Electromagnetic boiler energy storage and heat storage heat preservation box

The circulating heating system of the electromagnetic boiler energy storage and heat preservation box solves the environmental pollution and health hazards caused by coal combustion, and realizes continuous heating of radiators and efficient use of energy.

CN223726452UActive Publication Date: 2025-12-26苏和
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Patent Information

Application Number
CN202423277665.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-27
Publication Date
2025-12-26
Estimated Expiration
2034-12-27

AI Technical Summary

Technical Problem

Traditional coal-fired heating methods produce harmful gases during the heating process, polluting the environment and endangering human health, and have low energy efficiency.

Method used

An electromagnetic boiler energy storage and heat preservation box is used. The electric boiler heats water and uses a circulation system of pump and heater to deliver the hot water to the radiators. The system also circulates and heats the cold water to control the water temperature difference at about 5°C, so as to achieve continuous heating for the radiators.

Benefits of technology

It effectively avoids the emission of harmful gases, reduces energy consumption, ensures the normal use of radiators throughout the day, saves expenses, and provides a clean heating effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an energy storage and heat storage heat preservation box of an electromagnetic boiler, and belongs to the technical field of heat preservation boxes. Comprising a shell and a heat preservation box assembly, an inner container is installed in the shell, the heat preservation box assembly comprises a first pump body, the first pump body is installed outside the shell, a water passing pipe is installed at the water outlet end of the first pump body, one end of the water passing pipe is installed in the inner container, and the other end of the water passing pipe is installed on a boiler body; and one end of the water conveying pipe is installed in the inner container, a second pump body is installed on the water conveying pipe, the heater is installed outside the shell, a water return pipe is stably installed on the heater, and one end of the water return pipe is installed in the inner container. The device replaces a mode of heating water through coal combustion, environmental pollution is avoided, meanwhile, harm to operators can be avoided, the resource utilization rate is increased, the heating effect is achieved, expenditure is reduced, and the device meets the use requirement and is worthy of popularization.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of heat preservation box, specifically, relates to electromagnetic boiler energy storage heat preservation box. BACKGROUND

[0002] In winter, especially in the north, will be in the room heating, in the room without the ground heating, people will use the heating in the room heating use, through the hot water injection heating, heating the heat generated by the indoor temperature rise, to the people in the room.

[0003] But the current water heating mode, adopt the coal combustion mode, practical coal combustion will heat the water in the boiler, then the hot water is transported to the indoor heating inside use, but use coal as fuel, will produce a large amount of harmful gas, these gases not only cause air pollution, serious situation will cause harm to people, so electromagnetic boiler energy storage heat preservation box is proposed to solve the above problems. UTILITY MODEL CONTENTS

[0004] In order to make up for the above shortcomings, the utility model provides an electromagnetic boiler energy storage heat preservation box which changes the traditional heating malpractice.

[0005] The utility model is realized as follows:

[0006] The utility model provides electromagnetic boiler energy storage heat preservation box, including shell, and installing the inner container in the inside of shell;

[0007] The heat preservation box assembly comprises:

[0008] The first pump body is installed outside the shell, and a water pipe is installed at the water outlet of the first pump body, one end of the water pipe is installed in the inner container, and the other end of the water pipe is installed in the furnace body.

[0009] The water pipe is installed in the inner container, and a second pump body is installed on the water pipe.

[0010] The heater is installed outside the shell, and a return pipe is stably installed on the heater, one end of the return pipe is installed in the inner container.

[0011] In a preferred scheme, the inside of the shell is fixedly installed with a support frame for supporting the shell, and the support frame is in the shape of a rectangle.

[0012] In a preferred scheme, the inside of the shell is further installed with a protective support, the inner container is installed at the inner side of the protective support and is stably connected with the protective support.

[0013] In a preferred scheme, the top of the inner container is fixedly provided with an exhaust pipe, and a pipe is arranged at the side of the inner container, and a plug is arranged at the top of the pipe.

[0014] In a preferred scheme, a blowdown pipe is arranged at the bottom of the side of the inner container, and a control valve is arranged on the blowdown pipe.

