Wire passing device and air conditioner
The design of movable shielding parts and flexible mechanism enables the adjustment and sealing of the outlet hole, solving the problem of fixed outlet hole position in air conditioning system, improving installation flexibility and insect prevention, and reducing installation and maintenance difficulty.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GREE ELECTRIC APPLIANCE INC OF ZHUHAI
- Filing Date
- 2025-04-18
- Publication Date
- 2026-05-15
AI Technical Summary
The fixed location of the outlet hole in the existing air conditioning system results in poor flexibility in the installation of the wiring cables, increases the difficulty and time cost of installation, and poses safety hazards.
The device employs movable first and second shielding components, which are driven to move by an elastic mechanism to form a cable outlet. The cable outlet is adjustable and sealed using a locking mechanism and a sealing component, including a magnetic component and an unlocking mechanism to facilitate cable installation and prevent insect infestation.
It improves the flexibility and versatility of cable installation, reduces installation difficulty and time costs, enhances insect prevention, simplifies the maintenance process, and extends product lifespan.
Smart Images

Figure CN224249269U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of air conditioner wiring technology, specifically relating to a wiring device and an air conditioner. Background Technology
[0002] As air conditioning systems become increasingly complex, the number of wiring branches in engineering projects has increased significantly. The outlet holes on the support components are generally fixed holes, which increases the difficulty of wiring. Moreover, the outlet hole diameter is designed for the most branches. When there are fewer wiring branches in the project, there is a large gap after the wires exit. The project needs to add extra sponge sealing or wire-passing rubber rings with tails. The process of adding sponge pasting or wire-passing rubber rings with tails for wire binding is cumbersome and there is a safety hazard of insects entering if the sponge is not added or the wire-passing rubber rings are not bound.
[0003] Existing technologies disclose adjustable outlet hole diameters to accommodate different cable diameters. However, the position of existing outlet holes is generally fixed. Different air conditioner models and different installation environments have different requirements for the outlet hole position. The fixed design of the outlet hole position results in poor installation flexibility for the cable, increasing installation difficulty and time costs. Utility Model Content
[0004] Therefore, this utility model provides a cable guide device and an air conditioner, which can solve the technical problem in the prior art where the fixed position of the cable outlet hole leads to poor installation flexibility of the cable guide, increasing installation difficulty and time cost.
[0005] To solve the above problems, this utility model provides a cable guide device, which includes a first blocking member, a second blocking member, and an elastic mechanism. Both the first blocking member and the second blocking member are movable, and the first blocking member and the second blocking member are opposite to each other, forming a cable outlet hole between them. The elastic mechanism is used to drive the first blocking member and the second blocking member to move, so that the first blocking member and the second blocking member are relatively close to each other, so as to clamp the cable in the cable outlet hole.
[0006] The first shielding member is provided with a first locking mechanism, which is used to lock the first shielding member when it moves to the cable.
[0007] In some embodiments, the first locking mechanism includes a movable latching block, and the cable guide device includes a fixed latching portion. The first locking mechanism is used to drive the movable latching block to move relative to the first blocking member to a first position when triggered by the cable, so that the movable latching block engages with the fixed latching portion to lock the first blocking member.
[0008] In some embodiments, the number of the fixing latches is two or more, and they are arranged sequentially along the movement trajectory of the first blocking member.
[0009] In some embodiments, the fixed locking portion is a fixedly provided slot; the movable locking block has an insertion portion, and the movable locking block is inserted into the slot through the insertion portion to engage with the slot; wherein,
[0010] The opposite side walls of the slot are opened to guide the insertion of the connector into the slot;
[0011] And / or, along the direction in which the plug is inserted into the slot, the plug gradually tapers;
[0012] And / or, two adjacent slots are transitioned by a raised arc structure, and the arc structure is tangent to the slot walls of the two adjacent slots.
[0013] In some embodiments, the first locking mechanism further includes a movable drive block, which is used to abut against the cable and be pushed by the cable to a preset position when the first blocking member moves to the cable, so that the cable triggers the first locking mechanism; wherein, when the first locking mechanism is triggered by the cable, the drive block drives the movable locking block to move to the first position.
[0014] In some embodiments, the drive block has a first magnetic part and the movable card block has a second magnetic part; the drive block drives the movable card block to move to the first position by cooperating with the first magnetic part and the second magnetic part.
[0015] In some embodiments, the second magnetic part and the first magnetic part have the same magnetism; when the driving block moves to the preset position, the first magnetic part and the second magnetic part are opposite to each other, so that the second magnetic part moves away from the first magnetic part under the action of the magnetic force of the first magnetic part, thereby driving the movable card block to move to the first position.
[0016] In some embodiments, the second shielding member is provided with a second locking mechanism, which is used to lock the second shielding member when it moves to the cable and is triggered by the cable; wherein the second locking mechanism and the first locking mechanism have the same structure.
[0017] In some embodiments, the cable guide device further includes a first unlocking mechanism for unlocking the first obstruction after the cable in the cable outlet hole has been removed.
[0018] In some embodiments, when the first locking mechanism includes a movable latching block and the cable-passing device includes a fixed latching portion, the first locking mechanism is used to drive the movable latching block to move relative to the first blocking member to a first position when triggered by the cable, so that the movable latching block engages with the fixed latching portion to lock the first blocking member; and the first locking mechanism further includes a movable driving block, which is used to abut against the cable when the first blocking member moves to the cable and is pushed by the cable to a preset position, so that the cable triggers the first locking mechanism; and when the first locking mechanism is triggered by the cable, it drives the movable latching block to move to the first position through the driving block, and the driving block has a first magnetic part and the movable latching block has a second magnetic part; the second magnetic part and the first magnetic part have the same magnetism; when the driving block moves to the preset position, the first magnetic part and the second magnetic part are opposite to each other, so that the second magnetic part moves away from the first magnetic part under the action of the magnetic force of the first magnetic part, thereby driving the movable latching block to move to the first position.
