Unpowered heat conduction air pipe of air compressor

By combining the use of a variety of air ducts and thermally conductive air duct systems with insulation designs, the problem of poor heat dissipation of the air compressor is solved, and the effective heat dissipation of the air compressor and air circulation in the factory are realized, reducing the temperature.

CN223164653UActive Publication Date: 2025-07-29GUIZHOU DAFANG YUEXIU FEED CO LTD
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Patent Information

Application Number
CN202422204404.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-09
Publication Date
2025-07-29
Estimated Expiration
2034-09-09

AI Technical Summary

Technical Problem

The air compressor in the feed factory has abnormal temperature rise due to poor heat dissipation, which often causes problems of tripping or poor pressure boosting.

Method used

The thermal air duct system consisting of indoor dual-chamber air ducts, outdoor dual-chamber air ducts, corner dual-chamber air ducts, dual-chamber air ducts, and single-chamber air ducts is adopted. Through the design of thermal insulation pads and stainless steel filters, the hot air in the air outlet of the air compressor is promoted to lead to the hot air outlet and introduce outdoor room temperature air to form a circulation channel.

Benefits of technology

Effectively reduce the internal temperature of the feed factory, promote heat dissipation of the air compressor, prevent tripping and poor pressure boosting, and realize air circulation.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223164653U_ABST
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Abstract

The utility model relates to an unpowered heat conduction air pipe of an air compressor, which comprises an indoor double-cavity air pipe, an outdoor double-cavity air pipe, a corner double-cavity air pipe, a double-cavity air pipe, a single-cavity air pipe and an air inlet single-cavity air pipe, at least one section of double-cavity air pipe is installed between the indoor double-cavity air pipe and the corner double-cavity air pipe, at least one section of double-cavity air pipe is installed between the outdoor double-cavity air pipe and the corner double-cavity air pipe, and at least one section of single-cavity air pipe is installed between the air inlet single-cavity air pipe and an outdoor air inlet cavity of the outdoor double-cavity air pipe. And height-adjustable supporting legs are mounted at the bottom end of the air inlet single-cavity air pipe. The air compressor has the beneficial effects that on one hand, hot air on the air outlet of the air compressor is led out, and on the other hand, outdoor normal-temperature air is led into a room, so that heat dissipation of the air compressor is promoted, air circulation in the feed plant is promoted, and the environment temperature in the feed plant is reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of ventilation, in particular to a power-free heat conduction air duct for an air compressor. Background Art

[0002] Due to the relatively small space in the feed workshop, the ambient temperature is relatively high in summer. Coupled with the semi-closed state of the feed workshop, the heat dissipated by the air compressor installed in the feed workshop accumulates in the feed workshop, which easily leads to abnormal temperature rise of the air compressor, frequent tripping or poor pressure boosting. Therefore, it is necessary to promote the heat dissipation of the air compressor. Content of the Utility Model

[0003] The purpose of the utility model is to overcome the above problems existing in the prior art and provide a power-free heat conduction air duct for an air compressor.

[0004] To achieve the above technical purpose and reach the above technical effect, the utility model is realized through the following technical solutions:

[0005] A power-free heat conduction air duct for an air compressor includes an indoor double-chamber air duct, an outdoor double-chamber air duct, a corner double-chamber air duct, a double-chamber air duct, a single-chamber air duct, and an air inlet single-chamber air duct. The indoor exhaust chamber of the indoor double-chamber air duct covers the air outlet of the air compressor. At least one section of the double-chamber air duct is installed between the indoor double-chamber air duct and the corner double-chamber air duct. At least one section of the double-chamber air duct is installed between the outdoor double-chamber air duct and the corner double-chamber air duct. At least one section of the single-chamber air duct is installed between the air inlet single-chamber air duct and the outdoor intake chamber of the outdoor double-chamber air duct. The bottom end of the air inlet single-chamber air duct is provided with support feet with adjustable height.

[0006] Among them, the indoor double-chamber air duct includes a parallel indoor exhaust chamber and an indoor intake chamber. A first heat insulation pad is pasted on the inner side wall of the indoor exhaust chamber. The top end of the indoor exhaust chamber is flush with the top end of the indoor intake chamber. The bottom end of the indoor exhaust chamber is lower than the bottom end of the indoor intake chamber.

