Automatic pressurization regulation and control system of heat supply pipe network
The automatic pressurization and control system of the pressure stabilizing component and the processing component solves the problem of unstable water pressure during the heating process, realizes stable detection and rapid adjustment of hot water pressure, and improves heating efficiency and stability.
Patent Information
- Application Number
- CN202422995204.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2034-12-05
AI Technical Summary
During the heating process, the water pressure is easily affected by the water supply speed, which can lead to a drop in water pressure and unstable heating. In addition, water pressure is inconvenient to detect, especially under the influence of hot steam, which can result in inaccurate detection and untimely water pressure adjustment, affecting heating efficiency and stability.
The system employs pressure stabilizing and processing components, and consists of an automatic pressurization control system composed of components such as limiting valves, limit springs, and pressure sensors. It utilizes water flow impact and hot and cold water mixing to achieve stable water pressure detection and adjustment, reduce the impact of hot steam, and ensure heating stability and efficiency.
It achieves stability of hot water pressure and improves heating efficiency. Through multi-segment pipe rack connection and hot and cold water mixing, it ensures steady water supply and rapid water temperature adjustment during the heating process, and reduces the impact of hot steam on detection.
Smart Images

Figure CN223840492U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of heating network technology, specifically to an automatic pressure boosting and control system for heating networks. Background Technology
[0002] Automatic control systems for heating networks are an important component of modern heating systems. They aim to achieve efficient management and optimized control of heating networks through automation. These systems can automatically adjust the flow and temperature of hot water based on actual heating demand, ambient temperature, heat source status, and other factors, thereby improving heating efficiency, reducing energy consumption, and ensuring user comfort.
[0003] However, during the current heating process, the water pressure is easily affected by the water supply speed, which can lead to a decrease in water pressure and unstable heating. Furthermore, the internal water pressure detection is inconvenient during the current heating system. At the same time, when using a water pressure sensor for detection, it is affected by the hot steam inside the tank, resulting in inaccurate water pressure detection. This leads to untimely water pressure adjustment, affecting heating efficiency and stability. Utility Model Content
[0004] This utility model provides an automatic pressure boosting and control system for heating pipe networks, which can effectively solve the problems mentioned in the background art, such as the water pressure being easily affected by the water supply speed during the heating process, leading to water pressure reduction and unstable heating. In addition, in existing heating systems, internal water pressure detection is inconvenient, and direct detection using water pressure sensors is affected by the hot steam inside the tank, resulting in inaccurate water pressure detection. This leads to untimely water pressure adjustment, affecting heating efficiency and stability.
[0005] To achieve the above objectives, this utility model provides the following technical solution: an automatic pressure boosting and control system for heating pipe networks, comprising an integrated processing frame, wherein a pressure stabilizing component is provided at the top of the integrated processing frame, and the pressure stabilizing component comprises a fixed support barrel, a cooperating linkage barrel, an external discharge pipe rack, an injection fixed pipe, a fixed support box, an external discharge fixed pipe, a limit spring, a blocking closing plate, an alignment fixing rope, a pressing processing plate, a pressure sensor, a connecting pipe, and a limiting valve;
[0006] The top of the integrated processing rack is equidistantly equipped with fixed support barrels, and a cooperating linkage barrel is fixed on one side of the top of the integrated processing rack. An external drain pipe rack is connected through the bottom of the fixed support barrel. One end of the external drain pipe rack is connected to an injection fixing pipe through an adapter. One end of the injection fixing pipe is connected through a fixed support box, and one end of the fixed support box is connected through an external drain fixing pipe.
[0007] Limiting springs are welded to one end of the inner side and the top of the outer side of the fixed support box. A blocking closing plate is fixed to one end of the limiting spring. Alignment fixing ropes are fixed to both sides of one end of the blocking closing plate. A pressing treatment plate is fixed to one end of the alignment fixing rope. A pressure sensor is fixed to the bottom end of the pressing treatment plate. A connecting pipe is connected to one side of the bottom of the linkage barrel and one end of the external discharge pipe rack. A limiting valve is embedded in one end of the injection fixing pipe, the external discharge fixing pipe, and the connecting pipe.
[0008] According to the above technical solution, the top end of the limiting spring is snapped and connected to the bottom end of the pressing plate, and the input ends of the pressure sensor and the limiting valve are electrically connected to the output end of the external controller.
[0009] The input terminal of the external controller is electrically connected to the output terminal of the external power supply.
[0010] According to the above technical solution, the alignment and fixing rope is slidably installed on the top of the fixed support box, and the bottom end of the pressure sensor is attached to the top of the fixed support box.
