Novel energy-saving textile air conditioner and textile workshop

By optimizing the textile air conditioning system with water curtain humidification and a double-sided air outlet rotary dust collector, the problems of high energy consumption and high wind resistance in traditional textile air conditioning have been solved, achieving energy saving and consumption reduction and improving equipment utilization. The structure of the air-conditioned room has been simplified, and construction costs and wind resistance have been reduced.

CN224162687UActive Publication Date: 2026-04-24WEIFANG JINYATE TEMPERATURE CONTROL EQUIPMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
WEIFANG JINYATE TEMPERATURE CONTROL EQUIPMENT CO LTD
Filing Date
2025-05-09
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

Traditional textile air conditioning spray systems have high energy consumption and high wind resistance, resulting in poor overall performance and energy-saving effect, as well as repeated investment in equipment and low space utilization.

Method used

Water curtain humidification is used instead of high-pressure spray humidification. Combined with a double-sided air outlet rotary dust collector and a multi-fan system, the second-floor main air duct is eliminated, the layout of the air-conditioned room and air duct is optimized, and a bottom air intake structure and parallel water curtain design are adopted to reduce wind resistance and redundant equipment investment.

Benefits of technology

Significantly reduces energy consumption of water pumps and fans, improves equipment utilization, reduces building costs and construction difficulty, enhances air conditioning system performance and air cleanliness, reduces wind resistance, and achieves system energy saving and efficient ventilation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The novel energy-saving spinning air conditioner comprises an air-conditioning room, a rotating cage dust remover and a fan, a water tank is arranged at the bottom of the air-conditioning room, a water curtain is arranged above the water tank, water in the water tank is conveyed to the position above the water curtain through a water pump, the fan is installed on the air-conditioning room, and the rotating cage dust remover is installed on the fan. The rotating cage dust remover is arranged on the other side of the air-conditioning room and communicated with the air-conditioning room, and air filtered by the rotating cage dust remover enters the air-conditioning room, is humidified by the water curtain and then is conveyed to a workshop by the fan. The device adopts water curtain humidification to replace spraying humidification of a traditional textile air conditioner, and the water curtain does not need high-pressure water spraying, so that the lifting range of the water pump is reduced, and the purpose of energy conservation of the water pump is finally achieved. The air conditioner does not need to serve as a main air duct layer and an air-conditioning room layer like a traditional air conditioner, resistance brought by the main air duct is reduced while the building cost is reduced, airflow does not need to be gathered and dispersed, resistance brought by airflow turning is reduced, and energy saving of the system is further achieved.
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Description

Technical Field

[0001] This utility model belongs to the field of textile air conditioning technology, specifically relating to a new type of energy-saving textile air conditioner and textile workshop. Background Technology

[0002] Currently, textile factory air conditioners operate continuously year-round due to the demands of production processes. Statistics show that air conditioning accounts for over 20% of total energy consumption in textile production. The air conditioning spray system is the core of the air-conditioned room, playing a crucial role in heat and humidity treatment of the air, reducing dust concentration, and maintaining workshop temperature, humidity, and hygiene standards. The water pumps in textile air conditioning spray systems account for 1 / 5 of the total power of the air conditioning system, operating continuously year-round, resulting in significant energy waste. Therefore, effectively reducing the energy consumption of the spray system and ensuring the heat and humidity treatment effect of the air-conditioned room plays a positive role in reducing the total energy consumption of textile workshops. Traditional textile air conditioning systems require water pumps for pressurized spray humidification, which consumes a lot of energy during the pressurization process. Furthermore, the traditional "W"-shaped baffles create significant air resistance when air passes through them, requiring high-power fans and further increasing energy consumption. Therefore, the overall performance and energy-saving effect of existing spray systems are not optimal. Utility Model Content

[0003] The purpose of this utility model is to provide a new type of energy-saving textile air conditioner and textile workshop to solve the problems existing in the background technology.