[0019] The first unlocking mechanism includes a third magnetic part, a fourth magnetic part, and a fifth magnetic part. The third magnetic part is disposed on the driving block, and the fourth and fifth magnetic parts are both disposed on the first blocking member. The third and fourth magnetic parts have the same magnetism and are disposed opposite to each other. After the cable in the outlet hole is removed, the third magnetic part moves away from the fourth magnetic part under the magnetic force of the fourth magnetic part, allowing the driving block to reset under the action of the third magnetic part. The fifth magnetic part has opposite magnetism to the second magnetic part. When the driving block resets, the driving block moves away from the fifth and second magnetic parts, so that the fifth magnetic part is opposite to the second magnetic part. The second magnetic part moves closer to the fifth magnetic part under the magnetic force of the fifth magnetic part, thereby driving the movable locking block to exit the fixed locking part and unlocking the first blocking member.
[0020] In some embodiments, the first blocking member is provided with a first guide groove, which is used to guide the movement of the movable block. The first guide groove has a first stop portion, which is used to stop and limit the movable block when it is reset to the initial position.
[0021] And / or, the first shielding member is provided with a second guide groove, the second guide groove is used to guide the movement of the driving block, the driving block passes through the second guide groove, and the driving block has an A stop portion on one side of the second guide groove, the A stop portion is used to abut against one side of the second guide groove when the driving block moves to the preset position; the driving block has a B stop portion on the other side of the second guide groove, the B stop portion is used to abut against the other side of the second guide groove when the driving block returns to the initial position.
[0022] In some embodiments, when the second shielding member is provided with a second locking mechanism, the second locking mechanism is used to lock the second shielding member when it is triggered by the cable when it moves to the cable. The cable passing device further includes a second unlocking mechanism, which is used to unlock the second shielding member after the cable in the cable outlet hole is taken out. The first unlocking mechanism and the second unlocking mechanism have the same structure.
[0023] In some embodiments, the elastic mechanism includes a first elastic mechanism and a second elastic mechanism, wherein the first elastic mechanism is used to drive the first blocking member closer to the second blocking member, and the second elastic mechanism is used to drive the second blocking member closer to the first blocking member.
[0024] This utility model also provides an air conditioner, which includes a support member and a wiring device as described above; the wiring device is installed on the support member.
[0025] The wiring device and air conditioner provided by this utility model have the following beneficial effects:
[0026] 1. The solution of this utility model allows for adjustment of the outlet hole position according to the actual outlet location of the cable. This adjustable outlet hole position greatly improves the flexibility of cable installation, simplifies the installation process, and reduces installation difficulty and time costs. Furthermore, adjusting the outlet hole position controls the cable's exit direction, reduces cable bends, extends cable lifespan, and facilitates wiring.
[0027] 2. The size of the cable outlet hole of this utility model is adjustable. This adjustable cable outlet hole design can adapt to different products and different installation environments, thus improving the versatility and adaptability of the product.
[0028] 3. The first and second sealing components work together to make the wire guiding device of this utility model also have an insect-proof function. It can prevent insects from entering through the wire outlet hole and prevent electrical safety problems caused by insects. It optimizes the safety hazards existing in current wire guiding devices. At the same time, the installation of the wire guiding device does not require the addition of an insect-proof sleeve. The cable can be directly inserted into the wire outlet hole and automatically tightened to achieve the insect-proof effect, thus improving product quality and production and installation efficiency.
[0029] 4. The movable and adjustable cable outlet design of this utility model makes cable repair and replacement more convenient, reduces maintenance difficulty, and extends the service life of the product. Attached Figure Description
[0030] To more clearly illustrate the embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. The drawings in the following description are merely exemplary, and those skilled in the art can derive other embodiments based on the provided drawings without creative effort.
[0031] Figure 1 This is a schematic diagram of a wire guiding device installed on a support member according to an embodiment of the present invention;
[0032] Figure 2 This is a schematic diagram of the structure of a wire guiding device installed on a support member according to an embodiment of the present invention, from another perspective;
[0033] Figure 3 This is a schematic diagram of a cable routing through the outlet hole of a cable-passing device according to an embodiment of the present invention;
[0034] Figure 4 This is a partially enlarged schematic diagram of a wire guiding device installed on a support member according to an embodiment of the present invention;
[0035] Figure 5 This is a partially enlarged schematic diagram from another perspective of an embodiment of the present invention, showing a wire-passing device mounted on a support member.
[0036] Figure 6 This is a schematic diagram of the movable locking block of a wire-passing device exiting the slot according to an embodiment of the present invention;
[0037] Figure 7 This is a schematic diagram of the movable card block of a wire-passing device inserted into a card slot according to an embodiment of the present invention.
[0038] The attached figures are labeled as follows:
[0039] 1. Support component; 2. First shielding component; 3. Second shielding component; 4. First clamping plate; 5. Second clamping plate; 6. Elastic mechanism; 7. Movable locking block; 8. Driving block; 9. First sealing component; 10. Second sealing component; 11. First connecting strip; 12. Second connecting strip; 13. Guide rail; 14. Slot; 15. First magnetic part; 16. Second magnetic part; 17. Third magnetic part; 18. Fourth magnetic part; 19. Fifth magnetic part; 20. Arc structure; 21. First stop part; 61. First elastic mechanism; 62. Second elastic mechanism; 71. Insertion part; 81. A stop part; 82. B stop part; 100. Cable; 101. Outlet hole; 102. First guide groove; 103. Groove body; 104. Second guide groove. Detailed Implementation
[0040] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the present utility model or its application or use. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.
[0041] In the description of this utility model, it should be understood that the directional terms such as "front, back, up, down, left, right", "horizontal, vertical, horizontal" and "top, bottom" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description. Unless otherwise stated, these directional terms do not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the scope of protection of this utility model. The directional terms "inner" and "outer" refer to the inner and outer contours of each component itself.
[0042] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if the device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.