[0011] According to the above technical solution, the blocking closure plate is rotatably installed inside the fixed support box, and one end of the blocking closure plate is attached to one end of the injection fixed pipe.
[0012] According to the above technical solution, a processing component is provided on the side of the fixed support barrel. The processing component includes a water inlet pipe rack, a dispersion pipe rack, a drive motor, a drive gear, a stirring processing rack, a driven gear, an inlet operation pipe, a thermometer, and a heat preservation barrel.
[0013] A water inlet pipe is connected to the bottom of the fixed support barrel. A dispersion pipe is sleeved inside the fixed support barrel. A drive motor is mounted on the top of the dispersion pipe via a motor mount. A drive gear is engaged at the bottom of the output shaft of the drive motor. A stirring rack is rotatably sleeved on the outer end of the dispersion pipe rack. A driven gear is fixed to the top of the side end of the stirring rack. An inlet operation pipe is connected to the top of the side end of the fixed support barrel. A thermometer is embedded in the top of the fixed support barrel. A heat preservation barrel is sleeved on the side end of the fixed support barrel.
[0014] According to the above technical solution, the inlet pipe rack and the distribution pipe rack are sleeved together, and the input terminals of the drive motor and the thermometer are electrically connected to the output terminal of the external controller.
[0015] Compared with the prior art, the advantages of this utility model are: the structure of this utility model is scientific and reasonable, and it is safe and convenient to use.
[0016] 1. Equipped with a pressure stabilizing component, the system opens the injection and discharge fixed pipes via a limiting valve, allowing heating water from the fixed support tank to be discharged through the discharge pipe rack and injection fixed pipe. The heating water impacts the blocking and closing plate, causing it to rotate via a limit spring. This, in conjunction with the limit spring, moves the pressure plate and aligns it with the fixing rope limit assembly. Simultaneously, a pressure sensor monitors the pressure on the pressure plate in real time, thus detecting the water pressure. The limiting valve then opens the connecting pipe, injecting water from the linkage tank into the inside of the discharge pipe rack. Through the interconnection of multiple pipe rack sections, water is drained from each other, increasing and stabilizing the water pressure to ensure a stable water supply during heating. Furthermore, the direct impact of the water flow reduces the influence of hot steam on water pressure detection, improving heating efficiency and stability.
[0017] 2. Equipped with a processing component, hot water is injected into the fixed support tank through the inlet operating pipe. Cold water is injected into the fixed support tank through the inlet pipe rack and the dispersion pipe rack. The drive motor drives the drive gear to rotate, which in turn drives the driven gear and the stirring processing rack to rotate, thus mixing the hot and cold water. This achieves rapid mixing of hot and cold water. A thermometer is used to detect the water temperature, which allows for quick and timely adjustment of the water temperature. At the same time, the water output speed is controlled to ensure a stable water supply and improve the stability of the water mixing. Attached Figure Description
[0018] The accompanying drawings are provided to further understand the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation thereof.
[0019] In the attached diagram:
[0020] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;
[0021] Figure 2 This is a schematic diagram of the voltage regulator component of this utility model;
[0022] Figure 3 This is a schematic diagram of the installation structure of the blocking closure plate of this utility model;
[0023] Figure 4 This is a schematic diagram of the processing component of this utility model;
[0024] Numbered in the diagram: 1. Integrated processing rack;
[0025] 2. Voltage stabilizing assembly; 201. Fixed support barrel; 202. Coordinating linkage barrel; 203. External discharge pipe rack; 204. Injection fixing pipe; 205. Fixed support box; 206. External discharge fixing pipe; 207. Limiting spring; 208. Blocking closing plate; 209. Alignment fixing rope; 210. Pressing treatment plate; 211. Pressure sensor; 212. Connecting pipe; 213. Restriction valve;
[0026] 3. Processing components; 301. Water inlet pipe rack; 302. Dispersion pipe rack; 303. Drive motor; 304. Drive gear; 305. Stirring and processing rack; 306. Driven gear; 307. Inlet operating pipe; 308. Thermometer; 309. Insulation tank. Detailed Implementation
[0027] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0028] Example: Figure 1-4 As shown, this utility model provides a technical solution: an automatic pressure boosting and control system for a heating network, including an integrated processing frame 1. A pressure stabilizing component 2 is provided at the top of the integrated processing frame 1. The pressure stabilizing component 2 includes a fixed support bucket 201, a cooperating linkage bucket 202, an external discharge pipe rack 203, an injection fixing pipe 204, a fixed support box 205, an external discharge fixing pipe 206, a limit spring 207, a blocking closing plate 208, an alignment fixing rope 209, a pressure processing plate 210, a pressure sensor 211, a connecting pipe 212, and a limiting valve 213.