[0004] To achieve the above objectives, this utility model provides the following technical solution: a novel energy-saving textile air conditioner, comprising an air-conditioning room, a rotary dust collector, and a fan. The bottom of the air-conditioning room is provided with a water tank, and a water curtain is provided above the water tank. Water in the water tank is transported to the top of the water curtain by a water pump. The fan is installed on the air-conditioning room. The rotary dust collector is located on the other side of the air-conditioning room and is connected to it. The air filtered by the rotary dust collector enters the air-conditioning room, is humidified by the water curtain, and is then transported to the workshop by the fan.

[0005] Preferably, the water curtain is parallel to the air-conditioned room and the fan outlet.

[0006] Preferably, the rotary dust collector has a double-sided air outlet structure.

[0007] Preferably, an air-conditioned room is provided on each side of the rotary dust collector.

[0008] A novel energy-saving textile air conditioner includes an air-conditioning room, a rotary dust collector, and a fan. The air-conditioning room has a water tank at its bottom and a water curtain above it. A water pump transports water from the water tank to the water curtain. The fan includes a first fan and a second fan. The first fan is installed above the side wall of the air-conditioning room. A dust removal room is located inside the air-conditioning room, housing the rotary dust collector and the second fan. The second fan is located at the outlet of the rotary dust collector. A partition separates the air-conditioning room into upper and lower spaces. The upper space connects to one side of the water curtain and is used for air outlet. The lower space connects to one side of the rotary dust collector and is used for air return. A workshop return air regulating window is located on the side wall of the dust removal room corresponding to the second fan.

[0009] Preferably, the outer wall of the dust removal room is provided with a workshop exhaust ventilation regulating window.

[0010] Preferably, a fresh air regulating window is provided on one side of the air-conditioned room.

[0011] Preferably, the rotary dust collector has a bottom air inlet structure.

[0012] A textile workshop includes the aforementioned novel energy-saving textile air conditioner, which is installed on one side of the workshop; each of the air conditioners is connected to an air duct, which is installed on the top of the workshop.

[0013] A textile workshop includes the aforementioned novel energy-saving textile air conditioner. The air conditioner is installed on one side of the workshop, and the side wall of the air-conditioning room divides the workshop into two parts. Each first fan is connected to an air duct, which is installed at the top of the workshop. Return air vents are located at the bottom of the air-conditioning room, and each return air vent communicates with the lower space of the air-conditioning room. The beneficial effects of this invention are: This device uses water curtain humidification instead of traditional spray humidification. The water curtain eliminates the need for high-pressure water spraying, significantly reducing the pump head. Traditional spray humidification relies on booster pumps, resulting in high energy consumption. The water curtain system of this device only requires low-pressure water delivery, significantly reducing the pump's installed power and operating energy consumption, achieving energy savings from the source. The traditional two-layer main air duct structure is abandoned, resulting in a simpler layout of the air-conditioning room and air ducts. Airflow does not need to converge, disperse, or make multiple turns, reducing the resistance from the main air duct and lowering the power required for the fan to overcome resistance, further improving system energy efficiency. Compared to traditional air conditioners, wind resistance is significantly reduced, leading to a decrease in fan energy consumption. The elimination of the need for a second-floor main air duct simplifies the air conditioning room structure, reduces the use of building materials and construction complexity, and lowers the required floor height in the workshop, thereby reducing overall construction costs. This advantage is particularly pronounced in newly built textile workshops. The rotary dust collector employs a double-sided exhaust structure, allowing for an air conditioning room on each side, enabling one dust collector to serve two air conditioning systems. This improves equipment utilization, reduces redundant investment, and saves space and costs. The water curtain runs parallel to the air conditioning room and fan outlets, significantly increasing the ventilation area. Compared to traditional "W"-shaped baffles, this significantly reduces air resistance, allowing for smoother airflow and more efficient delivery of humidified air to the workshop, improving the overall performance of the air conditioning system. The rotary dust collector's bottom-intake structure reduces bends in the suction pipes, further reducing air resistance, improving suction efficiency, and ensuring clean air in the workshop. Attached Figure Description