[0015] In a preferred scheme, a third pump body is arranged on the water return pipe, and a radiator is arranged at one end of the water return pipe and the water supply pipe, the water supply pipe is arranged at the water inlet end of the radiator, and the water return pipe is arranged at the water outlet end of the radiator.

[0016] The electromagnetic boiler energy storage heat accumulating heat preservation box has the beneficial effects that:

[0017] The water heated in the furnace body is added into the inner container, and the water in the inner container is pumped out under the cooperation of the second pump body and the third pump body, and is used by being delivered into the radiator, when the water temperature in the radiator decreases, the cold water in the radiator is pumped out by the third pump body, and is heated by the heater, and then is delivered into the inner container, and is circulated into the heat preservation box, so that the water temperature difference is reduced, the temperature difference is controlled at about 5 DEG C, and the radiator can be normally used for a day, the device replaces the coal combustion water heating mode, avoids the harm to the environment, and avoids the harm to the operator, the circulating mode of the device achieves the heating effect and reduces the expenditure, and meets the use requirement. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical scheme of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments, and in order to facilitate understanding, the following drawings only show some embodiments of the present application, and should not be regarded as limiting the scope, and for the ordinary skilled in the art, other related drawings can be obtained without creative labor.

[0019] Fig. 1 is the front view structural schematic diagram of the present application;

[0020] Fig. 2 is the internal structure schematic diagram of the shell of the present application.

[0021] In the figure: 1, the shell; 2, the inner container; 3, the heat preservation box assembly; 31, the first pump body; 311, the water pipe; 312, the furnace body; 32, the water pipe; 321, the second pump body; 33, the heater; 331, the backwater pipe; 4, the support frame; 5, the protective support; 6, the exhaust pipe; 7, the pipeline; 8, the plug; 9, the blowdown pipe; 10, the control valve; 11, the third pump body; 12, the radiator. DETAILED DESCRIPTION

[0022] In order to make the purpose, technical scheme and advantages of the utility model embodiment clearer, the technical scheme in the utility model embodiment will be described clearly and completely below in combination with the drawings in the utility model embodiment. Obviously, the described embodiment is part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the utility model.

[0023] EMBODIMENT

[0024] REFERENCE Figs. 1-2 The utility model provides a technical scheme: electromagnetic boiler energy storage heat preservation box, including shell 1 and heat preservation box assembly 3, and installing the inner container 2 in the inside of shell 1, heat preservation box assembly 3 includes the first pump body 31, and the first pump body 31 is installed in the outside of shell 1, and installing the water pipe 311 in the water outlet of first pump body 31, and one end of water pipe 311 is installed in the inside of inner container 2, and the other end of water pipe 311 is installed in furnace body 312, and one end of water pipe 32 is installed in the inside of inner container 2, and installing the second pump body 321 on water pipe 32, and heater 33 is installed in the outside of shell 1, and installing backwater pipe 331 on heater 33 stably, and one end of backwater pipe 331 is installed in the inside of inner container 2.

[0025] Through the heating of furnace body 312 by electric boiler, the water heated in the inside of furnace body 312 is added to the inside of inner container 2, and under the cooperation of second pump body 321 and third pump body 11, the water in the inside of inner container 2 is extracted and delivered to the inside of radiator 12 for use, when the water temperature in the inside of radiator 12 reduces, the cold water in the inside of radiator 12 is extracted by third pump body 11 and delivered to the inside of inner container 2, and the cold water is heated by heater 33 in the process of extraction, and through heating circulation, the temperature difference can be reduced, and the temperature difference is controlled at about 5 DEG C, so as to ensure that the radiator can be used for heating normally all day.

[0026] In a preferred embodiment, the inside of the shell 1 is fixedly mounted with a support frame 4 for supporting the shell 1, the support frame 4 is arranged in a rectangular shape, and the device is arranged to avoid deformation of the shell 1 due to thermal expansion and contraction, and the support frame 4 is arranged inside the shell 1 to ensure the integrity of the shell 1 and avoid deformation.

[0027] In a preferred embodiment, the inside of the shell 1 is also provided with a protective bracket 5, and the inner container 2 is arranged inside the protective bracket 5 and is stably connected with the protective bracket 5, and the device is arranged inside the shell 1 to support the shell 1 and avoid deformation due to thermal expansion and contraction, and the protective bracket 5 is arranged outside the inner container 2 to ensure stable use of the inner container 2.