[0043] Furthermore, it should be noted that the use of terms such as "first" and "second" to define components is merely for the purpose of distinguishing the corresponding components. Unless otherwise stated, the above terms have no special meaning and therefore cannot be construed as limiting the scope of protection of this utility model.
[0044] See also Figure 1-7 As shown, according to an embodiment of the present invention, a cable guiding device is provided, which includes a first blocking member 2, a second blocking member 3, and an elastic mechanism 6. Both the first blocking member 2 and the second blocking member 3 are movable. The first blocking member 2 and the second blocking member 3 are opposite to each other, and a cable outlet hole 101 is formed between them. The elastic mechanism 6 is used to drive the first blocking member 2 and the second blocking member 3 to move, so that the first blocking member 2 and the second blocking member 3 are brought closer together to clamp the cable 100 in the cable outlet hole 101. The first blocking member 2 is provided with a first locking mechanism, which is used to lock the first blocking member 2 when it moves to the cable 100 and is triggered by the cable 100.
[0045] It should be noted that the above-mentioned wire-passing device can be installed on a device that needs to pass wires, such as an air conditioner. The device that needs to pass wires has a support member 1, such as a housing, for supporting the wire-passing device. Specifically, the first shield 2 and the second shield 3 can be movably installed on the support member 1, and the elastic mechanism 6 is also installed on the support member 1.
[0046] In the above example, when installing cable 100, the distance between the first blocking member 2 and the second blocking member 3 is relatively large, providing ample space within the cable outlet hole 101. Cable 100 can exit from different positions within the cable outlet hole 101 according to actual conditions. After determining the cable outlet position, the elastic mechanism 6 is activated. The elastic mechanism 6 drives both the first blocking member 2 and the second blocking member 3 to move, bringing them closer together to clamp cable 100. Specifically, when the first blocking member 2 moves to the cable 100, the first locking mechanism is triggered by the cable 100 to lock the first blocking member 2, thus fixing its position. After the position of the first blocking member 2 is fixed, the second blocking member 3 is squeezed by the elastic force of the elastic mechanism 6, and the position of the second blocking member 3 under the stop of the cable 100 is also fixed, so that the actual position of the outlet hole 101 between the first blocking member 2 and the second blocking member 3 can match the outlet position of the cable 100. In other words, the solution of this utility model can adjust the position of the outlet hole 101 according to the actual outlet position of the cable 100. This adjustable outlet hole 101 position solution greatly improves the flexibility of cable 100 installation, simplifies the cable 100 installation process, and reduces installation difficulty and time cost.
[0047] In addition, since the position of the outlet hole 101 is adjustable, the direction of the cable 100 can be controlled by adjusting the position of the outlet hole 101, reducing the bending of the cable 100, improving the service life of the cable 100, and facilitating wiring.
[0048] Both the first shielding member 2 and the second shielding member 3 mentioned above can be plate-shaped. In some cases, both the first shielding member 2 and the second shielding member 3 can be referred to as baffles. The first shielding member 2 and the second shielding member 3 can block the space outside the outlet hole 101 between them to prevent moisture and insects and other factors that may affect the unit from entering the unit.
[0049] When the first shielding member 2 and the second shielding member 3 are relatively close, the outlet hole 101 between them can be reduced. When the first shielding member 2 and the second shielding member 3 are driven away from each other by external force, the outlet hole 101 between them can be increased. In this way, the size of the outlet hole 101 is adjustable. This adjustable outlet hole 101 design can adapt to different products and different installation environments, improving the versatility and adaptability of the product.
[0050] The first shielding member 2 may be provided with a first sealing element 9, and the second shielding member 3 may be provided with a second sealing element 10. Both the first sealing element 9 and the second sealing element 10 may be sealing films or the like. The first shielding member 2 clamps the cable 100 inside the outlet hole 101 through the cooperation of the first sealing element 9 and the second sealing element 10 on the second shielding member 3. The cooperation of the first sealing element 9 and the second sealing element 10 can reduce the gap between the cable 100 and the hole wall of the outlet hole 101, improve the sealing performance between the cable 100 and the hole wall of the outlet hole 101, thus achieving the characteristic of compression sealing, greatly improving insect prevention requirements, and solving the problem of protection for easily accessible live parts.
[0051] The first sealing element 9 and the second sealing element 10 work together to make the wire-passing device of this utility model also have an insect-proof function. It can prevent insects from entering through the wire outlet hole 101, prevent electrical safety problems caused by insects, optimize the safety hazards existing in current wire-passing devices, and at the same time, the installation of the wire-passing device does not require the addition of an insect-proof sleeve. The cable 100 can be directly inserted into the wire outlet hole 101 and automatically tightened to achieve the insect-proof effect, thereby improving product quality and production and installation efficiency.
[0052] In addition, the movable and adjustable cable outlet 101 design of this utility model makes it more convenient to repair and replace the cable 100, reduces maintenance difficulty, and extends the service life of the product.
[0053] The cable outlet hole 101 of this utility model's cable-passing device features mobility, adjustable size, insect-proof sealing, and automatic fixing. Based on the mobility and adjustable size of the cable outlet hole 101, this utility model's cable-passing device is applicable to units with different wire diameters, branches, and wiring positions in engineering projects, exhibiting a high degree of versatility. Simultaneously, the automatic tightening insect-proof function of this utility model's cable-passing device ensures automatic insect prevention after installation, improving product quality and production installation efficiency, and solving the problems of low cable-passing efficiency and insect-proof sealing in engineering projects.
[0054] In some embodiments, the aforementioned second blocking member 3 may be provided with a second locking mechanism, which is used to lock the second blocking member 3 when it moves to the cable 100 and is triggered by the cable 100. The second locking mechanism, in conjunction with the first locking mechanism, can further improve the stability of the position of the cable outlet 101 after it has been determined, preventing the position of the cable outlet 101 from shifting.
[0055] In some embodiments, the structures of the aforementioned second locking mechanism and the first locking mechanism can be identical, thus enabling the first locking mechanism and the second locking mechanism to be manufactured in a unified manner, saving processing costs.