[0014] Figure 1 This is a plan view of Embodiment 1 of this utility model;

[0015] Figure 2 This is a partial enlarged view of Embodiment 1 of this utility model;

[0016] Figure 3 This is a plan view of the air inlet in Embodiment 2 of this utility model;

[0017] Figure 4 This is a return air plan view of Embodiment 2 of this utility model. Detailed Implementation

[0018] It should be noted that, unless otherwise specified, the embodiments and features described in the present invention can be combined with each other.

[0019] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, are only for the convenience of describing this invention and simplifying the description, and 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 this invention. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first," "second," etc., may explicitly or implicitly include one or more of that feature. In the description of this invention, unless otherwise stated, "a plurality of" means two or more.

[0020] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," "fixed connection," and "fixed connection" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art will understand the specific meaning of the above terms in this invention based on the specific circumstances.

[0021] The specific embodiments of this utility model are described in detail below with reference to the accompanying drawings and preferred embodiments.

[0022] Example 1:

[0023] like Figure 1 and Figure 2 As shown, a novel energy-saving textile air conditioner includes an air compressor room 1, an air conditioning room 2, a rotary dust collector 3, and a fan 4. The air compressor room contains an air compressor for heating the workshop in winter. A water tank 21 is located at the bottom of the air conditioning room, and a water curtain 22 is installed above the water tank. Water from the water tank is pumped to the top of the water curtain by a water pump. In this embodiment, the water curtain pipes are designed with a 12 o'clock top outlet, ensuring even water distribution and preventing clogging. The fan is installed on the air conditioning room, and the rotary dust collector is located on the other side of the air conditioning room and connected to it. This device uses water curtain humidification instead of the traditional spray humidification of textile air conditioners. Since the water curtain does not require high-pressure water spraying, the pump head is reduced, ultimately achieving energy savings for the pump. Unlike traditional air conditioners, there is no need for a second-layer main air duct, reducing construction costs and the resistance from the main air duct. Airflow does not need to converge or disperse, and the resistance from airflow turns is reduced, further achieving system energy savings.

[0024] Furthermore, in traditional air conditioners, the water curtain is perpendicular to the air-conditioned room, thus limiting the ventilation area and resulting in very high resistance. Therefore, in this embodiment, the water curtain is parallel to both the air-conditioned room and the fan outlet 11. This parallel structure significantly increases the ventilation area and greatly reduces wind resistance.

[0025] Furthermore, a fresh air regulating window is provided on one side of the air-conditioned room, which can be opened in summer.

[0026] In this embodiment, the rotary dust collector has a double-sided air outlet structure, meaning that exhaust ports 31 are respectively provided at both ends of the rotary dust collector. With a diameter of 3 meters and a length of 6 meters, the double-sided air outlet structure improves filtration accuracy while significantly reducing wind resistance.

[0027] Furthermore, the water curtain has a double-layer structure. This double-layer structure makes efficient use of space, saves floor space, and allows for identical disassembly, making it convenient and easy to use while improving reliability.

[0028] Furthermore, to make better use of the structure of the rotary dust collector, in this embodiment, an air-conditioning room is provided on each side of the rotary dust collector. This improves the utilization rate of the rotary dust collector.

[0029] To reduce air resistance, the rotary dust collector features a bottom-inlet structure. The rotary suction pipe adopts a bottom-suction mode, reducing bends in the suction pipe, lowering air resistance, and improving suction efficiency.