[0007] Among them, a rubber ring is installed at the bottom end of the indoor double-chamber air duct. The rubber ring is coaxial with the indoor exhaust chamber. The rubber ring is clamped between the bottom end of the indoor double-chamber air duct and the air compressor.

[0008] Among them, the outdoor double-chamber air duct includes a parallel outdoor exhaust chamber and an outdoor intake chamber. A second heat insulation pad is pasted on the inner side wall of the outdoor exhaust chamber. The end of the outdoor exhaust chamber close to the corner double-chamber air duct is flush with the end of the outdoor intake chamber close to the corner double-chamber air duct. An inclined air outlet is arranged at the end of the outdoor exhaust chamber far from the corner double-chamber air duct. The end of the outdoor intake chamber far from the corner double-chamber air duct is closed. A ventilation port communicating with the single-chamber air duct is opened at the bottom of the outdoor intake chamber.

[0009] Among them, the corner double-chamber air duct includes a side-by-side corner exhaust chamber and a corner intake chamber. A third heat insulation pad is pasted on the inner side wall of the corner exhaust chamber, and both ends of the corner exhaust chamber are flush with both ends of the corner intake chamber respectively.

[0010] Among them, the double-chamber air duct includes a side-by-side exhaust chamber and an intake chamber. A fourth heat insulation pad is pasted on the inner side wall of the exhaust chamber, and both ends of the exhaust chamber are flush with both ends of the intake chamber respectively.

[0011] Among them, a socket ring is welded inside the top of the single-chamber air duct, and the cross-section of the socket ring is the same as the cross-section shape of the single-chamber air duct.

[0012] Among them, the air inlet single-chamber air duct is provided with an inclined air inlet, and a stainless steel filter net is installed on the air inlet.

[0013] Among them, the support feet include an internally threaded pipe and an externally threaded rod. The internally threaded pipe is screwed with the externally threaded rod. A rectangular mounting plate is welded to the top end of the internally threaded pipe, and the mounting plate is installed at the bottom end of the air inlet single-chamber air duct with screws. A support block is welded to the bottom end of the externally threaded rod.

[0014] The beneficial effects of the present utility model are as follows: Through the cooperation of the indoor double-chamber air duct, the outdoor double-chamber air duct, the corner double-chamber air duct, the double-chamber air duct, the single-chamber air duct, and the air inlet single-chamber air duct, on the one hand, the hot air on the exhaust port of the air compressor is led out, and on the other hand, the normal-temperature air outdoors is introduced into the room, that is, it promotes the heat dissipation of the air compressor and also promotes the air circulation in the feed mill, reducing the internal environmental temperature of the feed mill. Brief Description of the Drawings

[0015] The drawings described herein are used to provide a further understanding of the present utility model, and constitute a part of this application. The schematic embodiments of the present utility model and their descriptions are used to explain the present utility model and do not constitute an improper limitation to the present utility model. In the drawings:

[0016] Figure 1 is a schematic structural diagram of the air compressor non-powered heat conduction air duct of the present utility model from the first perspective;

[0017] Figure 2 is a schematic structural diagram of the air compressor non-powered heat conduction air duct of the present utility model from the second perspective;

[0018] Figure 3 is a schematic structural diagram of the indoor double-chamber air duct of the present utility model;

[0019] Figure 4 is a schematic structural diagram of the outdoor double-chamber air duct of the present utility model;

[0020] Figure 5 is a schematic structural diagram of the corner double-chamber air duct of the present utility model;

[0021] Figure 6 It is a schematic structural diagram of the double - chamber air duct in the present utility model;

[0022] Figure 7 It is a schematic structural diagram of the single - chamber air duct in the present utility model;

[0023] Figure 8 It is a schematic structural diagram of the air - inlet single - chamber air duct in the present utility model;

[0024] Fig. 9 It is a schematic structural diagram of the support feet in the present utility model;

[0025] Explanation of the reference numerals in the figure: indoor double - chamber air duct 1, indoor exhaust chamber 11, indoor intake chamber 12, first heat - insulating pad 13, outdoor double - chamber air duct 2, outdoor exhaust chamber 21, outdoor intake chamber 22, second heat - insulating pad 23, exhaust port 24, ventilation port 25, corner double - chamber air duct 3, corner exhaust chamber 31, corner intake chamber 32, third heat - insulating pad 33, double - chamber air duct 4, exhaust chamber 41, intake chamber 42, fourth heat - insulating pad 43, single - chamber air duct 5, socket ring 51, air - inlet single - chamber air duct 6, air - inlet 61, support feet 7, internal - thread pipe 71, external - threaded rod 72, mounting ring 73, support block 74, stainless - steel filter net 8, rubber ring 9. Detailed implementation manners

[0026] Next, the present utility model will be described in detail with reference to the drawings and in combination with embodiments.