[0056] To achieve the function of the aforementioned first locking mechanism, in some embodiments, such as Figure 5-6 As shown, the aforementioned first locking mechanism may include a movable locking block 7, and the aforementioned cable-passing device includes a fixed locking part. The fixed locking part may be disposed on the aforementioned support member 1. The first locking mechanism is used to drive the movable locking block 7 to move relative to the first blocking member 2 to a first position when triggered by the cable 100, so that the movable locking block 7 engages with the fixed locking part to lock the first blocking member 2.
[0057] Since the first blocking member 2 is a movable member, the first blocking member 2 can drive the first locking mechanism on it to move together. In order to enable the movable locking block 7 to smoothly engage with the fixed locking part when the first blocking member 2 moves to any position, in some embodiments, the number of the aforementioned fixed locking parts can be more than two, and they are arranged sequentially along the movement trajectory direction of the first blocking member 2.
[0058] In the above example, by increasing the number of fixed locking parts and arranging each fixed locking part sequentially along the movement trajectory of the first blocking member 2, the spacing between each fixed locking part can be minimized, and it is best to arrange each pair of adjacent fixed locking parts seamlessly. This is beneficial to ensure that the movable locking block 7 can smoothly engage with the corresponding fixed locking part when the first blocking member 2 moves to any position.
[0059] In a specific application example, such as Figure 5-6 As shown, the aforementioned fixed latching part can be a fixedly installed latching slot 14. The movable latching block 7 has an insertion part 71, which is inserted into the latching slot 14 to latch with it. The opposite side walls of the latching slot 14 are open to guide the insertion part 71 into the latching slot 14, thus facilitating the insertion part 71 into the latching slot 14.
[0060] In some implementations, such as Figure 6 As shown, the insertion portion 71 gradually tapers along the direction in which it is inserted into the slot 14, thus guiding the insertion portion 71 into the slot 14 and facilitating its insertion. In a specific application example, the insertion portion 71 has opposing first and second sidewalls, and the distance between the first and second sidewalls gradually decreases along the direction in which the insertion portion 71 is inserted into the slot 14, so that the insertion portion 71 gradually tapers along the direction in which it is inserted into the slot 14.
[0061] In a specific application example, such as Figure 6As shown, the two opposite side walls of the card slot 14 are symmetrically arranged, and the included angle between the two opposite side walls is A. The aforementioned first side wall and second side wall are symmetrically arranged, and the included angle between them is B. Wherein, A = B. In this example, by making the included angle between the opposite side walls of the card slot 14 consistent with the included angle between the opposite side walls of the insertion part 71, it is beneficial for the insertion part 71 to be inserted into the card slot 14.
[0062] In some embodiments, A = B = 50°-70°. Preferably, A = B = 60°.
[0063] In some implementations, such as Figure 6 As shown, the two adjacent slots 14 are transitioned by a raised arc structure 20, and the arc structure 20 is tangent to the slot walls of the two adjacent slots 14. The arc structure 20 serves a guiding function; when the insertion part 71 of the movable card block 7 abuts against the arc structure 20, the arc structure 20 can guide the insertion part 71 of the movable card block 7 into the slot 14, facilitating the insertion and positioning of the insertion part 71 of the movable card block 7 within the slot 14.
[0064] In a specific application example, such as Figure 6 As shown, two adjacent slots 14 are designated as a first slot and a second slot, respectively. The first slot has a first wall, and the second slot has a second wall. The first and second walls are transitioned by the aforementioned raised arc structure 20, which is tangent to both the first and second walls. The included angle between the first and second walls can be C, where C = 50°-70°. Preferably, C = 60° to facilitate the insertion of the movable block 7's insertion portion 71 into the slot 14.
[0065] To achieve the function that the first locking mechanism can be triggered by the cable 100 when the first blocking member 2 moves to the cable 100, in some embodiments, such as Figure 5-6 As shown, the first locking mechanism may include a movable drive block 8, which is used to abut against the cable 100 when the first blocking member 2 moves to the cable 100 and is pushed by the cable 100 to a preset position, so that the cable 100 triggers the first locking mechanism. Specifically, when the first locking mechanism is triggered by the cable 100, the drive block 8 drives the movable locking block 7 to move to the aforementioned first position.
[0066] In the above example, since the first locking mechanism is set on the first blocking member 2, the driving block 8 of the first locking mechanism is also located on the first blocking member 2. The first blocking member 2 can drive the driving block 8 to move together. When the first blocking member 2 moves to the cable 100, the first blocking member 2 drives the driving block 8 to abut against the cable 100, so that the cable 100 pushes the driving block 8 to a preset position to trigger the first locking mechanism. Thus, the function of the first locking mechanism being triggered by the cable 100 when the first blocking member 2 moves to the cable 100 is realized.
[0067] To achieve the function of the aforementioned first locking mechanism driving the movable locking block 7 to the aforementioned first position via the driving block 8 when triggered by the cable 100, in some embodiments, such as Figure 6 As shown, the aforementioned driving block 8 may have a first magnetic part 15, and the movable block 7 may have a second magnetic part 16. The driving block 8, through the cooperation of the first magnetic part 15 and the second magnetic part 16, drives the movable block 7 to move relative to the first blocking member 2 to the aforementioned first position. Specifically, the second magnetic part 16 and the first magnetic part 15 may have the same magnetism. When the driving block 8 moves to the aforementioned preset position, the first magnetic part 15 and the second magnetic part 16 face each other, causing the second magnetic part 16 to move away from the first magnetic part 15 under the action of the magnetic force of the first magnetic part 15, thereby driving the movable block 7 to move relative to the first blocking member 2 to the aforementioned first position.
[0068] In the above example, since the first magnetic part 15 and the second magnetic part 16 have the same magnetism, they will repel each other when they are facing each other. When the position of the driving block 8 remains unchanged, the position of the first magnetic part 15 is fixed, so the second magnetic part 16 will drive the movable locking block 7 to move under the repulsive force of the first magnetic part 15, so that the movable locking block 7 moves relative to the first blocking member 2 to the aforementioned first position, thereby realizing the function of the aforementioned first locking mechanism driving the movable locking block 7 to the aforementioned first position through the driving block 8 when triggered by the cable 100.