[0030] This utility model also discloses a textile workshop, including the aforementioned novel energy-saving textile air conditioner, which is installed on one side of the workshop. Each fan is connected to an air duct 5, which is installed at the top of the workshop. The multi-fan system, with its parallel structure between the water curtain and the air conditioning room, facilitates easy air intake for the fans, resulting in direct wiring and fewer bends, thus reducing system resistance. Furthermore, the air duct is located above the fabric drop channel. The air duct position has been changed from the warp shaft channel 6 to the fabric drop channel, ensuring workshop humidity while facilitating cooling, and further reducing perceived temperature by accelerating airflow.

[0031] In the textile workshop, a new type of energy-saving textile air conditioner is installed on one side of the workshop. Each fan is connected to an air duct 5, which is installed on the ceiling of the workshop and above the fabric drop channel. This layout ensures the humidity in the workshop, which is conducive to cooling the workshop, and further reduces the perceived temperature by accelerating the air flow. The multi-fan system, because the water curtain is parallel to the air-conditioned room, makes it easy for the fans to draw air, and the direct wiring with fewer bends reduces the system's air resistance.

[0032] Working principle: The fan blows air from the duct to the ceiling below the workshop, that is, into the workshop. After being blown into the workshop, the air is sucked into the rotary dust collector. After being filtered by the rotary collector, the air passes through both sides of the rotary collector and enters the water curtain wall parallel to the air-conditioning room. Then, it passes through the water curtain wall and is blown back into the duct by the fan.

[0033] Example 2:

[0034] like Figure 3 and Figure 4 As shown, a novel energy-saving textile air conditioner includes an air conditioning room 2, a rotary dust collector 3, and a fan. The air conditioning room has a water tank 21 at its bottom and a water curtain 22 above it. A water pump transports water from the water tank to the water curtain. Unlike Embodiment 1, this embodiment has a different air return method, specifically: the fan includes a first fan 41 and a second fan 42. The first fan is installed above the side wall 23 of the air conditioning room and is responsible for blowing humidified and cooled air into the workshop through an air duct. In this embodiment, the location of the rotary dust collector is also different from Embodiment 1. Specifically, the air conditioning room has a dust collection chamber 7, which houses the rotary dust collector and the second fan. The second fan is located at the outlet of the rotary dust collector. This second fan is responsible for returning air, drawing air from the workshop into the rotary dust collector. After dust removal, the air is blown towards the water curtain side. In this embodiment, a partition (not shown) is installed between the exterior of the dust collector room and the wall of the air conditioning room. This partition divides the air conditioning room into upper and lower spaces, which are parallel to the air conditioning room structure. The upper space connects to the water curtain side and is used for air outlet. That is, the air humidified by the water curtain enters the first fan from the upper space. The lower space connects to one side of the rotary dust collector and is used for return air, facilitating air intake from the bottom of the rotary dust collector. Air returning from the workshop enters the rotary dust collector from the lower space. The second fan then blows the air towards the water curtain through the workshop return air regulating window 71.

[0035] The outer wall of the dust removal room is equipped with a workshop exhaust ventilation regulating window 72, and one side of the air conditioning room is equipped with a fresh air regulating window 24. This embodiment has two operating modes: a winter mode and a return air mode. In winter mode, both the workshop exhaust ventilation regulating window 72 and the fresh air regulating window 24 are closed, and the air circulates internally within the workshop. Specifically, the air humidified by the water curtain enters the workshop via the first fan, and then the return air passes through the rotary dust collector at the bottom of the air conditioning room before entering the second fan. The second fan blows the air through the workshop return air regulating window to the side of the water curtain. Figure 3(On the left side), in summer mode, both the fresh air regulating window 24 and the workshop exhaust air regulating window 72 are open, while the workshop return air regulating window 71 is closed. Air enters through the fresh air regulating window, is humidified by the water curtain, and is blown into the workshop by the first fan. During return air, air enters the rotary dust collector from the lower part of the air-conditioned room (the rotary dust collector may not be working), and is exhausted to the outside through the workshop exhaust air regulating window 72 by the second fan.