[0029] Fixed support barrels 201 are equidistantly installed at the top of the integrated processing frame 1. A cooperating linkage barrel 202 is fixed to one side of the top of the integrated processing frame 1. An external drain pipe rack 203 is connected through the bottom of the fixed support barrels 201. One end of the external drain pipe rack 203 is connected to an injection fixing pipe 204 via an adapter. One end of the injection fixing pipe 204 is connected through a fixed support box 205. An external drain fixing pipe 206 is connected through one end of the fixed support box 205. Limiting springs 207 are welded to both the inner end and the top of the outer side of the fixed support box 205. The top of the limiting spring 207 engages with the bottom of the pressing processing plate 210, achieving stable locking and limiting. A blocking closure plate 208 is fixed to one end of the limiting spring 207. The blocking closure plate 208 is rotatably installed inside the fixed support box 205, blocking closure. One end of the composite plate 208 is attached to one end of the injection fixing pipe 204 to achieve steady rotation and alignment. Both sides of one end of the blocking closing plate 208 are fixed with alignment fixing ropes 209. The alignment fixing ropes 209 are slidably installed through the top of the fixed support box 205 to achieve steady alignment and ensure stable operation of alignment sliding. One end of the alignment fixing rope 209 is fixed with a pressing plate 210. The bottom end of the pressing plate 210 is fixed with a pressure sensor 211. The bottom end of the pressure sensor 211 is attached to the top of the fixed support box 205 to ensure stable pressure sensing. The bottom side of the linkage barrel 202 and one end of the external discharge pipe rack 203 are connected with connecting pipes 212. One end of the injection fixing pipe 204, the external discharge fixing pipe 206 and the connecting pipe 212 are all embedded with a limiting valve 213.
[0030] To ensure stable operation of the equipment, the input terminals of pressure sensor 211 and limiting valve 213 are electrically connected to the output terminal of an external controller.
[0031] The input terminal of the external controller is electrically connected to the output terminal of the external power supply.
[0032] A processing component 3 is provided on the side of the fixed support tank 201. The processing component 3 includes a water inlet pipe rack 301, a dispersion pipe rack 302, a drive motor 303, a drive gear 304, a stirring processing rack 305, a driven gear 306, an inlet operation pipe 307, a thermometer 308, and a heat preservation tank 309.
[0033] A water inlet pipe rack 301 is connected to the bottom of the fixed support barrel 201. A dispersion pipe rack 302 is sleeved inside the fixed support barrel 201. The water inlet pipe rack 301 and the dispersion pipe rack 302 are sleeved together to achieve steady water inlet treatment. A drive motor 303 is installed at the top of the dispersion pipe rack 302 through a motor base. A drive gear 304 is snapped at the bottom of the output shaft of the drive motor 303. A stirring treatment rack 305 is rotatably sleeved on the outer end of the dispersion pipe rack 302. A driven gear 306 is fixed at the top of the side end of the stirring treatment rack 305. An inlet operation pipe 307 is connected to the top of the side end of the fixed support barrel 201. A thermometer 308 is embedded in the top of the fixed support barrel 201. An insulation barrel 309 is sleeved on the side end of the fixed support barrel 201. For stable operation of the equipment, the input ends of the drive motor 303 and the thermometer 308 are electrically connected to the output end of an external controller.
[0034] The working principle and usage process of this utility model are as follows: When water supply treatment is required, hot water is injected into the inside of the fixed support tank 201 through the inlet operation pipe 307. Cold water is injected into the dispersion pipe 302 through the inlet pipe frame 301. The cold water enters the inside of the fixed support tank 201 through the dispersion pipe 302. The transmission motor 303 drives the transmission gear 304 to rotate. The transmission gear 304 drives the driven gear 306 to rotate. The driven gear 306 drives the stirring treatment frame 305 to rotate, which promotes the mixing of hot and cold water, realizing rapid mixing of hot and cold water. The water temperature is detected by the thermometer 308, which facilitates rapid and timely adjustment of the water temperature. The fixed support tank 201 is insulated by the heat preservation tank 309.