[0069] In some embodiments, the aforementioned cable-passing device may further include a first unlocking mechanism, which is used to unlock the first blocking member 2 after the cable 100 in the cable outlet hole 101 is removed, so as to restore the first blocking member 2 to a freely movable state, so as to facilitate the readjustment of the position of the cable outlet hole 101.
[0070] To achieve the function of the first unlocking mechanism described above, in some embodiments, such as Figure 6-7As shown, when the first locking mechanism includes a movable locking block 7 and the cable guide device includes a fixed locking part, the first locking mechanism is used to drive the movable locking block 7 to move relative to the first blocking member 2 to a first position when triggered by the cable 100, so that the movable locking block 7 engages with the fixed locking part to lock the first blocking member 2; and the first locking mechanism also includes a movable driving block 8, which is used to abut against the cable 100 when the first blocking member 2 moves to the cable 100, and is pushed by the cable 100 to a preset position so that the cable 100 triggers the first locking mechanism; and when the first locking mechanism is triggered by the cable 100, it drives the movable locking block 7 to move relative to the first blocking member 2 to a first position when triggered by the cable 100. The movable locking block 7 moves to a first position relative to the first blocking member 2, and the driving block 8 has a first magnetic part 15, while the movable locking block 7 has a second magnetic part 16; the second magnetic part 16 and the first magnetic part 15 have the same magnetism; when the driving block 8 moves to a preset position, the first magnetic part 15 and the second magnetic part 16 face each other, causing the second magnetic part 16 to move away from the first magnetic part 15 under the action of the magnetic force of the first magnetic part 15, so as to drive the movable locking block 7 to move to the first position relative to the first blocking member 2. The aforementioned first unlocking mechanism may include a third magnetic part 17, a fourth magnetic part 18, and a fifth magnetic part 19. The third magnetic part 17 is disposed on the driving block 8, and the fourth magnetic part 18 and the fifth magnetic part 19 are both disposed on the first blocking member 2. The third magnetic part 17 and the fourth magnetic part 18 have the same magnetism and are arranged opposite each other. After the cable 100 in the outlet hole 101 is removed, the third magnetic part 17 moves away from the fourth magnetic part 18 under the magnetic force of the fourth magnetic part 18, allowing the drive block 8 to reset under the action of the third magnetic part 17. The fifth magnetic part 19 and the second magnetic part 16 have opposite magnetism. When the drive block 8 resets, the drive block 8 moves away from the fifth magnetic part 19 and the second magnetic part 16, so that the fifth magnetic part 19 and the second magnetic part 16 are opposite to each other. The second magnetic part 16 moves closer to the fifth magnetic part 19 under the magnetic force of the fifth magnetic part 19, thereby driving the movable locking block 7 out of the fixed locking part and unlocking the first blocking member 2.
[0071] In the above example, the third magnetic part 17 and the fourth magnetic part 18 have the same magnetism and will repel each other when they are facing each other. When the cable 100 in the outlet hole 101 is removed, the pressure of the cable 100 on the driving block 8 disappears. At this time, the driving block 8 moves away from the fourth magnetic part 18 under the action of the third magnetic part 17, so that the driving block 8 can be reset. After the driving block 8 is reset, it moves away from the fifth magnetic part 19 and the second magnetic part 16, so that the fifth magnetic part 19 with opposite magnetism faces the second magnetic part 16. In this way, the fifth magnetic part 19 can attract the movement of the second magnetic part 16, so that the second magnetic part 16 drives the movable locking block 7 to exit the fixed locking part, thereby unlocking the first blocking member 2. In this way, the first unlocking mechanism unlocks the first blocking member 2 after the cable 100 in the outlet hole 101 is removed.
[0072] In some implementations, such as Figure 6 As shown, the aforementioned first blocking member 2 may be provided with a first guide groove 102, which is used to guide the movement of the movable block 7 to improve the movement accuracy of the movable block 7. The first guide groove 102 has a first stop portion 21, which is used to stop and limit the movable block 7 when it returns to its initial position to prevent excessive movement of the movable block 7.
[0073] In some implementations, such as Figure 6 As shown, the aforementioned first blocking member 2 may be provided with a second guide groove 104. The second guide groove 104 is used to guide the movement of the driving block 8 to improve the movement accuracy of the driving block 8. The driving block 8 passes through the second guide groove 104, and the driving block 8 has an A stop portion 81 on one side of the second guide groove 104. The A stop portion 81 is used to abut against one side of the second guide groove 104 when the driving block 8 moves to a preset position to prevent the driving block 8 from moving excessively and to ensure the stability of the driving block 8 at the preset position. The aforementioned driving block 8 has a B stop portion 82 on the other side of the second guide groove 104. The B stop portion 82 is used to abut against the other side of the second guide groove 104 when the driving block 8 returns to its initial position to prevent the driving block 8 from moving excessively and to ensure the stability of the driving block 8 when returning to its initial position.
[0074] In a specific application example, such as Figure 6 As shown, the aforementioned first blocking member 2 may be provided with a groove 103, which is separated from the aforementioned first guide groove 102 by a first stop portion 21. The first stop portion 21 has a through hole connecting the groove 103 and the first guide groove 102. The groove 103 has a first side opposite to the through hole, where the aforementioned fifth magnetic part 19 is disposed. The aforementioned second magnetic part 16 is disposed on the side of the movable block 7 opposite to the through hole. The groove 103 has a second side adjacent to the first side, where the aforementioned second guide groove 104 is disposed. The groove 103 has a third side opposite to the second side, where the aforementioned fourth magnetic part 18 is disposed. The aforementioned third magnetic part 17 is disposed on the side of the driving block 8 opposite to the third side. When the driving block 8 moves to a preset position, side A of the driving block 8 faces the side of the second magnetic part 16 of the movable block 7, and the aforementioned first magnetic part 15 is disposed on side A of the driving block 8.