[0027] As Figures 1 to 9 shown, an air compressor non - powered heat - conducting air duct includes an indoor double - chamber air duct 1, an outdoor double - chamber air duct 2, a corner double - chamber air duct 3, a double - chamber air duct 4, a single - chamber air duct 5, and an air - inlet single - chamber air duct 6.

[0028] The indoor double - chamber air duct 1 includes a juxtaposed indoor exhaust chamber 11 and indoor intake chamber 12. A first heat - insulating pad 13 is pasted on the inner side wall of the indoor exhaust chamber 11. The top end of the indoor exhaust chamber 11 is flush with the top end of the indoor intake chamber 12, and the bottom end of the indoor exhaust chamber 11 is lower than the bottom end of the indoor intake chamber 12.

[0029] The indoor exhaust chamber 11 of the indoor double - chamber air duct 1 covers the exhaust port of the air compressor. A rubber ring 9 is installed at the bottom end of the indoor double - chamber air duct 1. The rubber ring 9 is coaxial with the indoor exhaust chamber 11, and the rubber ring 9 is clamped between the bottom end of the indoor double - chamber air duct 1 and the air compressor.

[0030] The outdoor double-cavity air duct 2 includes a side-by-side outdoor exhaust cavity 21 and an outdoor air intake cavity 22. A second thermal insulation pad 23 is pasted on the inner wall of the outdoor exhaust cavity 21. The end of the outdoor exhaust cavity 21 close to the corner double-cavity air duct 3 is flush with the end of the outdoor air intake cavity 22 close to the corner double-cavity air duct 3. An inclined exhaust port 24 is provided at the end of the outdoor exhaust cavity 21 away from the corner double-cavity air duct 3. The end of the outdoor air intake cavity 22 away from the corner double-cavity air duct 3 is closed, and a vent 25 connected to the single-cavity air duct 5 is provided at the bottom of the outdoor air intake cavity 22.

[0031] The corner double-cavity air duct 3 includes a corner exhaust cavity 31 and a corner air inlet cavity 32 arranged side by side. A third thermal insulation pad 33 is pasted on the inner wall of the corner exhaust cavity 31, and the two ends of the corner exhaust cavity 31 are respectively flush with the two ends of the corner air inlet cavity 32.

[0032] The double-cavity air duct 4 includes an exhaust cavity 41 and an intake cavity 42 arranged side by side. A fourth heat insulating pad 43 is attached to the inner wall of the exhaust cavity 41 . The two ends of the exhaust cavity 41 are flush with the two ends of the intake cavity 42 .

[0033] A socket ring 51 is welded to the inner side of the top of the single-cavity air duct 5 , and the cross section of the socket ring 51 is the same as the cross section of the single-cavity air duct 5 .

[0034] The air inlet single-cavity air duct 6 is provided with an inclined air inlet 61 , and a stainless steel filter 8 is installed on the air inlet 61 .

[0035] At least one section of double-cavity air duct 4 is installed between the indoor double-cavity air duct 1 and the corner double-cavity air duct 3, at least one section of double-cavity air duct 4 is installed between the outdoor double-cavity air duct 2 and the corner double-cavity air duct 3, and at least one section of single-cavity air duct 4 is installed between the air inlet single-cavity air duct 6 and the outdoor air inlet cavity of the outdoor double-cavity air duct 2.

[0036] The indoor exhaust chamber 11, exhaust chamber 41, corner exhaust chamber 31, exhaust chamber 41, outdoor exhaust chamber 21, and exhaust port 24 are sequentially connected to form an exhaust passage. The air inlet 61, single-chamber air duct 5, vent 25, outdoor air inlet chamber 22, air inlet chamber 42, corner air inlet chamber 32, air inlet chamber 42, and indoor air inlet chamber 12 are sequentially connected to form an air inlet passage.

