Partition structure of air conditioner water baffle
By designing the staggered bends and adjustment mechanisms, the problem that the water barrier cannot adapt to different wind speeds is solved, effective condensate separation and air circulation at different wind speeds is achieved, and the adaptability of the water barrier is optimized.
Patent Information
- Application Number
- CN202421882733.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-06
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-08-06
AI Technical Summary
The existing water barrier structure cannot adapt to different wind speeds, which will affect the air circulation and condensate separation effect when the wind speed changes.
A partition structure of an air-conditioning water barrier is designed, including a support shell, a water barrier mechanism, a side support mechanism and a closure mechanism. Through the first single bent pipe and the second single bent pipe arranged staggeredly, the second single bent pipe is driven to move with the air rod, the linkage frame is sealed, the side support block adjusts the channel length, and the closing mechanism adjusts the channel opening and closing, so that the structural deformation is adapted to different wind speeds.
It can effectively separate condensate at different wind speeds, optimize the adaptability of the water barrier, ensure air circulation, and avoid unit damage.
Smart Images

Figure CN223090807U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of air conditioner water baffle, in particular to a partition structure of an air conditioner water baffle. Background Art
[0002] The water baffle is an important component of the central air conditioner terminal device, which is matched with the central air conditioner and functions as steam-water separation.
[0003] Based on the fact that the structure of the existing water baffle is fixed and cannot be adjusted according to the wind speed. If the flow distance of the water baffle is too long, when the wind speed decreases, the air volume will be reduced, directly affecting the smooth passage of air. And if the flow distance of the water baffle is too short, when the wind speed increases, the condensed water in the air cannot be completely separated, which may cause damage to the unit. It can be seen from this that the water baffle with a fixed structure cannot adapt to different wind speeds. Content of the Utility Model
[0004] The utility model discloses a partition structure of an air conditioner water baffle, aiming to solve the technical problem that the water baffle with a fixed structure cannot adapt to different wind speeds.
[0005] In order to achieve the above purpose, the utility model adopts the following technical scheme:
[0006] A partition structure of an air conditioner water baffle, comprising a support housing, a water blocking mechanism arranged in the support housing, a side support mechanism attached to the outer walls on multiple sides of the water blocking mechanism, and a sealing mechanism arranged between the water blocking mechanisms; the water blocking mechanism includes a plurality of first single-bend pipes and a plurality of second single-bend pipes, the plurality of first single-bend pipes and the plurality of second single-bend pipes are arranged alternately, the first single-bend pipe and the second single-bend pipe each include a same bend, and the two bends are arranged in opposite directions. The water blocking mechanism further includes a linkage frame arranged on the inner wall of the same side of the plurality of second single-bend pipes, a first through hole and a second through hole penetrating through both sides of the linkage frame, a through groove penetrating through one side of the first single-bend pipe, a groove opened on the inner wall of the opposite side of the first single-bend pipe, a first baffle fixed on the outer wall of one side of the first single-bend pipe, a second baffle fixed on the outer wall of one side of the second single-bend pipe, a linkage rod fixed to the outer wall of one side of the side support mechanism, a push block fixed to the middle section of the linkage rod, and a pneumatic rod fixed to the outer wall of one side of the push block;
[0007] The first perforation is arranged between the second single-bend pipe and the linkage frame. The second perforation is arranged between the first single-bend pipe and the second single-bend pipe. One end of the linkage frame is inserted into the groove through the slot. At this time, the second perforation is located inside the first single-bend pipe. The outer walls of the bottoms of multiple second single-bend pipes are respectively fixedly connected with multiple limiting sliders. The inner wall of the bottom end of the support housing is fixedly connected with a bottom frame, and multiple limiting chutes are arranged through the bottom frame. Multiple limiting sliders are movably clamped in the limiting chutes. A water leakage groove is arranged between the bottom frame and the support housing, and a water leakage hole is arranged through the center position of the bottom frame. The water leakage hole is connected to the inner walls of multiple first single-bend pipes and multiple second single-bend pipes.
[0008] By providing a water blocking mechanism, when the air rod drives multiple second single-bend pipes to move into the first single-bend pipe, the second perforation enters the first single-bend pipe from the slot, thereby forming a channel including multiple bends, that is, entering from the second single-bend pipe and discharging from the first single-bend pipe after passing through the linkage frame, thereby realizing the extension of the channel and being more suitable for use in high wind speeds. In this structure, through the deformation of the structure, it can be adapted to low wind speeds and high wind speeds respectively, optimizing the adaptability of the structure.