[0075] In some embodiments, when the second blocking member 3 is provided with a second locking mechanism, the second locking mechanism is used to lock the second blocking member 3 when it is triggered by the cable 100 when it moves to the cable 100. The cable passing device also includes a second unlocking mechanism, which is used to unlock the second blocking member 3 after the cable 100 in the cable outlet hole 101 is taken out, so as to restore the second blocking member 3 to a state where it can move freely, so as to facilitate the readjustment of the position of the cable outlet hole 101.
[0076] In some embodiments, the aforementioned first unlocking mechanism and second unlocking mechanism have the same structure, so that the first unlocking mechanism and the second unlocking mechanism can be processed in the same way, saving processing costs.
[0077] To achieve the function of the aforementioned elastic mechanism 6, in some embodiments, such as Figure 1-3 As shown, the aforementioned elastic mechanism 6 includes a first elastic mechanism 61 and a second elastic mechanism 62. The first elastic mechanism 61 is used to drive the first blocking member 2 closer to the second blocking member 3, and the second elastic mechanism 62 is used to drive the second blocking member 3 closer to the first blocking member 2. The first blocking member 2 can be driven by an external force to overcome the elastic force of the first elastic mechanism 61 and move away from the second blocking member 3; the second blocking member 3 can also be driven by an external force to overcome the elastic force of the second elastic mechanism 62 and move away from the first blocking member 2.
[0078] In the above example, the first elastic mechanism 61 and the second elastic mechanism 62 work together to drive the first blocking member 2 and the second blocking member 3 to move, so that the first blocking member 2 and the second blocking member 3 are relatively close to each other, so as to clamp the cable 100 in the cable outlet hole 101, thereby realizing the function of the aforementioned elastic mechanism 6.
[0079] The aforementioned first elastic mechanism 61 can be an existing elastic mechanism; for example, the structure of the first elastic mechanism 61 can be similar to that of a measuring tape. In some embodiments, such as... Figure 4 As shown, the first elastic mechanism 61 can be connected to the first blocking member 2 via the first connecting strip 11, so as to pull the first blocking member 2 closer to the second blocking member 3 via the first connecting strip 11. The first elastic mechanism 61 can retract the first connecting strip 11 when it is pulled. In a specific application example, the first elastic mechanism 61 may include a first coil spring, the first connecting strip 11 is a flexible strip, one end of the first connecting strip 11 is connected to the first coil spring, and the other end of the first connecting strip 11 is connected to the first blocking member 2. The first elastic mechanism 61 pulls the first connecting strip 11 via the first coil spring, causing the first connecting strip 11 to pull the first blocking member 2 closer to the second blocking member 3. The first coil spring can retract the first connecting strip 11 when it is pulled.
[0080] Similarly, the second elastic mechanism 62 described above can be an elastic mechanism from the prior art; for example, the structure of the second elastic mechanism 62 can be similar to that of a measuring tape. In some embodiments, such as... Figure 4 As shown, the second elastic mechanism 62 can be connected to the second blocking member 3 via the second connecting strip 12, so that the second blocking member 3 can be pulled closer to the first blocking member 2 via the second connecting strip 12. The second elastic mechanism 62 can retract the second connecting strip 12 when it is pulled. In a specific application example, the second elastic mechanism 62 may include a second coil spring, the second connecting strip 12 is a flexible strip, one end of the second connecting strip 12 is connected to the second coil spring, and the other end of the second connecting strip 12 is connected to the second blocking member 3. The second elastic mechanism 62 pulls the second connecting strip 12 via the second coil spring, causing the second connecting strip 12 to pull the second blocking member 3 closer to the first blocking member 2. The second coil spring can retract the second connecting strip 12 when it is pulled.
[0081] In some implementations, such as Figure 2-3 As shown, one end of the aforementioned first blocking member 2 may be provided with a first clamping plate 4, and one end of the second blocking member 3 may be provided with a second clamping plate 5. The first blocking member 2 clamps the cable 100 in the cable outlet hole 101 through the cooperation of the first clamping plate 4 and the second clamping plate 5 on the second blocking member 3. The aforementioned first locking mechanism and first unlocking mechanism can both be provided on the first clamping plate 4, and the aforementioned second locking mechanism and second unlocking mechanism can both be provided on the second clamping plate 5. The aforementioned first elastic mechanism 61 can be provided on the side of the second blocking member 3 opposite to the first blocking member 2. The aforementioned first connecting strip 11 passes through the first limiting groove on the second clamping plate 5 and connects to the first clamping plate 4. The first connecting strip 11 is connected to the first blocking member 2 through the first clamping plate 4, and the first limiting groove can limit the first connecting strip 11. Similarly, the aforementioned second elastic mechanism 62 can be disposed on the side of the first blocking member 2 opposite to the second blocking member 3. The aforementioned second connecting strip 12 passes through the second limiting groove on the first clamping plate 4 and connects to the second clamping plate 5. The second connecting strip 12 is connected to the second blocking member 3 through the second clamping plate 5. The second limiting groove can limit the second connecting strip 12.
[0082] In some implementations, such as Figure 2 As shown, the aforementioned first sealing element 9 is disposed on the first clamping plate 4, and the second sealing element 10 is disposed on the second clamping plate 5. The sealing structure formed by the first sealing element 9 and the second sealing element 10 is located between the aforementioned first connecting strip 11 and second connecting strip 12 (e.g., Figure 4As shown, the first connecting strip 11 and the second connecting strip 12 are staggered to facilitate their installation. In a specific application example, one of the first connecting strip 11 and the second connecting strip 12 is located on the front side of the sealing structure, and the other is located on the rear side of the sealing structure.