[0028] In a preferred embodiment, the top of the inner container 2 is fixedly mounted with an exhaust pipe 6, and a pipe 7 is arranged at the side of the inner container 2, and the top of the pipe 7 is provided with a plug 8, and the device leaves a space of 5 cm at the top of the inner container 2, which is not added with water, so as to prevent hot water in the heat preservation box from being discharged from the exhaust hole due to thermal expansion, and the space is convenient for exhaust.

[0029] The device is arranged with a blowdown pipe 9 at the bottom of the side of the inner container 2, and the blowdown pipe 9 is provided with a control valve 10, and the blowdown pipe 9 can be used to clean the residues in the inner container 2, and remove the scale in the inner container 2 in time, which is convenient for use.

[0030] A third pump body 11 is arranged on the backwater pipe 331, and a radiator 12 is arranged at one end of the backwater pipe 331 and the water supply pipe 32, the water supply pipe 32 is arranged at the water inlet end of the radiator 12, and the backwater pipe 331 is arranged at the water outlet end of the radiator 12, the water supply pipe 32 can be used to transport hot water in the inner container 2 to the inside of the radiator 12 for use, when the temperature of the water in the radiator 12 decreases, the third pump body 11 can be used to suck the cold water out of the radiator 12, so as to replace the water in the radiator 12, and the backwater can be quickly heated to 60 degrees in the heater to make the heat preservation box work normally.

[0031] Specifically, the working process or working principle of the electromagnetic boiler energy storage heat preservation box is: but the current way of heating water is to burn coal, which can heat the water in the boiler, and then the hot water is transported to the inside of the radiator 12 for use, but using coal as fuel will produce a large amount of harmful gas, which not only pollutes the air, but also causes harm to people in serious cases, so the device is designed to solve this problem.

[0032] The device adopts an electromagnetic oven controlled furnace body 312 to heat water, uses electric energy instead of coal, effectively avoids pollution to the environment, and also avoids harm to the operator. The device circulates the water inside the inner container 2 and the water inside the radiator 12, and under the action of the heater 33, can heat the cold water discharged by the radiator 12 to about 60 degrees, can reduce the water temperature difference inside the inner container 2, and control the water temperature difference to be about 5°C, realize the supply of daily heating hot water, meet the use, and the specific operation is to add water to the inside of the furnace body 312 first, heat the cold water inside the furnace body 312 by the electric boiler, and after heating the cold water inside the furnace body 312, the hot water is circulated to the inside of the inner container 2.

[0033] According to the habit of water, the density of cold water molecules is small, so the density is large, the molecular distance between hot water is large, so the density is small, when the electric boiler heats the cold water, the molecular density of hot water is small, so the phenomenon of hot water floating will occur, after entering the inner container 2, a cold and hot water layer is formed, hot water floats on cold water, and then the hot water inside the inner container 2 is extracted to the inside of the radiator 12 by the second pump body 321, and the heat is released by the radiator 12, which increases the temperature of the room, so as to realize the effect of heating.

[0034] When the water temperature inside the radiator 12 cannot achieve the effect of heating, the cold water at the bottom of the radiator 12 is extracted by the third pump body 11, and the hot water inside the inner container 2 is delivered to the radiator 12 by the second pump body 321. Since the water temperature of the radiator 12 after cooling is low, in order to avoid a large water temperature difference after entering the inner container 2, when the cold water inside the radiator 12 is extracted, the cold water is heated by the heater 33, and then the water is delivered to the position at the bottom of the inner container 2 by the third pump body 11.

[0035] In order to save energy, the device will circulate and heat the cold water inside the radiator 12, so that the cold water extracted by the radiator 12 enters the inside of the inner container 2, and the cold water is heated during the extraction process of the water inside the radiator 12 each time. After the heating cycle, the water temperature inside the inner container 2 is continuously increased, and finally the water temperature difference between the water inside the inner container 2 and the original water temperature of the inner container 2 is about 5°C.

[0036] When the water temperature difference is about 5°C, the heater stops working. The start-up work of the heater instead of the host computer improves the utilization rate of energy and reduces consumption, thereby saving energy. At this time, the water temperature inside the radiator 12 has reached a normal heating temperature.