[0009] In a preferred solution, the side support mechanism includes a first side support block fixedly connected to the outer wall of one side of the first single-bend pipe located at the front end, a second side support block fixedly connected to the inner wall of the support housing, a second extrusion support block fixedly connected to the outer walls of the same side of multiple first single-bend pipes, and a first extrusion support block fixedly connected to the outer walls of the same side of multiple second single-bend pipes. The outer wall of one side of the second side support block is attached to the outside of the second single-bend pipe and the first extrusion support block. The first extrusion support block is attached to the outer wall of one side of the first single-bend pipe. The second extrusion support block is attached to the outer wall of one side of the second single-bend pipe. When the linkage frame is inserted into the groove, it is in a combined state. When the linkage frame disengages from the groove, it is in an open state. In the combined state, a third channel including multiple bends is supported and formed between the first extrusion support block and the second extrusion support block and between the first extrusion support block and the second side support block.
[0010] By providing a side support mechanism, in the open state, the side support mechanism can provide a blocking effect, enabling air to smoothly enter the first single-bend pipe and the second single-bend pipe. In the combined state, the first side support block and the second side support block in the side support mechanism open, forming a third channel including multiple bends, and realizing the function of extending the partition channel while ensuring air circulation by making full use of the remaining space.
[0011] In a preferred embodiment, the closing mechanism includes a first hinge seat and a second hinge seat. The first hinge seat is fixed to the outer wall of one side of the second single-bend pipe, and the second hinge seat is fixed to the outer wall of one side of the first single-bend pipe. The first hinge seat and the second hinge seat are respectively hinged with a first connecting rod and a second connecting rod. The opposite ends of the first connecting rod and the second connecting rod are hinged to each other, and rubber pads are fixedly connected to the outer walls of the same side of the first connecting rod and the second connecting rod. The rubber pads are attached to the outside of the second perforation.
[0012] By providing a closing mechanism, in the closing mechanism, the first connecting rod and the second connecting rod support the rubber pads, press the rubber pads against the outside of the second perforation. Thus, when the included angle between the first connecting rod and the second connecting rod is reduced, the rubber pads can be driven to fold. In this structure, the opening and closing of the second perforation can be automatically realized based on different states, so as to better cooperate with the air flow in the combined state and the open state.
[0013] As can be seen from the above, a partition structure of an air-conditioning water baffle includes a support housing, a water-blocking mechanism arranged in the support housing, a side support mechanism attached to the outer walls of multiple sides of the water-blocking mechanism, and a closing mechanism arranged between the water-blocking mechanisms; the water-blocking mechanism includes a plurality of first single-bend pipes and a plurality of second single-bend pipes, and the plurality of first single-bend pipes and the plurality of second single-bend pipes are arranged alternately. The first single-bend pipe and the second single-bend pipe each include a same bend, and the two bends are arranged in opposite directions. The water-blocking mechanism further includes a linkage frame arranged on the inner wall of the same side of the plurality of second single-bend pipes, a first perforation and a second perforation penetrating through both sides of the linkage frame, a through groove penetrating through one side of the first single-bend pipe, a groove opened on the inner wall of the opposite side of the first single-bend pipe, a first baffle fixed to the outer wall of one side of the first single-bend pipe, a second baffle fixed to the outer wall of one side of the second single-bend pipe, a linkage rod fixed to the outer wall of one side of the side support mechanism, a push block fixed to the middle section of the linkage rod, and a pneumatic rod fixed to the outer wall of one side of the push block. The partition structure of the air-conditioning water baffle provided by the present invention has the technical effect of being able to adapt to use at low wind speeds and high wind speeds respectively through the deformation of the structure, and optimizing the adaptability of the structure. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 FIG. 1 is a schematic external structure view of a partition structure of an air-conditioning water baffle proposed by the present invention.
[0015] Figure 2 FIG. 2 is a schematic internal structure view of a partition structure of an air-conditioning water baffle proposed by the present invention.
[0016] Figure 3 FIG. 3 is a schematic internal structure view of a partition structure of an air-conditioning water baffle proposed by the present invention in an open state.
[0017] Figure 4 Internal structure schematic diagram in the combined state of a partition structure of an air conditioner water baffle proposed by the present utility model.