[0037] A height-adjustable support foot 7 is mounted at the bottom of the single-cavity air intake duct 6. The support foot 7 comprises an internally threaded tube 71 and an externally threaded rod 72, which are threadedly engaged with each other. A rectangular mounting plate 73 is welded to the top of the internally threaded tube 71. The mounting plate 73 is screwed to the bottom of the single-cavity air intake duct 6. A support block 74 is welded to the bottom of the externally threaded rod 72. The support foot 7 supports the single-cavity air intake duct 6.

[0038] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention, and such changes and improvements fall within the scope of the present invention as claimed.

Claims

1. An air compressor non-powered heat conduction air duct, characterized in that: It includes an indoor double-chamber air duct, an outdoor double-chamber air duct, a corner double-chamber air duct, a double-chamber air duct, a single-chamber air duct, and an intake single-chamber air duct. The indoor exhaust chamber of the indoor double-chamber air duct covers the exhaust port of the air compressor. At least one section of the double-chamber air duct is installed between the indoor double-chamber air duct and the corner double-chamber air duct. At least one section of the double-chamber air duct is installed between the outdoor double-chamber air duct and the corner double-chamber air duct. At least one section of the single-chamber air duct is installed between the intake single-chamber air duct and the outdoor intake chamber of the outdoor double-chamber air duct. A support foot with adjustable height is installed at the bottom end of the intake single-chamber air duct.

2. The air compressor non-powered heat conduction air duct according to claim 1, characterized in that: The indoor double-chamber air duct includes a juxtaposed indoor exhaust chamber and an indoor intake chamber. A first heat-insulating pad is pasted on the inner side wall of the indoor exhaust chamber. The top end of the indoor exhaust chamber is flush with the top end of the indoor intake chamber. The bottom end of the indoor exhaust chamber is lower than the bottom end of the indoor intake chamber.

3. The air compressor non-powered heat conduction air duct according to claim 2, characterized in that: A rubber ring is installed at the bottom end of the indoor double-chamber air duct. The rubber ring is coaxial with the indoor exhaust chamber. The rubber ring is clamped between the bottom end of the indoor double-chamber air duct and the air compressor.

4. The air compressor non-powered heat conduction air duct according to claim 1, characterized in that: The outdoor double-chamber air duct includes a juxtaposed outdoor exhaust chamber and an outdoor intake chamber. A second heat-insulating pad is pasted on the inner side wall of the outdoor exhaust chamber. One end of the outdoor exhaust chamber close to the corner double-chamber air duct is flush with one end of the outdoor intake chamber close to the corner double-chamber air duct. An inclined exhaust port is provided at one end of the outdoor exhaust chamber far from the corner double-chamber air duct. One end of the outdoor intake chamber far from the corner double-chamber air duct is closed. A ventilation port communicating with the single-chamber air duct is opened at the bottom of the outdoor intake chamber.

5. The air compressor non-powered heat conduction air duct according to claim 1, wherein: The corner double-chamber air duct includes a juxtaposed corner exhaust chamber and a corner intake chamber. A third heat-insulating pad is pasted on the inner side wall of the corner exhaust chamber. The two ends of the corner exhaust chamber are respectively flush with the two ends of the corner intake chamber.

6. The air compressor non-powered heat-conducting air duct according to claim 1, wherein: The double-chamber air duct includes a juxtaposed exhaust chamber and an intake chamber. A fourth heat-insulating pad is pasted on the inner side wall of the exhaust chamber. The two ends of the exhaust chamber are respectively flush with the two ends of the intake chamber.

7. The air compressor non-powered heat conduction air duct according to claim 1, characterized in that: A socket ring is welded inside the top of the single-chamber air duct. The cross-section of the socket ring is the same as the cross-section shape of the single-chamber air duct.

8. The air compressor non-powered heat conduction air duct according to claim 1, wherein: The intake single-chamber air duct is provided with an inclined air inlet, and a stainless steel filter screen is installed on the air inlet.

9. The air compressor non-powered heat conduction air duct according to claim 1, wherein: The support foot includes an internally threaded tube and an externally threaded rod. The internally threaded tube is screwed with the externally threaded rod. A rectangular mounting plate is welded to the top end of the internally threaded tube. The mounting plate is installed at the bottom end of the intake single-chamber air duct with screws. A support block is welded to the bottom end of the externally threaded rod.