has a built-in temperature sensor that automatically triggers unlocking when the temperature exceeds the limit, so that the wiring box 2 can automatically switch between locked states at different temperature points. For example, when the wiring harness temperature is higher than 55°C, the inverted fastener 14 automatically pops open, causing the wiring box 2 to separate from the frame 1, thereby creating an open circuit to protect the air conditioner from temperature.

[0060] In another possible implementation, when the wiring harness in the air conditioner needs vibration damping protection, a miniature hydraulic damper can be installed inside the buckle 14 to achieve buffer deceleration during the locking process of the buckle 14. For example, when the vehicle air conditioner is working, when it encounters acceleration or deceleration conditions, the buckle 14 provides vibration damping buffer for the wiring harness to avoid abnormal noise at the connection between the wire box 2 and the frame 1 due to the motion conditions.

[0061] In this preferred embodiment, the wire box 2 is provided with a snap-fit ​​groove 23, and the buckle 14 is an elastic buckle. The elastic buckle corresponds to the snap-fit ​​groove 23. When the elastic buckle is snapped into the snap-fit ​​groove 23, it deforms, and locking is achieved by its elastic deformation. It should be noted that this utility model does not impose any restrictions on the specific structure and setting position of the elastic buckle and the snap-fit ​​groove 23. Those skilled in the art can set them according to actual usage requirements. It is understood that the shapes of the elastic buckle and the snap-fit ​​groove 23 are adapted to each other. Specifically, the elastic buckle automatically deforms and locks when snapped into the snap-fit ​​groove 23 without the need for additional tools, thereby shortening the assembly time. The barb structure of the elastic buckle forms a mechanical interlock with the snap-fit ​​groove 23, which has a large tensile strength. Optionally, the elastic buckle can be made of glass fiber reinforced material, which has a large elastic modulus to ensure that it does not deform during long-term use.

[0062] Optionally, the elastic buckle is equipped with a button (not shown in the figure), which can be pressed to release the buckle from its fixed state. Alternatively, the body of the elastic buckle can be pressed directly to release it from its locked state, facilitating quick disassembly during after-sales maintenance.

[0063] like Figure 3As shown, in this preferred embodiment, the bottom surface of the elastic buckle is rectangular, and correspondingly, the shape of the locking groove 23 is also rectangular. The elastic buckle includes a guide slope 141 and an anti-loosening surface 142. The guide slope 141 is disposed along the assembly direction of the elastic buckle along the wire box 2, and the anti-loosening surface 142 is the connection surface between the top of the guide slope 141 and the side wall of the box 11. The guide slope 141 facilitates the elastic buckle to deform and enter the locking groove 23. After resetting, it abuts against the edge of the locking groove 23 through the anti-loosening surface 142, forming a continuous tensile force to enhance the fastening. It should be noted that this utility model does not impose any restrictions on the specific structure and placement of the guide slope 141 and the anti-loosening surface 142. Those skilled in the art can set them according to actual usage requirements. Specifically, the guide slope 141 can reduce the friction of the elastic buckle during the sliding process, and can also automatically correct the position deviation during the sliding process. Optionally, the inclination angle of the guide slope 141 can be 15°. The anti-loosening surface 142 and the locking groove 23 form a vertical anti-retraction angle, generating a continuous pre-tightening force, which enhances the locking effect of the elastic buckle and the locking groove 23.

[0064] In other embodiments, the bottom surface of the elastic buckle can also be circular, and correspondingly, the shape of the locking groove 23 is also circular. The elastic buckle is a hemispherical structure that fastens to the side wall of the housing 11. The technical solution of this embodiment is more conducive to the locking process between the elastic buckle and the locking groove 23, but its locking effect is poor.

[0065] In this preferred embodiment, see Figure 4 The wire box 2 is provided with a communicating inlet 24, a wire channel (not shown in the figure), and an outlet 25. This arrangement forces the wire harness to be placed according to the preset directions of the inlet 24, wire channel, and outlet 25, avoiding a cluttered distribution of the wire harness. This also makes it easier to insert the wire harness into the predetermined position in the frame 1 when it extends from the outlet 25. It should be noted that this invention does not impose any restrictions on the specific structure and location of the inlet 24, wire channel, and outlet 25; those skilled in the art can set them according to actual usage requirements.

[0066] In some embodiments, a wire divider (not shown in the figure) is provided inside the wire box 2 to form multiple independent wiring channels. Specifically, the wire divider divides the inside of the wire box 2 into 3 to 6 independent channels, supporting the separate routing of power lines, signal lines, communication lines, etc., and avoiding cross-interference. At the same time, the wire divider also allows for a certain spacing between adjacent wire bundles, preventing cross-interference. During installation, installers do not need to manually organize the wire bundles, which can improve wiring time and increase installation efficiency.

