Novel organic heat carrier pipeline structure

By designing a novel organic heat carrier pipeline structure and utilizing a combination of circulation and heating components, the problems of low and uneven heating efficiency in traditional heat carrier pipelines have been solved, achieving uniform heating and efficient production of the heat carrier.

CN223755594UActive Publication Date: 2026-01-02FUHENG IND TECH (KUNSHAN) CO LTD
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Patent Information

Application Number
CN202520191382.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-07
Publication Date
2026-01-02
Estimated Expiration
2035-02-07

AI Technical Summary

Technical Problem

Traditional heat carrier pipelines have low and uneven heating efficiency, which cannot meet the requirements of high-temperature production processes.

Method used

A novel organic heat carrier pipeline structure was designed, comprising a circulation component, a control component, and a heating component. The flow rate is monitored in real time by a built-in flow meter, the flow rate is regulated by a control valve, multiple U-shaped tubes increase the flow path and contact area, and the heating tube is fixed to the inner wall for uniform heating.

Benefits of technology

It improves heating efficiency, achieves uniform heating of the heat carrier, meets the requirements of high-temperature production processes, and prevents the heating tube from being damaged during the flow process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the related technical field of heat carrier pipelines, in particular to a novel organic heat carrier pipeline structure which comprises a liquid inlet pipe, a circulating assembly is arranged on the lower left portion of the liquid inlet pipe, a control assembly is arranged on one side of the liquid inlet pipe, and a heating assembly is arranged at the bottom of the circulating assembly. The circulating assembly comprises a straight pipe, a first connecting pipe, a U-shaped pipe, a liquid outlet pipe, a built-in flow meter, a first mounting piece and a second mounting piece, the circulating assembly is arranged, the built-in flow meter feeds back flow data of a heat carrier in real time, the control valve is combined, and the flow speed of the heat carrier is conveniently regulated and controlled according to production requirements; the multiple sets of U-shaped pipes increase the circulation path of the heat carrier and the contact area of the heat carrier and the heating assembly, the heat carrier is evenly heated in continuous circulation, the heating efficiency is improved, the heating pipes of the heating assembly are installed on the inner walls of the straight pipes and the U-shaped pipes through the fixing discs, and the heating pipes are prevented from being damaged in the heat carrier flowing and heating process.
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Description

TECHNICAL FIELD

[0001] The utility model relates to heat carrier pipeline related technical field especially relates to a novel organic heat carrier pipeline structure. BACKGROUND

[0002] In industrial production, the heat carrier pipeline is used to transfer heat through the heat carrier to meet the temperature requirements of various production processes, and therefore, a novel organic heat carrier pipeline structure is particularly needed.

[0003] Since the conventional heat carrier pipeline adopts a single tube heating structure, the contact area between the heat carrier and the heating component is small, and the heating efficiency is low. In addition, the uneven heating results in a large temperature difference in the pipeline, which cannot meet the production process requirements for high temperature.

[0004] To solve the above problems, a novel organic heat carrier pipeline structure is provided. UTILITY MODEL CONTENTS

[0005] The utility model aims to provide a novel organic heat carrier pipeline structure to solve the existing novel organic heat carrier pipeline structure problem in the background art.

[0006] To achieve the above purpose, the utility model provides the following technical scheme: a novel organic heat carrier pipeline structure, comprising a liquid inlet pipe, a circulating assembly is arranged at the lower left of the liquid inlet pipe, a control assembly is arranged on one side of the liquid inlet pipe, and a heating assembly is arranged at the bottom of the circulating assembly.

[0007] The circulating assembly comprises a straight pipe installed at the bottom of the liquid inlet pipe, a first connecting pipe is arranged on one side of the straight pipe, a U-shaped pipe is arranged on one side of the first connecting pipe, and two groups of U-shaped pipes are arranged, a liquid outlet pipe is arranged on one side of the U-shaped pipe, and an internal flow meter is arranged on one side of the U-shaped pipe.

[0008] Preferably, the circulating assembly further comprises a first mounting member installed on one side of the straight pipe, a second mounting member is arranged on the other side of the straight pipe, and the second mounting member has four groups for connecting the straight pipe, the U-shaped pipe, and the U-shaped pipe.

[0009] Preferably, the first connecting pipe has three groups for connecting the straight pipe, the U-shaped pipe, the U-shaped pipe, and the U-shaped pipe, which facilitates liquid circulation, and the internal flow meter is arranged on the top wall of the first connecting pipe between the U-shaped pipe and the liquid outlet pipe, and is sealingly connected with the first connecting pipe.

[0010] Preferably, the control assembly comprises a second connecting pipe installed on one side of the liquid inlet pipe, a first connecting member is arranged at one end of the second connecting pipe, and a control valve is arranged on one side of the first connecting member.

[0011] Preferably, the control valve is used to control the flow rate of fluid into the liquid inlet pipe.

[0012] Preferably, the heating assembly comprises a heating pipe installed on the inner wall of the straight pipe and the U-shaped pipe, the surface of the heating pipe is provided with a fixing disc, and the bottom of the heating pipe is provided with a second connecting piece, and the bottom of the second connecting piece is provided with a heater.

[0013] Preferably, the fixing disc is a porous structure, which is convenient for fluid circulation and fixing of the heating pipe on the inner wall of the straight pipe and the U-shaped pipe.

[0014] Preferably, the circulation assembly is provided with three places, and the heater is provided with twelve groups of heating pipes arranged at the bottom connecting end of the U-shaped pipe and the straight pipe.