[0018] Figure 5 Schematic diagram of the split structure of the closing mechanism of a partition structure of an air conditioner water baffle proposed by the present utility model.
[0019] In the drawings: 1, support housing; 2, water leakage groove; 3, side support mechanism; 4, water baffle mechanism; 5, closing mechanism; 6, water leakage hole; 7, chassis; 301, first side support block; 302, first extrusion support block; 303, second extrusion support block; 304, second side support block; 305, third channel; 401, air rod; 402, push block; 403, linkage rod; 404, linkage frame; 405, limit slider; 406, limit chute; 407, first baffle; 408, first single-bend pipe; 409, groove; 410, second baffle; 411, second single-bend pipe; 412, first perforation; 413, second perforation; 414, through slot; 501, first hinge seat; 502, first connecting rod; 503, second connecting rod; 504, rubber pad; 505, second hinge seat. Detailed implementation manners
[0020] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments.
[0021] A partition structure of an air conditioner water baffle disclosed by the present utility model is mainly applied to the scenario of using an air conditioner water baffle.
[0022] Refer to Figures 1-5, A partition structure for an air conditioner water baffle, including a support housing 1, a water blocking mechanism 4 arranged inside the support housing 1, a side support mechanism 3 attached to the outer walls on multiple sides of the water blocking mechanism 4, and a sealing mechanism 5 arranged between the water blocking mechanisms 4; The water blocking mechanism 4 includes multiple first single-bend pipes 408 and multiple second single-bend pipes 411. The multiple first single-bend pipes 408 and the multiple second single-bend pipes 411 are arranged alternately. The first single-bend pipe 408 and the second single-bend pipe 411 each include a same bend, and the two bends are arranged in opposite directions. The water blocking mechanism 4 further includes a linkage frame 404 arranged on the inner wall on the same side of the multiple second single-bend pipes 411, a first through hole 412 and a second through hole 413 penetrating through both sides of the linkage frame 404, a through slot 414 penetrating through one side of the first single-bend pipe 408, a groove 409 opened on the inner wall on the opposite side of the first single-bend pipe 408, a first baffle 407 fixed to the outer wall on one side of the first single-bend pipe 408, a second baffle 410 fixed to the outer wall on one side of the second single-bend pipe 411, a linkage rod 403 fixedly connected to the outer wall on one side of the side support mechanism 3, a push block 402 fixed to the middle section of the linkage rod 403, and an air rod 401 fixed to the outer wall on one side of the push block 402.
[0023] Refer to Figure 5 , In a preferred embodiment, the first through hole 412 is arranged between the second single-bend pipe 411 and the linkage frame 404, and the second through hole 413 is arranged between the first single-bend pipe 408 and the second single-bend pipe 411.
[0024] Refer to Figure 5 , In a preferred embodiment, one end of the linkage frame 404 is inserted into the groove 409 through the through slot 414. At this time, the second through hole 413 is located inside the first single-bend pipe 408.
[0025] Refer to Figure 2 , In a preferred embodiment, a plurality of limiting sliders 405 are respectively fixedly connected to the outer walls at the bottom ends of the multiple second single-bend pipes 411. A bottom frame 7 is fixedly connected to the inner wall at the bottom end of the support housing 1, and a plurality of limiting chutes 406 are penetrated through the bottom frame 7. The multiple limiting sliders 405 are movably clamped in the limiting chutes 406.
[0026] Refer to Figure 1 and Figure 2 , In a preferred embodiment, a water leakage groove 2 is arranged between the bottom frame 7 and the support housing 1, and a water leakage hole 6 is penetrated through the center position of the bottom frame 7. The water leakage hole 6 is connected to the inner walls of the multiple first single-bend pipes 408 and the multiple second single-bend pipes 411.
[0027] Refer to Figure 3 and Figure 4, in a preferred embodiment, the side support mechanism 3 includes a first side support block 301 fixedly connected to the outer wall of one side of the first single-bend pipe 408 at the front end, a second side support block 304 fixedly connected to the inner wall of the support housing 1, a second extrusion support block 303 fixedly connected to the outer walls of the same side of a plurality of first single-bend pipes 408, and a first extrusion support block 302 fixedly connected to the outer walls of the same side of a plurality of second single-bend pipes 411.
[0028] Referring to Figure 3 and Figure 4 , in a preferred embodiment, one outer wall of the second side support block 304 fits against the outer sides of the second single-bend pipe 411 and the first extrusion support block 302, the first extrusion support block 302 fits against one outer wall of the first single-bend pipe 408, and the second extrusion support block 303 fits against one outer wall of the second single-bend pipe 411.
