Energy-saving and carbon-reducing dehumidification unit pipeline capable of preventing cold and heat counteraction
By installing insulation and air-filling devices in the dehumidifier unit's piping, the problem of heat and cold offset caused by the piping being exposed to air is solved, achieving energy saving, carbon reduction, and precise control of air temperature, thus ensuring the stability of factory production.
Patent Information
- Application Number
- CN202520474241.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2026-01-20
- Estimated Expiration
- 2035-03-18
AI Technical Summary
Existing dehumidifier unit piping is exposed to the air, causing the treated air to be affected by the external ambient temperature, resulting in heat and cold offsetting, increasing energy consumption, affecting the accuracy of air temperature, and impacting factory production.
An insulation device is installed on the outer surface of the inner tube, including an insulation sleeve and an insulation layer. Insulation sponge is bonded to the outer surface of the inner tube, and a tin foil isolation layer is wrapped around the outer surface. A spring support frame is fixedly installed on the inner wall. An inflation device and a detection connector are provided. Gas leakage is prevented by supplying insulation gas and a sealing structure.
It effectively reduces the impact of external ambient temperature on the air transported through the inner pipe, maintains accurate air temperature, reduces energy consumption, prevents gas leakage, and ensures production stability.
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Figure CN223814741U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to dehumidifier unit technical field especially relates to a kind of energy-saving carbon-reducing dehumidifier unit pipeline of cold and hot offset prevention. BACKGROUND
[0002] Dehumidifier unit is a kind of equipment that removes moisture in air by physical or chemical method, is often used to keep environmental humidity in a suitable range, prevent damp, mildew, corrosion and other problems.Dehumidifier unit is widely used in air conditioning system, industrial production, warehouse, museum, laboratory and other places, ensure that humidity does not adversely affect goods or equipment.
[0003] Existing dehumidifier unit is transported by pipeline to the air after processing, and the pipeline is exposed to air, which can cause the processed air to be affected by the temperature of the external environment, resulting in cold and hot offset, affecting the temperature of the dehumidifier unit to process air, increasing the consumption of energy consumption, causing cost increase, while causing the temperature of the transported air to be inaccurate, affecting factory production. UTILITY MODEL CONTENT
[0004] Based on the technical problem that the existing dehumidifier unit pipeline is exposed to air, which can cause the processed air to be affected by the temperature of the external environment, resulting in cold and hot offset, increasing the consumption of energy consumption, causing cost increase, while causing the temperature of the transported air to be inaccurate, affecting factory production, the utility model proposes a kind of energy-saving carbon-reducing dehumidifier unit pipeline of cold and hot offset prevention.
[0005] The utility model discloses a kind of energy-saving carbon-reducing dehumidifier unit pipeline of cold and hot offset prevention, including inner tube, the outer surface of the inner tube is provided with heat preservation device, the heat preservation device includes heat preservation sleeve, heat preservation cavity is opened in the inside of the heat preservation sleeve, the heat preservation sleeve is heat preservation to the gas transported by the inner tube.
[0006] The outer surface of the heat preservation sleeve is provided with inflation device, and the inflation device includes a delivery connector, which delivers heat preservation gas into the heat preservation sleeve.
[0007] Preferably, the heat preservation device further includes a heat preservation layer, which is bonded to the outer surface of the heat preservation sleeve, and the heat preservation sleeve is bonded to the outer surface of the inner tube. The material of the heat preservation layer is heat preservation sponge.
[0008] Through the above technical solution, the heat preservation sponge in the heat preservation layer can perform heat preservation work on the heat preservation sleeve again, reducing the influence of external air temperature on the temperature of the processed air transported by the inner tube.
[0009] Preferably, the outer surface of the heat preservation layer is wrapped with an isolation layer, and the material of the isolation layer is tin foil paper.
[0010] Through the technical scheme, the tin foil paper is used as the heat preservation layer, has excellent heat reflection, heat insulation, moisture resistance and corrosion resistance, and thus can achieve good heat preservation effect.
[0011] Preferably, the inner wall of the heat preservation sleeve is fixedly provided with a spring support frame, and the two ends of the heat preservation sleeve are fixedly provided with connecting heads.
[0012] Through the technical scheme, the spring support frame can support the heat preservation cavity, so that the heat preservation cavity will not be seriously deformed when the gas is input, and the spring support frame can buffer the heat preservation sleeve when the heat preservation sleeve is impacted, so as to reduce damage.