[0067] In some embodiments, a transparent observation window (not shown in the figure) can also be provided on the top of the wiring box 2 to facilitate cable condition inspection. With this configuration, maintenance personnel can check the wiring harness connection status without opening the cover, and perform early repairs if problems such as loosening / oxidation / overheating and discoloration of the wiring harness occur, thereby extending the service life of the air conditioner.

[0068] Optionally, a temperature sensor (not shown in the figure) and an alarm device (not shown in the figure) can be integrated into the wiring box 2 to monitor the temperature rise of the wiring harness in real time. When the temperature sensor detects that the temperature of the wiring harness is higher than the preset value, the alarm device issues an alarm message to prevent the wiring harness from overheating and damaging the air conditioner.

[0069] In this preferred embodiment, a mounting slot 26 is provided on the outer side of the wiring box 2 for connecting other functional modules of the air conditioner. It should be noted that this invention does not impose any limitations on the specific structure and location of the mounting slot 26; those skilled in the art can set it according to actual usage requirements. Optionally, the mounting slot 26 is configured to accommodate an air conditioner display. It is understood that when the mounting slot 26 is used to assemble an air conditioner display, the dimensions of the mounting slot 26 must be compatible with the air conditioner display.

[0070] On the other hand, this utility model also provides an air conditioner, which includes the air conditioning component installation structure described in the above embodiments. Based on the above structural configuration, this utility model achieves rapid positioning and installation of the wire box 2 through the cooperation structure of the guide rail 12 and the sliding part 21. The directional sliding design of the wire box 2 forcibly constrains the routing of the wiring, thereby improving the utilization rate of the wiring harness layout space and completely solving the problem of cross-interference caused by traditional loose wiring in air conditioners.

[0071] It should be noted that the above embodiments are only used to illustrate the principle of this utility model and are not intended to limit the scope of protection of this utility model. Without departing from the principle of this utility model, those skilled in the art can adjust the above structure so that this utility model can be applied to more specific application scenarios.

[0072] The technical solution of this utility model has been described in conjunction with the preferred embodiments shown in the accompanying drawings. However, it will be readily understood by those skilled in the art that the protection scope of this utility model is obviously not limited to these specific embodiments. Without departing from the principle of this utility model, those skilled in the art can make equivalent changes or substitutions to the relevant technical features, and the technical solutions after these changes or substitutions will all fall within the protection scope of this utility model.

Claims

1. An air conditioning component installation structure, characterized in that, The mounting structure includes a frame and a wiring box. The frame includes a box body, on which guide rails are provided. A sliding part is provided on one side of the wire box, and the sliding part cooperates with the guide rail so that the wire box can be slidably installed on the guide rail.

2. The air conditioning component installation structure according to claim 1, characterized in that, An inner groove for the guide rail is formed between the guide rail and the side wall of the housing. A sliding groove is also provided on one side of the sliding part, so that the sliding part can be slidably disposed in the inner groove of the guide rail, and the guide rail can be slidably disposed in the sliding groove.

3. The air conditioning component installation structure according to claim 2, characterized in that, The contact surface between the sliding part and the guide rail is provided with a noise-reducing pad.

4. The air conditioning component installation structure according to claim 1, characterized in that, The guide rails are of two types, and the two guide rails are arranged opposite to each other. There are two sliding parts, which are respectively arranged in the two guide rails.

5. The air conditioning component installation structure according to claim 1, characterized in that, The side wall of the box is equipped with a snap fastener. When the wire box slides to the predetermined position, the buckle locks the wire box.

6. The air conditioning component installation structure according to claim 5, characterized in that, The wiring box is provided with a snap-fit ​​groove. The buckle is an elastic buckle, and the elastic buckle corresponds to the snap-fit ​​groove.

7. The air conditioning component installation structure according to claim 6, characterized in that, The elastic buckle includes a guide bevel and an anti-loosening surface. The guide ramp is disposed along the assembly direction of the wire box of the elastic buckle. The anti-loosening surface is the connection surface between the top of the guide slope and the side wall of the box.

8. The air conditioning component installation structure according to claim 1, characterized in that, The junction box is equipped with a common inlet, a wire channel, and an outlet.

9. The air conditioning component installation structure according to claim 1, characterized in that, The wiring box has an installation slot on its outside for connecting other functional modules of the air conditioner.

10. An air conditioner, characterized in that, The air conditioner includes the air conditioning component mounting structure as described in any one of claims 1-9.