[0029] Referring to Figure 3 and Figure 4 , in a preferred embodiment, the linkage frame 404 is inserted into the groove 409 in the merged state and disengaged from the groove 409 in the open state. In the merged state, between the first extrusion support block 302 and the second extrusion support block 303, and between the first extrusion support block 302 and the second side support block 304, they support to form a third channel 305 including multiple bends. The side support mechanism 3 is arranged between the first single-bend pipe 408 and the second single-bend pipe 411. In the open state, when they are used separately, the side support mechanism 3 can provide a blocking effect to allow air to smoothly enter the first single-bend pipe 408 and the second single-bend pipe 411. While in the merged state, the first side support block 301 and the second side support block 304 in the side support mechanism 3 open to form a third channel 305 including multiple bends, and then assist in the state switching of the first single-bend pipe 408 and the second single-bend pipe 411, and can form multi-bend channels with the same number. By making full use of the remaining space, while ensuring air circulation, the function of extending the partition channel is achieved.
[0030] Referring to Figure 5 , in a preferred embodiment, the closing mechanism 5 includes a first hinge seat 501 and a second hinge seat 505. The first hinge seat 501 is fixed to the outer wall of one side of the second single-bend pipe 411, and the second hinge seat 505 is fixed to the outer wall of one side of the first single-bend pipe 408. The first hinge seat 501 and the second hinge seat 505 are respectively hinged with a first connecting rod 502 and a second connecting rod 503.
[0031] Referring to Figure 5, in a preferred embodiment, the opposite ends of the first link 502 and the second link 503 are hinged to each other, and rubber pads 504 are fixedly connected to the outer walls on the same side of the first link 502 and the second link 503. The rubber pads 504 are attached to the outside of the second through hole 413. In the closing mechanism 5, the first single-bend pipe 408 and the second single-bend pipe 411 are respectively connected to the first link 502 and the second link 503 through the second hinge seat 505 and the first hinge seat 501. Based on the support provided by the first link 502 and the second link 503 to the rubber pads 504, the rubber pads 504 are pressed against the outside of the second through hole 413. Thus, in the closed state, the angle between the first link 502 and the second link 503 is reduced, which can drive the rubber pads 504 to fold. On the contrary, in the open state, the rubber pads 504 open to cover the second through hole 413. In this structure, the opening and closing of the second through hole 413 can be automatically realized based on different states, so as to better cooperate with the air flow in the closed state and the open state.
[0032] Working principle: The water blocking mechanism 4 is mainly composed of the first single-bend pipe 408 and the second single-bend pipe 411. Through the staggered arrangement of the two and the reverse setting of the bends of the two, while ensuring the consistency of the space of the channels in the first single-bend pipe 408 and the second single-bend pipe 411, more deformation possibilities are also provided. When the air rod 401 drives a plurality of second single-bend pipes 411 to move into the first single-bend pipe 408, the second through hole 413 enters the first single-bend pipe 408 from the through slot 414. Based on the sealing side of the linkage frame 404 to block the middle section of the first single-bend pipe 408, and the second baffle 410 that moves accordingly to block one end of the first single-bend pipe 408 to prevent air from entering, and simultaneously block the other end of the second single-bend pipe 411 through the first baffle 407 to prevent air from being discharged. Thus, a channel including multiple bends can be formed, that is, entering from the second single-bend pipe 411 and discharging from the first single-bend pipe 408 after passing through the linkage frame 404. Thus, the extension of the channel can be realized, which is more suitable for use in high wind speeds. In this structure, through the deformation of the structure, it can be adapted to use in low wind speeds and high wind speeds respectively, optimizing the adaptability of the structure.
[0033] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. The substitution can be the substitution of part of the structure, device, method steps, or a complete technical solution. Any equivalent substitution or change made according to the technical solution of the present invention and its inventive concept should be covered within the protection scope of the present invention.
