A heating operation energy-saving management device
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- LINXIA HEZHOU HUACHEN ENERGY INVESTMENT MANAGEMENT (GROUP) CO LTD
- Filing Date
- 2025-08-12
- Publication Date
- 2026-08-07
AI Technical Summary
[0005]本实用新型的目的在于提供一种供热运行节能管理装置,旨在解决现有供热方式会造成大量能源浪费的问题
[0015]本实用新型实施例提供的一种供热运行节能管理装置,热力炉输出的气体通过进气热力管进入弯管内,其再由弯管依次进入固定管、第一检测箱和补偿箱内,气体依次绕过多个隔板并从出气孔进入第二检测箱内,再依次进入固定管、弯管和出气热力管内,最终输出到用户端,该过程中,盘状加热管对补偿箱内的气体进行加热,使其达到额定温度,最终使气体到达用户端时,其温度达到标准,使用该种供热管理方式,可降低热力炉的供热量,避免热量在运输过程中大量流失,该装置更节能。
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Figure CN224607780U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of heating, and in particular relates to an energy-saving management device for heating operation. Background Technology
[0002] Heating is a thermal insulation measure, mainly used in urban neighborhoods and city-wide centralized heating in northern China. The primary purpose of heating is to compensate for the heat loss from buildings, maintaining a relatively stable indoor temperature. There are various heating methods, with coal being the main fuel for winter heating in northern China. However, with the development of heating technology and equipment, the energy structure for heating has also changed. Currently, the heating area using gas, oil, and electricity as heating energy sources is increasing year by year, and the energy structure of heating based on coal, gas, oil, and electricity is becoming increasingly rational.
[0003] Currently, the heat source for the factory's heating network comes from the furnace. The hot air from the furnace is transported within the factory through heat pipes and then distributed to various heat-consuming equipment. Currently, the heat pipes are transported at high altitudes, but the temperature at high altitudes is lower, resulting in significant heat loss within the heat pipes. This necessitates increasing the output heat of the furnace. However, the greater the temperature difference, the more frequent the heat exchange, inevitably consuming more resources and causing a large waste of energy.
[0004] To avoid the aforementioned technical problems, it is indeed necessary to provide a heating operation energy-saving management device to overcome the deficiencies in the prior art. Utility Model Content
[0005] The purpose of this utility model is to provide an energy-saving management device for heating operation, which aims to solve the problem of a large amount of energy waste caused by existing heating methods.
[0006] This utility model embodiment is implemented as follows: a heating operation energy-saving management device includes a compensation box. A first detection box and a second detection box are fixedly connected to the top two sides of the compensation box, respectively. An air inlet and an air outlet are respectively opened on the top two sides of the compensation box. The air inlet is connected to the first detection box, and the air outlet is connected to the second detection box. A fixed pipe is connected to the top of both the first and second detection boxes. A regulating valve is installed on each of the two fixed pipes. A bend is connected to the top of each of the two fixed pipes via a flange. One end of each bend is connected to an air inlet heat pipe and an air outlet heat pipe via a flange, respectively. The device also includes:
[0007] A first detection component and a second detection component are used to detect the gas inside the first detection box and the second detection component is installed in the second detection box, respectively, so as to measure the temperature and flow rate of the gas discharged from the inlet heat pipe and the temperature and flow rate of the gas entering the outlet heat pipe.
[0008] A heating component is installed inside the compensation box. The heating component is used to heat the gas entering the compensation box, thereby compensating for the heat of the gas so that the gas reaches the standard temperature when it reaches the user end.
[0009] In a further technical solution, the heating component includes multiple partitions, all of which are fixedly connected inside the compensation box and positioned between the air inlet and outlet. The partitions are staggered vertically to allow the gas to flow a longer distance. Multiple disc-shaped heating tubes are provided between the partitions to heat the gas passing through them.
[0010] In a further technical solution, the first detection component includes a temperature sensor, a flow meter, and a wireless communication module. The flow meter and the temperature sensor are all connected to the wireless communication module via data cables. The wireless communication module is wirelessly connected to a wireless base station. The wireless base station is connected to a switch via a data cable. The switch is connected to a sub-monitoring room, a main monitoring room, a backup server, and an upper-level monitoring room via data cables. The second detection component has the same structure as the first detection component.
[0011] In a further technical solution, both the inlet heat pipe and the outlet heat pipe are provided with inserts at one end near the bend. The inserts extend into the interior of the bend, and one end of the insert is provided with a sealing ring. The sealing ring and the inner wall of the bend are interference-fitted.