[0037] The device uses the valley power period at night to heat once, and stores hot water in the inner container 2. The cold water at the bottom of the radiator 12 is pumped to the heater by the third pump body 11, and then enters the inner container 2. Through the above-mentioned water circulation operation, the supply of hot water for heating on the same day is realized. The water in the inner container 2 is about 75℃ after the whole process. The next night, the water in the whole inner container 2 is heated to about 52℃, and the specified temperature of about 75℃ is reached. According to this method, the heating effect is achieved and the cost is reduced.

[0038] When the hot water in the radiator cannot achieve the heating effect, the water supply system supplies hot water in the heat preservation box in time, and the cold water in the radiator is circulated into the heater to be quickly heated to 60 degrees and enter the heat preservation box. In this way, the hot water in the heat preservation box and the cold water in the radiator are divided into stage heating, that is, the cold water in the radiator is quickly heated, avoiding the waste of excessive power consumption caused by the whole heating of the water in the heat preservation box by the electric boiler host. The whole temperature of the hot water in the heat preservation box is stable through quick heating, which ensures the supply of heating on the same day. In addition, the outer shell 1 and the inner container 2 form a heat preservation box in the device. The device uses the furnace body 312 to heat once and then stops working. The 24-hour heating is realized through circulation and sending the cold water in the radiator 12 to the heater 33 to be quickly heated to about 60 degrees and enter the heat preservation box through the return water pipe 331. When the hot water in the radiator 12 reaches the heating temperature, the heater 33 and the circulation stop at the same time. When the hot water in the radiator 12 cannot reach the heating temperature again, the hot water is supplied through circulation, and the heater 33 also continues to quickly heat the cold water in the radiator 12. In summary, the device solves the traditional process of heating by burning coal, protects the environment, controls pollution, improves the utilization rate of energy, saves resources, and provides clean heating effect.

Claims

1. An electromagnetic boiler energy storage heat accumulating heat preserving box, characterized in that, It includes a shell (1), and installs an inner container (2) in the inside of the shell (1); The heat preservation box assembly (3) includes; A first pump body (31) is installed outside the shell (1), and a water passing pipe (311) is installed at the water outlet end of the first pump body (31), one end of the water passing pipe (311) is installed inside the inner container (2), and the other end of the water passing pipe (311) is installed in a furnace body (312); A water conveying pipe (32) is installed inside the inner container (2), and a second pump body (321) is installed on the water conveying pipe (32); A heater (33) is installed outside the shell (1), and a backwater pipe (331) is stably installed on the heater (33), one end of the backwater pipe (331) is installed inside the inner container (2).

2. The electromagnetic boiler energy storage, heat accumulating, heat preserving tank according to claim 1, characterized in that, The inside of the shell (1) is fixedly installed with a support frame (4) for supporting the shell (1), and the support frame (4) is arranged in a rectangular shape.

3. The electromagnetic boiler energy storage, heat accumulating, heat preserving tank according to claim 2, characterized in that, The inside of the shell (1) is further installed with a protection support (5), the inner container (2) is installed at the inner side of the protection support (5) and is stably connected with the protection support (5).

4. The electromagnetic boiler energy storage, heat accumulating, heat preserving tank according to claim 3, characterized in that, An exhaust pipe (6) is fixedly installed at the top of the inner container (2), and a pipeline (7) is installed at the side of the inner container (2), and a plug (8) is arranged at the top of the pipeline (7).

5. The electromagnetic boiler energy storage, heat accumulating, temperature maintaining box according to claim 4, characterized in that, A blowdown pipe (9) is installed at the bottom end of the side of the inner container (2), and a control valve (10) is arranged on the blowdown pipe (9).

6. The electromagnetic boiler energy storage, heat accumulating, temperature maintaining box according to claim 5, characterized in that, A third pump body (11) is installed on the backwater pipe (331), and a heating radiator (12) is installed at one end of the backwater pipe (331) and the water conveying pipe (32), the water conveying pipe (32) is installed at the water inlet end of the heating radiator (12), and the backwater pipe (331) is installed at the water outlet end of the heating radiator (12).