[0013] Preferably, the inflation device further comprises a locking threaded rod, the locking threaded rod is threadedly connected to the inner wall of the conveying connector, and the two conveying connectors are fixedly connected to the inner walls of the heat preservation sleeves.
[0014] Through the technical scheme, the locking threaded rod is threadedly connected to the conveying connector, the locking threaded rod can be rotated and then lowered in the conveying connector, and the two conveying connectors can convey gas at one end and suck gas at the other end, so that the heat insulation gas such as nitrogen can be fully conveyed into the heat preservation cavity.
[0015] Preferably, one end of the locking threaded rod is rotatably connected to a sealing plug through a bearing, and the outer surface of the sealing plug is slidably inserted into the inner wall of the conveying connector.
[0016] Through the technical scheme, the sealing plug can be lowered by pushing the locking threaded rod, so as to seal the joint on the outer side of the conveying connector, prevent the gas in the heat preservation cavity from flowing out, and affect the heat preservation effect.
[0017] Preferably, one end of the conveying connector is threadedly connected to a detection connector, the inner wall of the detection connector is fixedly provided with an inflatable air bag, and the inner wall of the detection connector is fixedly provided with an alarm contact.
[0018] Through the technical scheme, the detection connector can be connected to the device for conveying gas, when the conveying connector leaks, the gas can enter the detection connector, the inflatable air bag can be inflated, the inflatable air bag can press the alarm contact after being inflated, the alarm contact can be electrified, and an alarm can be sent to remind.
[0019] The beneficial effects of the utility model are as follows:
[0020] 1. The heat preservation device can be used for heat preservation of the inner tube, reducing the influence of the temperature of the external environment and the temperature of the air after treatment by the inner tube, the heat preservation cavity of the heat preservation sleeve can be filled with heat preservation gas, which can play a heat insulation role, reducing the disappearance of the air temperature of the inner tube, the spring support frame can support the heat preservation cavity, so that the heat preservation cavity will not deform seriously when the gas is input, and the spring support frame can buffer the impact on the heat preservation sleeve, reducing damage, and the connecting head can connect the heat preservation sleeves, so as to splice the heat preservation sleeves into a suitable length, solving the technical problem that the existing dehumidifier pipe is exposed to the air, which can cause the treated air to be affected by the temperature of the external environment, resulting in cold and hot offset, increasing the energy consumption and increasing the cost, and the temperature of the conveyed air is not accurate, affecting the production of the factory.
[0021] 2. The inflation device can be used for conveying heat preservation gas into the heat preservation cavity, and can be used for monitoring the air leakage state of the conveying joint. After the locking screw rod is rotated and lowered, the sealing plug is pushed down, the conveying joint can be sealed, preventing gas leakage. Two conveying joints can convey gas at one end and suck gas at the other end, so that the heat insulation gas such as nitrogen can be fully conveyed into the heat preservation cavity. When the conveying joint leaks, the gas can enter the detection joint, so that the inflatable air bag is inflated, the inflatable air bag is pressed after inflation, the alarm contact is electrified, and an alarm is issued to remind. BRIEF DESCRIPTION OF DRAWINGS
[0022] Figure 1 A schematic diagram of an energy-saving and carbon-reducing dehumidifier pipe is provided for the utility model.
[0023] Figure 2 A perspective view of the isolation layer structure of the energy-saving and carbon-reducing dehumidifier pipe is provided for the utility model.
[0024] Figure 3 A perspective view of the spring support frame structure of the energy-saving and carbon-reducing dehumidifier pipe is provided for the utility model.
[0025] Figure 4 A perspective view of the sealing plug structure of the energy-saving and carbon-reducing dehumidifier pipe is provided for the utility model.
[0026] Figure 5 A perspective view of the inflatable air bag structure of the energy-saving and carbon-reducing dehumidifier pipe is provided for the utility model.
[0027] Figure 6 A perspective view of the alarm contact structure of the energy-saving and carbon-reducing dehumidifier pipe is provided for the utility model.
[0028] In the figure: 1, inner tube; 2, heat preservation sleeve; 21, heat preservation cavity; 22, heat preservation layer; 23, isolation layer; 24, spring support frame; 25, connecting head; 3, conveying joint; 31, locking threaded rod; 32, sealing plug; 4, detection joint; 41, inflatable air bag; 42, alarm contact. DETAILED DESCRIPTION
[0029] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments.