[0083] In this design, after the cable 100 passes through the outlet hole 101 and is properly routed, the first clamping plate 4 automatically moves towards the second clamping plate 5 under the action of the first elastic mechanism 61. Similarly, the second clamping plate 5 automatically moves towards the first clamping plate 4 under the action of the second elastic mechanism 62. This causes the first clamping plate 4 and the second clamping plate 5 to automatically tighten towards the middle. The first clamping plate 4 moves together with the first shielding member 2, and the second clamping plate 5 moves together with the second shielding member 3. The first sealing member 9 and the second sealing member 10 automatically press and seal at the outlet, thereby achieving a fixing and insect-proof effect, while also solving the problem of protecting easily accessible live parts. Compared with the sealing method of using sponge or cable tie tail rubber rings, the present invention can achieve automatic sealing, thereby improving assembly efficiency.
[0084] It should be noted that the aforementioned support member 1 may sometimes be referred to as a mounting cover. The cable 100 inside the aforementioned cable outlet 101 may sometimes be referred to as an engineering cable. The aforementioned cable guiding device may include a fixed guide rail 13, which may be mounted on the support member 1. The fixed guide rail 13 is used to guide the movement of both the first shield 2 and the second shield 3.
[0085] In some embodiments, the present invention also provides an air conditioner, which may include a support member 1 and a cable guide device as described above. The cable guide device is mounted on the support member 1. Because the air conditioner uses the aforementioned cable guide device, the position of the cable outlet 101 can be adjusted according to the actual cable outlet position. This adjustable position of the cable outlet 101 greatly improves the flexibility of cable installation, simplifies the cable installation process, and reduces installation difficulty and time costs.
[0086] For ease of understanding, the overall structure of this utility model will be described below, and its working principle will be explained.
[0087] When no wire is routed inside the outlet hole 101 of the wire-passing device of this utility model, such as Figure 6As shown, the first clamping plate 4 and the second clamping plate 5 can be kept open by a rigid object. At this time, the movable blocks 7 on both the first clamping plate 4 and the second clamping plate 5 are each attracted upwards by their respective fifth magnetic parts 19 via the second magnetic part 16. The second magnetic part 16 and the fifth magnetic part 19 have opposite magnetic properties; for example, the second magnetic part 16 can be a north pole and the fifth magnetic part 19 can be a south pole. After the movable blocks 7 move to their initial position, they are stopped by the first stop part 21 to prevent them from moving further upwards. At this time, both the first clamping plate 4 and the second clamping plate 5 can move freely. The driving blocks 8 on both the first clamping plate 4 and the second clamping plate 5 are each repelled by their respective fourth magnetic parts 18 via the third magnetic part 17, causing the driving blocks 8 to be pushed outwards. The third magnetic part 17 and the fourth magnetic part 18 have the same magnetic properties; for example, both have a north pole.
[0088] like Figure 7 As shown, after the cable 100 has finished routing through the outlet hole 101, the first clamping plate 4 and the second clamping plate 5 each drive their corresponding movable locking blocks 7 to move towards the center to clamp the cable 100. When the first clamping plate 4 and the second clamping plate 5 move to the cable 100, the driving blocks 8 on both the first clamping plate 4 and the second clamping plate 5 are pressed by the cable 100 and move away from the cable 100 to a predetermined position. After the driving blocks 8 move to the predetermined position, the first magnetic part 15 on the driving block 8 faces the second magnetic part 16 on the movable locking block 7. The first magnetic part 15 and the second magnetic part 16 have the same magnetism, for example, both can be N poles. The first magnetic part 15 and the second magnetic part 16 face each other and repel each other. The second magnetic part 16 is repelled by the first magnetic part 15, causing the movable locking block 7 to be pushed downward and locked into the slot 14.
[0089] When it is necessary to remove the cable 100 from the outlet hole 101, such as Figure 6 As shown, after cable 100 is removed, drive block 8 is ejected to its initial position under the repulsive force of the fourth magnetic part 18. After drive block 8 is ejected, it clears the space between the second magnetic part 16 and the fifth magnetic part 19, allowing movable card block 7 to move upward to its initial position under the adsorption force of the fifth magnetic part 19, thereby unlocking both the first clamping plate 4 and the second clamping plate 5, restoring them to a freely movable state.
[0090] It will be readily understood by those skilled in the art that, without conflict, the advantageous technical features of the above-mentioned methods can be freely combined and superimposed.
[0091] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of this utility model. The above description is only a preferred embodiment of this utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of this utility model, and these improvements and modifications should also be considered within the protection scope of this utility model.
Claims
1. A wire guiding device, characterized in that: The device includes a first shielding member (2), a second shielding member (3), and an elastic mechanism (6). Both the first shielding member (2) and the second shielding member (3) are movable. The first shielding member (2) and the second shielding member (3) are opposite to each other and form a cable outlet hole (101) between them. The elastic mechanism (6) is used to drive the first shielding member (2) and the second shielding member (3) to move, so that the first shielding member (2) and the second shielding member (3) are relatively close to each other, so as to clamp the cable (100) in the cable outlet hole (101). The first shielding member (2) is provided with a first locking mechanism, which is used to lock the first shielding member (2) when it moves to the cable (100) and is triggered by the cable (100).
2. The wire guiding device according to claim 1, characterized in that: The first locking mechanism includes a movable locking block (7), and the cable passing device includes a fixed locking part. The first locking mechanism is used to drive the movable locking block (7) to move relative to the first blocking member (2) to a first position when triggered by the cable (100), so that the movable locking block (7) engages with the fixed locking part to lock the first blocking member (2).
3. The wire guiding device according to claim 2, characterized in that: The number of fixed locking parts is two or more, and they are arranged sequentially along the movement trajectory of the first blocking member (2).
4. The wire guiding device according to claim 3, characterized in that: The fixed latching part is a fixedly provided latching slot (14); the movable latching block (7) has a plugging part (71), and the movable latching block (7) is inserted into the latching slot (14) through the plugging part (71) to latch with the latching slot (14); wherein, The opposite side walls of the slot (14) are opened to guide the insertion part (71) into the slot (14); And / or, along the direction in which the plug (71) is inserted into the slot (14), the plug (71) gradually tapers; And / or, two adjacent slots (14) are transitioned by a raised arc structure (20), and the arc structure (20) is tangent to the slot walls of the two adjacent slots (14).