[0036] This embodiment also discloses a textile workshop, including the aforementioned novel energy-saving textile air conditioner. The novel energy-saving textile air conditioner is installed on one side of the workshop. The side wall of the air-conditioning room divides the air-conditioning room and the workshop into two parts. Each first fan is connected to an air duct, which is installed on the top of the workshop. A return air vent is provided at the bottom of the air-conditioning room, and each return air vent communicates with the lower space of the air-conditioning room. Unlike Embodiment 1, this workshop is divided into two parts by a side wall, as shown below. Figure 3 As shown, the left side is the air-conditioning room, which also contains a dust removal room. The air-conditioning room is divided into two parts by a horizontal partition. The upper part is the main air duct for exhausting air into the workshop, and the lower part is the main air duct for recovering air from the workshop. The two air ducts are independent of each other.

[0037] It should be noted that, for those skilled in the art, several improvements and modifications can be made without departing from the principle of this utility model, and these improvements and modifications should also be considered within the scope of protection of this utility model.

Claims

1. A novel energy-saving textile air conditioner, characterized in that: The system includes an air-conditioned room, a rotary dust collector, and a fan. The bottom of the air-conditioned room is equipped with a water tank, and a water curtain is installed above the water tank. A water pump transports water from the water tank to the top of the water curtain. The fan is installed on the air-conditioned room. The rotary dust collector is located on the other side of the air-conditioned room and is connected to it. The air filtered by the rotary dust collector enters the air-conditioned room, is humidified by the water curtain, and is then transported to the workshop by the fan.

2. The novel energy-saving textile air conditioner according to claim 1, characterized in that: The water curtain is parallel to the air-conditioned room and the fan outlet.

3. The novel energy-saving textile air conditioner according to claim 1, characterized in that: The rotary dust collector has a double-sided air outlet structure.

4. The novel energy-saving textile air conditioner according to claim 3, characterized in that: An air-conditioned room is provided on each side of the rotary dust collector.

5. A novel energy-saving textile air conditioner, characterized in that: The system includes an air-conditioning room, a rotary dust collector, and a fan. The air-conditioning room has a water tank at its bottom and a water curtain above it. A water pump transports water from the tank to the water curtain. The fan includes a first fan and a second fan. The first fan is installed on the side wall of the air-conditioning room. A dust collection room is located inside the air-conditioning room, housing the rotary dust collector and the second fan. The second fan is located at the outlet of the rotary dust collector. A partition separates the air-conditioning room into upper and lower spaces. The upper space connects to one side of the water curtain and is used for air outlet. The lower space connects to one side of the rotary dust collector and is used for air return. A workshop return air regulating window is located on the side wall of the dust collection room corresponding to the second fan.

6. The novel energy-saving textile air conditioner according to claim 5, characterized in that: The outer wall of the dust removal room is equipped with a workshop exhaust ventilation regulating window.

7. The novel energy-saving textile air conditioner according to claim 1 or 5, characterized in that: A fresh air regulating window is provided on one side of the air-conditioned room.

8. The novel energy-saving textile air conditioner according to claim 1 or 5, characterized in that: The rotary dust collector has a bottom air inlet structure.

9. A textile workshop, characterized in that: The invention includes the novel energy-saving textile air conditioner as described in any one of claims 1-4, wherein the novel energy-saving textile air conditioner is installed on one side of the workshop; each of the fans is connected to an air duct, and the air duct is installed on the top of the workshop.

10. A textile workshop, characterized in that: The invention includes the novel energy-saving textile air conditioner as described in any one of claims 5-8. The novel energy-saving textile air conditioner is installed on one side of the workshop. The side wall of the air-conditioning room divides the air-conditioning room and the workshop into two parts. Each first fan is connected to an air duct. The air duct is installed on the top of the workshop. The lower part of the air-conditioning room is provided with a return air vent. Each return air vent is connected to the lower space of the air-conditioning room.