[0030] Reference Figures 1-6 An energy-saving carbon-reducing dehumidifier unit pipeline capable of preventing cold and heat offsetting includes an inner tube 1, and a heat preservation device is arranged on the outer surface of the inner tube 1. The heat preservation device includes a heat preservation sleeve 2, and a heat preservation cavity 21 is formed in the heat preservation sleeve 2. The heat preservation sleeve 2 can preserve the gas conveyed by the inner tube 1.
[0031] Specifically, in order to preserve the inner tube 1, the heat preservation device further includes a heat preservation layer 22, the heat preservation layer 22 is bonded to the outer surface of the heat preservation sleeve 2, the heat preservation sleeve 2 is bonded to the outer surface of the inner tube 1, and the heat preservation layer 22 is made of heat preservation sponge.
[0032] Specifically, in order to enhance the heat preservation effect and reduce cold and heat offsetting, the outer surface of the heat preservation layer 22 is wrapped with an isolation layer 23, and the isolation layer 23 is made of tin foil paper.
[0033] Specifically, in order to support the heat preservation cavity 21, a spring support frame 24 is fixedly installed on the inner wall of the heat preservation sleeve 2, and in order to facilitate the connection between the heat preservation sleeves 2 and the splicing of appropriate lengths, connecting heads 25 are fixedly installed at the two ends of the heat preservation sleeve 2.
[0034] By arranging the heat preservation device, the inner tube 1 can be preserved, the influence of the temperature of the external environment on the temperature of the air conveyed by the inner tube 1 after treatment is reduced, the heat preservation cavity 21 arranged in the heat preservation sleeve 2 can play a heat insulation role by conveying heat preservation gas, the disappearance of the temperature of the air conveyed by the inner tube 1 is reduced, the spring support frame 24 can support the heat preservation cavity 21, so that the heat preservation cavity 21 will not be severely deformed when inputting gas, and at the same time, the spring support frame 24 can buffer the heat preservation sleeve 2 when the heat preservation sleeve 2 is impacted, thereby reducing damage. The connecting heads 25 facilitate the connection between the heat preservation sleeves 2 and the splicing of appropriate lengths, solve the technical problem that the existing dehumidifier unit pipeline is exposed to air, the treated air is affected by the temperature of the external environment, cold and heat offsetting occurs, energy consumption is increased, the cost is increased, and the temperature of the conveyed air is not accurate, thereby affecting the production of a factory.
[0035] In order to transport the heat preservation gas into the heat preservation cavity 21, the outer surface of the heat preservation sleeve 2 is provided with a gas filling device, which comprises a delivery connector 3 for delivering the heat preservation gas into the heat preservation sleeve 2.
[0036] Specifically, in order to transport the heat preservation gas sufficiently, the gas filling device further comprises a locking screw rod 31 which is threadedly connected to the inner wall of the delivery connector 3, and two delivery connectors 3 are respectively fixedly connected to the inner wall of the heat preservation sleeve 2; one end of each delivery connector 3 can deliver the gas, and the other end can suck the gas, so as to facilitate the sufficient delivery of the heat insulation gas such as nitrogen into the heat preservation cavity 21.
[0037] Specifically, in order to seal the delivery connector 3, one end of the locking screw rod 31 is rotatably connected to a sealing plug 32 through a bearing, and the outer surface of the sealing plug 32 is slidably inserted into the inner wall of the delivery connector 3.
[0038] Specifically, in order to monitor the leakage of the heat preservation gas of the delivery connector 3, one end of the delivery connector 3 is threadedly connected to a detection connector 4, the inner wall of the detection connector 4 is fixedly installed with an inflatable air bag 41, and the inner wall of the detection connector 4 is fixedly installed with an alarm contact 42; in order to prevent the inflatable air bag 41 from being broken, a control valve can be fixedly connected to the outer surface of the detection connector 4, and the alarm contact 42 is electrically connected between the control valve, so that the control valve is opened, the leakage of the heat preservation gas is facilitated, and the alarm contact 42 can be connected with the control system through a communication module, so that when the inflatable air bag 41 is no longer pressed after the control valve is opened, the control system can still control the alarm to alarm.