[0012] A further technical solution is that sampling tubes are provided on both sides of the compensation box, and valves are provided on the sampling tubes. The sampling tubes are used to sample the gas in the compensation box, which facilitates the staff to detect and manage it. The two sampling tubes are respectively set at the gas inlet and gas outlet, which can accurately detect changes in the gas.
[0013] In a further technical solution, the inlet heat pipe, the bend pipe, the fixed pipe, and the outlet heat pipe are all covered with heat-insulating sponge.
[0014] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0015] This utility model provides an energy-saving management device for heating operation. Gas output from the furnace enters a bend through an inlet heating pipe, then sequentially enters a fixed pipe, a first detection box, and a compensation box. The gas then bypasses multiple baffles and enters a second detection box through an outlet hole, before sequentially entering the fixed pipe, the bend, and the outlet heating pipe, finally being output to the user. During this process, a disc-shaped heating pipe heats the gas in the compensation box to its rated temperature, ensuring that the gas reaches the standard temperature upon arrival at the user. Using this heating management method reduces the furnace's heat output and prevents significant heat loss during transportation, making the device more energy-efficient. Attached Figure Description
[0016] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0017] Figure 2 This is a front view cross-sectional structural diagram of the present invention;
[0018] Figure 3 For the present utility model Figure 2 Enlarged structural diagram at point A in the middle.
[0019] In the attached diagram: 1. Compensation box; 2. First detection box; 3. Second detection box; 4. Air inlet; 5. Fixed pipe; 6. Regulating valve; 7. Bend; 8. Air inlet heating pipe; 9. Air outlet heating pipe; 10. First detection assembly; 11. Second detection assembly; 12. Heating assembly; 121. Baffle; 122. Disc-shaped heating pipe; 13. Insertion tube; 14. Sampling tube. Detailed Implementation
[0020] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0021] The specific implementation of this utility model will be described in detail below with reference to specific embodiments.
[0022] like Figure 1-3As shown, this utility model provides a heating operation energy-saving management device, including a compensation box 1. A first detection box 2 and a second detection box 3 are fixedly connected to the top two sides of the compensation box 1, respectively. An air inlet 4 and an air outlet are respectively opened on the top two sides of the compensation box 1. The air inlet 4 communicates with the first detection box 2, and the air outlet communicates with the second detection box 3. A fixed pipe 5 is connected to the top of both the first detection box 2 and the second detection box 3. A regulating valve 6 is installed on each of the two fixed pipes 5. A bend 7 is connected to the top of each of the two fixed pipes 5 via a flange. One end of each bend 7 is connected to an air inlet heat pipe 8 and an air outlet heat pipe 9 via a flange, respectively. The device also includes:
[0023] The first detection component 10 and the second detection component 11 are installed on the first detection box 2 and the second detection component 11 is installed on the second detection box 3. The first detection component 10 and the second detection component 11 are respectively used to detect the gas in the first detection box 2 and the second detection box 3, thereby measuring the temperature and flow rate of the gas discharged from the inlet heat pipe 8 and the temperature and flow rate of the gas entering the outlet heat pipe 9.
[0024] Heating component 12 is installed inside compensation box 1. Heating component 12 is used to heat the gas entering the compensation box 1, thereby compensating for the heat of the gas so that the gas reaches the standard temperature when it reaches the user end.
[0025] By installing multiple of these devices between the heating furnace and the user end, the heating capacity of the heating furnace can be reduced. These multiple devices can then provide supplementary heating to the gas, making up for the heat lost during gas transportation. This ensures that the gas reaches the standard temperature when it arrives at the user end. Compared to traditional direct heat transmission, where the heating furnace needs to provide gas at several times the standard temperature, this device is more energy-efficient.
[0026] In the embodiments of this utility model, such as Figure 2 As shown, in a preferred embodiment of the present invention, the heating component 12 includes a plurality of partitions 121, which are all fixedly connected inside the compensation box 1 and are positioned between the air inlet 4 and the air outlet. The partitions 121 are staggered vertically to allow the gas to flow over a longer distance. A plurality of disc-shaped heating tubes 122 are provided between the partitions 121, which can heat the gas passing through them.
[0027] In this embodiment of the present invention, as a preferred embodiment, the first detection component 10 includes a temperature sensor, a flow meter, and a wireless communication module. The flow meter and the temperature sensor are all connected to the wireless communication module via data cables. The wireless communication module is wirelessly connected to a wireless base station. The wireless base station is connected to a switch via a data cable. The switch is connected to a sub-monitoring room, a main monitoring room, a backup server, and an upper-level monitoring room via data cables. The second detection component 11 has the same structure as the first detection component 10.