Claims
1. A partition structure for an air conditioner water baffle, characterized in that It includes a support housing (1), a water blocking mechanism (4) arranged inside the support housing (1), a side support mechanism (3) attached to the outer walls on multiple sides of the water blocking mechanism (4), and a closing mechanism (5) arranged between the water blocking mechanisms (4); The water blocking mechanism (4) includes a plurality of first single-bend pipes (408) and a plurality of second single-bend pipes (411). The plurality of first single-bend pipes (408) and the plurality of second single-bend pipes (411) are arranged in an alternating manner. The first single-bend pipe (408) and the second single-bend pipe (411) each include a same bend, and the two bends are arranged in opposite directions. The water blocking mechanism (4) further includes a linkage frame (404) arranged on the inner wall on the same side of the plurality of second single-bend pipes (411), a first through hole (412) and a second through hole (413) penetrating through both sides of the linkage frame (404), a through slot (414) penetrating through one side of the first single-bend pipe (408), a groove (409) opened on the inner wall on the opposite side of the first single-bend pipe (408), a first baffle (407) fixed to the outer wall on one side of the first single-bend pipe (408), a second baffle (410) fixed to the outer wall on one side of the second single-bend pipe (411), a linkage rod (403) fixedly connected to the outer wall on one side of the side support mechanism (3), a push block (402) fixed to the middle section of the linkage rod (403), and an air rod (401) fixed to the outer wall on one side of the push block (402).
2. The partition structure of an air conditioner water baffle according to claim 1, characterized in that, The first through hole (412) is arranged between the second single-bend pipe (411) and the linkage frame (404), and the second through hole (413) is arranged between the first single-bend pipe (408) and the second single-bend pipe (411).
3. The partition structure of an air conditioner water baffle according to claim 2, characterized in that, One end of the linkage frame (404) is inserted into the groove (409) through the through slot (414), and at this time the second through hole (413) is located inside the first single-bend pipe (408).
4. The partition structure of an air conditioner water baffle according to claim 1, characterized in that A plurality of limiting sliders (405) are respectively fixedly connected to the outer walls at the bottom ends of the plurality of second single-bend pipes (411). The inner wall at the bottom end of the support housing (1) is fixedly connected with a bottom frame (7), and a plurality of limiting chutes (406) are penetrated through the bottom frame (7). The plurality of limiting sliders (405) are movably clamped in the limiting chutes (406).
5. The partition structure of an air conditioner water baffle according to claim 4, wherein, A water leakage groove (2) is arranged between the bottom frame (7) and the support housing (1), and a water leakage hole (6) is penetrated through the central position of the bottom frame (7). The water leakage hole (6) is connected to the inner walls of the plurality of first single-bend pipes (408) and the plurality of second single-bend pipes (411).
6. The partition structure of an air conditioner water baffle according to claim 1, characterized in that, The side support mechanism (3) includes a first side support block (301) fixedly connected to the outer wall on one side of the first single-bend pipe (408) at the front end, a second side support block (304) fixedly connected to the inner wall of the support housing (1), a second extrusion support block (303) fixedly connected to the outer walls on the same side of the plurality of first single-bend pipes (408), and a first extrusion support block (302) fixedly connected to the outer walls on the same side of the plurality of second single-bend pipes (411).
7. The partition structure of an air conditioner water baffle according to claim 6, characterized in that, One outer wall side of the second side support block (304) is attached to the outside of the second single-bend pipe (411) and the first extrusion support block (302), the first extrusion support block (302) is attached to one outer wall side of the first single-bend pipe (408), and the second extrusion support block (303) is attached to one outer wall side of the second single-bend pipe (411).
8. The partition structure of an air conditioner water baffle according to claim 7, characterized in that, The linkage frame (404) is inserted into the groove (409) to be in a combined state, and the linkage frame (404) is disengaged from the groove (409) to be in an open state. In the combined state, between the first extrusion support block (302) and the second extrusion support block (303), and between the first extrusion support block (302) and the second side support block (304), they support to form a third channel (305) including multiple bends.
9. The partition structure of an air conditioner water baffle according to claim 1, wherein The closing mechanism (5) includes a first hinge seat (501) and a second hinge seat (505). The first hinge seat (501) is fixed to one outer wall side of the second single-bend pipe (411), and the second hinge seat (505) is fixed to one outer wall side of the first single-bend pipe (408). The first hinge seat (501) and the second hinge seat (505) are respectively hinged with a first connecting rod (502) and a second connecting rod (503).
10. The partition structure of an air conditioner water baffle according to claim 9, characterized in that, The opposite ends of the first connecting rod (502) and the second connecting rod (503) are hinged to each other, and rubber pads (504) are fixedly connected to the same-side outer walls of the first connecting rod (502) and the second connecting rod (503). The rubber pads (504) are attached to the outside of the second through-hole (413).