[0039] By setting the gas filling device, the heat preservation gas can be delivered into the heat preservation cavity 21, and the leakage state of the delivery connector 3 can be monitored; after the locking screw rod 31 is rotated and descended, the sealing plug 32 is pushed down, the delivery connector 3 can be sealed, the leakage of the gas is prevented, one end of each delivery connector 3 can deliver the gas, and the other end can suck the gas, so as to facilitate the sufficient delivery of the heat insulation gas such as nitrogen into the heat preservation cavity 21; after the detection connector 4 is connected with the delivery connector 3, when the delivery connector 3 leaks, the gas can enter the detection connector 4, the inflatable air bag 41 is inflated, the inflatable air bag 41 is pressed after being inflated, the alarm contact 42 is electrified, and the alarm is issued to remind.
[0040] Working principle: through the detection joint 4 is taken down, the side of the delivery joint 3 one end can be connected to the gas delivery equipment, the other side of the delivery joint 3 one end can also be connected to the suction device, or not connected to any device, through the gas delivery equipment through the delivery joint 3 to the heat preservation cavity 21 into the heat preservation gas, spring support frame 24 to the heat preservation cavity 21 are supported, facilitate the flow of gas, in the heat preservation cavity 21 filled with heat preservation gas, rotating the locking screw rod 31 of the delivery joint 3, locking screw rod 31 push the sealing plug 32 to descend after, the side of the port is sealed, so as to realize the sealing of the heat preservation cavity 21, again after the detection joint 4 and the side of the delivery joint 3 one end are screwed, in the delivery joint 3 leak state, the gas can enter the detection joint 4, so that the inflatable air bag 41 is inflated, inflatable air bag 41 is inflated after extrusion alarm contact 42, so that the alarm contact 42 is electrified, send out the alarm to remind.
[0041] The above is only the preferred specific implementation of the present application, but the protection scope of the present application is not limited to this, any skilled in the art of the technical personnel in the technical range disclosed by the present application, according to the technical scheme of the present application and the utility model concept are equivalent to replace or change, should be covered in the protection scope of the present application.
Claims
1. An energy-saving and carbon-reducing dehumidification unit pipeline for preventing cold and heat offset, comprising an inner pipe (1), characterized in that: The outer surface of the inner pipe (1) is provided with a heat preservation device, the heat preservation device comprises a heat preservation sleeve (2), the inside of the heat preservation sleeve (2) is provided with a heat preservation cavity (21), the heat preservation sleeve (2) preserves the heat of the gas conveyed in the inner pipe (1); The outer surface of the heat preservation sleeve (2) is provided with an inflation device, the inflation device comprises a conveying joint (3), the conveying joint (3) conveys the heat preservation gas into the heat preservation sleeve (2).
2. An energy saving and carbon reduction dehumidifier unit pipeline for preventing cold and heat offset according to claim 1, characterized in that: The heat preservation device further comprises a heat preservation layer (22), the heat preservation layer (22) is bonded to the outer surface of the heat preservation sleeve (2), the heat preservation sleeve (2) is bonded to the outer surface of the inner pipe (1), and the material of the heat preservation layer (22) is heat preservation sponge.
3. The energy-saving and carbon-reducing dehumidification unit pipeline for preventing cold and heat offset according to claim 2, characterized in that: The outer surface of the heat preservation layer (22) is wrapped with an isolation layer (23), and the material of the isolation layer (23) is tin foil paper.
4. The energy saving carbon reduction dehumidification unit piping of claim 1, wherein: The inner wall of the heat preservation sleeve (2) is fixedly provided with a spring support frame (24), and the two ends of the heat preservation sleeve (2) are fixedly provided with connecting heads (25).
5. The energy saving carbon reduction dehumidification unit piping of claim 1, wherein: The inflation device further comprises a locking threaded rod (31), the locking threaded rod (31) is threadedly connected to the inner wall of the conveying joint (3), and two conveying joints (3) are fixedly connected to the inner wall of the heat preservation sleeve (2) respectively.
6. An energy saving carbon reduction dehumidification unit piping to prevent cold heat cancellation according to claim 5, characterized in that: One end of the locking threaded rod (31) is rotatably connected with a sealing plug (32) through a bearing, and the outer surface of the sealing plug (32) is slidably inserted into the inner wall of the conveying joint (3).
7. The energy saving carbon reduction dehumidification unit piping of claim 1, wherein: One end of the conveying joint (3) is threadedly connected with a detection joint (4), the inner wall of the detection joint (4) is fixedly provided with an inflatable air bag (41), and the inner wall of the detection joint (4) is fixedly provided with an alarm contact (42).