[0035] By opening the injection fixed pipe 204 and the outflow fixed pipe 206 through the limiting valve 213, the heating water in the fixed support tank 201 is discharged out through the outflow pipe rack 203 and the injection fixed pipe 204. The water in the injection fixed pipe 204 impacts the blocking closing plate 208, at which time the limit spring 207 is compressed. At the same time, the limit spring 207 located at the top of the fixed support box 205 drives the pressure treatment plate 210 to move upward. At this time, the alignment fixing rope 209 moves outward along the fixed support box 205. The pressure sensor 211 detects the pressure of the pressure treatment plate 210 in real time, thereby detecting the water pressure. When the water pressure is low, the connecting pipe 212 is opened by the limiting valve 213, and the water in the linkage tank 202 is injected into the inside of the outflow pipe rack 203 through the connecting pipe 212 to increase the water pressure. Through multiple sets of coordination, the stability of the water supply pressure is improved, and the operation can be stable during pressurization.
[0036] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. An automatic pressurization and control system for a heating network, comprising an integrated processing frame (1), characterized in that: The integrated processing rack (1) is equipped with a pressure stabilizing component (2) at its top. The pressure stabilizing component (2) includes a fixed support barrel (201), a cooperating linkage barrel (202), an external discharge pipe rack (203), an injection fixing pipe (204), a fixed support box (205), an external discharge fixing pipe (206), a limit spring (207), a blocking closing plate (208), an alignment fixing rope (209), a pressing processing plate (210), a pressure sensor (211), a connecting pipe (212), and a limiting valve (213). The integrated processing rack (1) is equidistantly equipped with fixed support buckets (201) at its top end. A cooperating linkage bucket (202) is fixed on one side of the top end of the integrated processing rack (1). An external drain pipe rack (203) is connected through the bottom end of the fixed support bucket (201). An injection fixing pipe (204) is connected to one end of the external drain pipe rack (203) through an adapter. A fixed support box (205) is connected through one end of the injection fixing pipe (204). An external drain fixing pipe (206) is connected through one end of the fixed support box (205). Limiting springs (207) are welded to one end of the inner side and the top of the outer side of the fixed support box (205). A blocking closing plate (208) is fixed to one end of the limiting spring (207). Alignment fixing ropes (209) are fixed to both sides of one end of the blocking closing plate (208). A pressing treatment plate (210) is fixed to one end of the alignment fixing rope (209). A pressure sensor (211) is fixed to the bottom end of the pressing treatment plate (210). A connecting pipe (212) is connected to one side of the bottom of the linkage barrel (202) and one end of the external discharge pipe rack (203). A limiting valve (213) is embedded in one end of the injection fixing pipe (204), the external discharge fixing pipe (206) and the connecting pipe (212).
2. The automatic pressure boosting and control system for a heating network according to claim 1, characterized in that, The top end of the limiting spring (207) is snapped and connected to the bottom end of the pressing plate (210), and the input ends of the pressure sensor (211) and the limiting valve (213) are electrically connected to the output end of the external controller. The input terminal of the external controller is electrically connected to the output terminal of the external power supply.
3. The automatic pressure boosting and control system for a heating network according to claim 1, characterized in that, The alignment and fixing rope (209) is slidably installed on the top of the fixed support box (205), and the bottom end of the pressure sensor (211) is in contact with the top of the fixed support box (205).
4. The automatic pressure boosting and control system for a heating network according to claim 1, characterized in that, The blocking closure plate (208) is rotatably installed inside the fixed support box (205), and one end of the blocking closure plate (208) is attached to one end of the injection fixing pipe (204).
5. The automatic pressure boosting and control system for a heating network according to claim 1, characterized in that, The fixed support barrel (201) is provided with a processing component (3) on its side. The processing component (3) includes a water inlet pipe rack (301), a dispersion pipe rack (302), a drive motor (303), a drive gear (304), a stirring processing rack (305), a driven gear (306), an inlet operation pipe (307), a thermometer (308), and a heat preservation barrel (309). The bottom end of the fixed support barrel (201) is connected to the water inlet pipe bracket (301). The inner side of the fixed support barrel (201) is fitted with the dispersion pipe bracket (302). The top end of the dispersion pipe bracket (302) is equipped with a drive motor (303) through a motor base. The bottom end of the output shaft of the drive motor (303) is engaged with a drive gear (304). The outer end of the dispersion pipe bracket (302) is rotatably fitted with a stirring and processing rack (305). The top side end of the stirring and processing rack (305) is fixed with a driven gear (306). The top side end of the fixed support barrel (201) is connected to the inlet operation pipe (307). The top end of the fixed support barrel (201) is embedded with a thermometer (308). The side end of the fixed support barrel (201) is fitted with a heat preservation barrel (309).
6. The automatic pressure boosting and control system for a heating network according to claim 5, characterized in that, The inlet pipe rack (301) and the distribution pipe rack (302) are connected together, and the input terminals of the drive motor (303) and the thermometer (308) are electrically connected to the output terminal of the external controller.