5. The wire guiding device according to any one of claims 2-4, characterized in that: The first locking mechanism further includes a movable drive block (8), which is used to abut against the cable (100) and be pushed by the cable (100) to a preset position when the first blocking member (2) moves to the cable (100), so that the cable (100) triggers the first locking mechanism; wherein, when the first locking mechanism is triggered by the cable (100), the drive block (8) drives the movable locking block (7) to move to the first position.
6. The wire guiding device according to claim 5, characterized in that: The drive block (8) has a first magnetic part (15), and the movable card block (7) has a second magnetic part (16); the drive block (8) cooperates with the first magnetic part (15) and the second magnetic part (16) to drive the movable card block (7) to move to the first position.
7. The wire guiding device according to claim 6, characterized in that: The second magnetic part (16) and the first magnetic part (15) have the same magnetism; when the driving block (8) moves to the preset position, the first magnetic part (15) and the second magnetic part (16) are opposite each other, so that the second magnetic part (16) moves away from the first magnetic part (15) under the action of the magnetic force of the first magnetic part (15), thereby driving the movable card block (7) to move to the first position.
8. The wire guiding device according to any one of claims 1-4 and 6-7, characterized in that: The second shielding member (3) is provided with a second locking mechanism. The second locking mechanism is used to lock the second shielding member (3) when it moves to the cable (100) and is triggered by the cable (100). The second locking mechanism and the first locking mechanism have the same structure.
9. The wire guiding device according to any one of claims 1-4 and 6-7, characterized in that: The cable passing device further includes a first unlocking mechanism, which is used to unlock the first blocking member (2) after the cable (100) in the cable outlet (101) is taken out.
10. The wire guiding device according to claim 9, characterized in that: When the first locking mechanism includes a movable latch (7) and the cable guide device includes a fixed latching part, the first locking mechanism is used to drive the movable latch (7) to move relative to the first shielding member (2) to a first position when triggered by the cable (100), so that the movable latch (7) engages with the fixed latching part to lock the first shielding member (2); and the first locking mechanism also includes a movable drive block (8), the drive block (8) is used to abut against the cable (100) when the first shielding member (2) moves to the cable (100) and be pushed by the cable (100) to a preset position, so that the cable (100) triggers the first locking mechanism; and the first When a locking mechanism is triggered by the cable (100), it drives the movable locking block (7) to move to the first position via the drive block (8). The drive block (8) has a first magnetic part (15), and the movable locking block (7) has a second magnetic part (16). The second magnetic part (16) and the first magnetic part (15) have the same magnetism. When the drive block (8) moves to the preset position, the first magnetic part (15) and the second magnetic part (16) face each other, causing the second magnetic part (16) to move away from the first magnetic part (15) under the magnetic force of the first magnetic part (15), thereby driving the movable locking block (7) to move to the first position. The first unlocking mechanism includes a third magnetic part (17), a fourth magnetic part (18), and a fifth magnetic part (19). The third magnetic part (17) is disposed on the driving block (8), and the fourth magnetic part (18) and the fifth magnetic part (19) are both disposed on the first blocking member (2). The third magnetic part (17) and the fourth magnetic part (18) have the same magnetism and are disposed opposite to each other. After the cable (100) in the cable outlet hole (101) is taken out, the third magnetic part (17) moves away from the fourth magnetic part (18) under the magnetic force of the fourth magnetic part (18), allowing the driving block (8) to unlock. The moving block (8) is reset under the drive of the third magnetic part (17); wherein the fifth magnetic part (19) and the second magnetic part (16) have opposite magnetic properties. When the driving block (8) is reset, the driving block (8) moves away from the fifth magnetic part (19) and the second magnetic part (16), so that the fifth magnetic part (19) and the second magnetic part (16) are opposite to each other, so that the second magnetic part (16) moves closer to the fifth magnetic part (19) under the action of the magnetic force of the fifth magnetic part (19), thereby driving the movable locking block (7) to exit the fixed locking part, so that the first blocking member (2) is unlocked.
11. The wire guiding device according to claim 10, characterized in that: The first shielding member (2) is provided with a first guide groove (102), which is used to guide the movement of the movable block (7). The first guide groove (102) has a first stop part (21), which is used to stop and limit the movable block (7) when the movable block (7) is reset to the initial position. And / or, the first shielding member (2) is provided with a second guide groove (104), the second guide groove (104) is used to guide the movement of the driving block (8), the driving block (8) passes through the second guide groove (104), and the driving block (8) has an A stop portion (81) on one side of the second guide groove (104), the A stop portion (81) is used to abut against one side of the second guide groove (104) when the driving block (8) moves to the preset position; the driving block (8) has a B stop portion (82) on the other side of the second guide groove (104), the B stop portion (82) is used to abut against the other side of the second guide groove (104) when the driving block (8) is reset to the initial position.
12. The wire guiding device according to claim 9, characterized in that: When the second blocking member (3) is provided with a second locking mechanism, and the second locking mechanism is used to lock the second blocking member (3) when it moves to the cable (100) and is triggered by the cable (100), the cable passing device also includes a second unlocking mechanism, which is used to unlock the second blocking member (3) after the cable (100) in the cable outlet (101) is taken out; wherein, the first unlocking mechanism and the second unlocking mechanism have the same structure.
13. The wire guiding device according to any one of claims 1-4, 6-7, and 10-12, characterized in that: The elastic mechanism (6) includes a first elastic mechanism (61) and a second elastic mechanism (62). The first elastic mechanism (61) is used to drive the first blocking member (2) to move closer to the second blocking member (3), and the second elastic mechanism (62) is used to drive the second blocking member (3) to move closer to the first blocking member (2).
14. An air conditioner, characterized in that: It includes a support member (1) and a wire guiding device according to any one of claims 1-13; the wire guiding device is mounted on the support member (1).