[0028] In the embodiments of this utility model, such as Figure 2-3 As shown, in a preferred embodiment of the present invention, both the inlet heat pipe 8 and the outlet heat pipe 9 are provided with a tube 13 at one end near the bend 7. The tube 13 extends into the interior of the bend 7, and a sealing ring is provided at one end of the tube 13. The sealing ring and the inner wall of the bend 7 are interference-fitted.
[0029] In the embodiments of this utility model, such as Figure 1-2 As shown, in a preferred embodiment of the present invention, sampling tubes 14 are provided on both sides of the compensation box 1. Valves are provided on the sampling tubes 14. The sampling tubes 14 are used to sample the gas in the compensation box 1, so as to facilitate the staff to detect and manage it. The two sampling tubes 14 are respectively set at the gas inlet and gas outlet, which can accurately detect changes in the gas.
[0030] In this embodiment of the present invention, as a preferred embodiment, the inlet heat pipe 8, the bend pipe 7, the fixed pipe 5, and the outlet heat pipe 9 are all covered with heat-insulating sponge to reduce the loss of gas heat.
[0031] This energy-saving heating management device works as follows: the gas output from the furnace enters the bend 7 through the inlet heating pipe 8, and then sequentially enters the fixed pipe 5, the first detection box 2, and the compensation box 1 through the bend 7. The gas then passes through multiple baffles 121 and enters the second detection box 3 through the outlet hole, and then sequentially enters the fixed pipe 5, the bend 7, and the outlet heating pipe 9 before finally being output to the user. During this process, the disc heating pipe 122 heats the gas in the compensation box 1 to reach the rated temperature. Then, the first detection component 10 and the second detection component 11 can detect the gas, measuring the amount of heat loss during the journey from the furnace to the compensation box 1 and the amount of heat compensation provided by the compensation box 1. This facilitates management and ensures that the gas reaches the standard temperature when it reaches the user. Using this heating management method can reduce the heat output of the furnace and avoid a large amount of heat loss during transportation, making the device more energy-efficient.
[0032] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
[0033] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A heating operation energy-saving management device, comprising a compensation box, characterized in that, The compensation box has a first detection box and a second detection box fixedly connected to its top two sides, respectively. An air inlet and an air outlet are respectively provided on the top two sides of the compensation box. The air inlet is connected to the first detection box, and the air outlet is connected to the second detection box. A fixed pipe is connected to the top of both the first and second detection boxes. A regulating valve is installed on each of the two fixed pipes. A bend is connected to the top of each of the two fixed pipes. One end of each bend is connected to an air inlet heat pipe and an air outlet heat pipe, respectively. The compensation box also includes: A first detection component and a second detection component are used to detect the gas inside the first detection box and the second detection component is installed on the second detection box, respectively. A heating assembly is installed inside the compensation chamber and is used to heat the gas entering the compensation chamber.
2. The energy-saving management device for heating operation according to claim 1, characterized in that, The heating assembly includes multiple partitions, all of which are fixedly connected inside the compensation box. The partitions are positioned between the air inlet and the air outlet, and are staggered vertically. Multiple disc-shaped heating tubes are arranged between the partitions.
3. The energy-saving management device for heating operation according to claim 1, characterized in that, The first detection component includes a temperature sensor, a flow meter, and a wireless communication module. The flow meter and the temperature sensor are all connected to the wireless communication module via data cables. The wireless communication module is wirelessly connected to a wireless base station. The wireless base station is connected to a switch via a data cable. The switch is connected to a sub-monitoring room, a main monitoring room, a backup server, and an upper-level monitoring room via data cables. The second detection component has the same structure as the first detection component.
4. The energy-saving management device for heating operation according to claim 1, characterized in that, Both the inlet heat pipe and the outlet heat pipe are equipped with inserts at one end near the bend. The inserts extend into the interior of the bend, and one end of the insert is equipped with a sealing ring. The sealing ring and the inner wall of the bend are interference-fitted.
5. The energy-saving management device for heating operation according to claim 1, characterized in that, Sampling tubes are installed on both sides of the compensation box, and valves are installed on the sampling tubes.
6. The energy-saving management device for heating operation according to any one of claims 1-5, characterized in that, The inlet heating pipe, bend pipe, fixed pipe, and outlet heating pipe are all covered with heat-insulating sponge.