[0015] Compared with the prior art, the utility model has the beneficial effects that:

[0016] The novel organic heat carrier pipeline structure is provided with a circulation assembly, heat carrier flow data is fed back in real time through the built-in flow meter, the control valve is combined to conveniently regulate and control the flow rate of the heat carrier according to production requirements, a plurality of U-shaped pipes increase the circulation path of the heat carrier and the contact area with the heating assembly, so that the heat carrier is uniformly heated in continuous circulation, the heating efficiency is improved, and the heating pipe of the heating assembly is installed on the inner wall of the straight pipe and the U-shaped pipe through the fixing disc, so that damage of the heating pipe in the heat carrier flow and heating process is prevented. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 It is a whole structure schematic view of the utility model;

[0018] Figure 2 It is a structure schematic view of the circulation assembly of the utility model;

[0019] Figure 3 It is a structure schematic view of the heating assembly of the utility model;

[0020] Figure 4 It is a structure schematic view of the control assembly of the utility model;

[0021] Figure 5 It is a whole structure schematic view of the utility model Figure 2 It is an enlarged structure schematic view of A in the utility model.

[0022] In the drawing: 1, liquid inlet pipe; 2, circulation assembly; 201, straight pipe; 202, first connecting pipe; 203, U-shaped pipe; 204, liquid outlet pipe; 205, built-in flow meter; 206, first mounting piece; 207, second mounting piece; 3, control assembly; 301, second connecting pipe; 302, first connecting piece; 303, control valve; 4, heating assembly; 401, heating pipe; 402, fixing disc; 403, second connecting piece; 404, heater. DETAILED DESCRIPTION

[0023] The technical solutions in the embodiments of the utility model will be clearly and completely described in connection with the drawings in the embodiments of the utility model.

[0024] Embodiment

[0025] As shown in Figure 1 , 2 , 5, comprising liquid inlet pipe 1, the lower left of liquid inlet pipe 1 is equipped with circulation assembly 2, one side of liquid inlet pipe 1 is equipped with control assembly 3, the bottom of circulation assembly 2 is equipped with heating assembly 4, circulation assembly 2 includes straight pipe 201 installed at the bottom of liquid inlet pipe 1, one side of straight pipe 201 is equipped with first connecting pipe 202, one side of first connecting pipe 202 is equipped with U-shaped pipe 203, and U-shaped pipe 203 is equipped with two groups, one side of U-shaped pipe 203 is equipped with liquid outlet pipe 204, one side of U-shaped pipe 203 is equipped with built-in flowmeter 205, circulation assembly 2 further includes first mounting 206 installed at one side of straight pipe 201, the other side of straight pipe 201 is equipped with second mounting 207, and second mounting 207 is equipped with four groups, for the connection between straight pipe 201 and U-shaped pipe 203 and U-shaped pipe 203 and U-shaped pipe 203.

[0026] It should be noted that in the embodiment, the fluid flowing out from the bottom of liquid inlet pipe 1 enters straight pipe 201, since straight pipe 201 is connected with U-shaped pipe 203 through first connecting pipe 202, the fluid flows into U-shaped pipe 203 through first connecting pipe 202, here first connecting pipe 202 plays the role of guiding the direction of fluid and connecting pipeline, and first mounting 206 is used for the mounting of straight pipe 201 and the outside, second mounting 207 guarantees the stability of the connection between straight pipe 201 and U-shaped pipe 203, two groups of U-shaped pipes 203 are arranged side by side, which increases the flow path of heat carrier and the contact area with heating assembly 4, when the fluid flows in U-shaped pipe 203, built-in flowmeter 205 monitors the flow rate of the fluid flowing through in real time, the fluid passing through U-shaped pipe 203 flows into liquid outlet pipe 204 through another section of first connecting pipe 202, and the circulation in circulation assembly 2 is completed.

[0027] As shown in Figure 3 , heating assembly 4 includes heating pipe 401 installed on the inner wall of straight pipe 201 and U-shaped pipe 203, a plurality of fixed discs 402 are arranged on the surface of heating pipe 401, a second connecting piece 403 is arranged on the bottom of heating pipe 401, and a heater 404 is arranged on the bottom of second connecting piece 403.

[0028] It should be noted that in this embodiment, when the heat carrier flows in the straight pipe 201 and the U-shaped pipe 203, the heater 404 is turned on and heat is released through the heating pipe 401. The twelve sets of heaters 404 are located at the bottom connection end of the U-shaped pipe 203 and the straight pipe 201, which can uniformly heat the heat carrier at different positions. The fixed disk 402 on the surface of the heating pipe 401 has a porous structure, which can not only ensure the normal flow of the heat carrier, but also stabilize the heating pipe 401 and prevent it from shaking or displacing inside the pipe.

[0029] The second connector 403 is used for the connection between the heating tube 401 and the heater 404.

[0030] like Figure 4 As shown, the control component 3 includes a second connecting pipe 301 installed on one side of the inlet pipe 1. One end of the second connecting pipe 301 is provided with a first connector 302, and one side of the first connector 302 is provided with a control valve 303.

[0031] It should be noted that in this embodiment, the control valve 303 is connected to the second connecting pipe 301 through the first connecting member 302, and the second connecting pipe 301 is connected to the inlet pipe 1. During the operation of the pipeline, the operator adjusts the flow rate and velocity of the heat carrier through the control valve 303 according to the requirements of the heat carrier flow rate and velocity, so as to control the flow rate of the heat carrier entering the inlet pipe 1.

[0032] Working principle of this utility model:

[0033] Refer to the instruction manual appendix Figures 1-5 First, the fluid flowing out from the bottom of the inlet pipe 1 enters the straight pipe 201. Since the straight pipe 201 is connected to the U-shaped pipe 203 through the first connecting pipe 202, the fluid flows into the U-shaped pipe 203 through the first connecting pipe 202. Here, the first connecting pipe 202 plays the role of guiding the direction of the fluid and connecting the pipes. The first mounting part 206 is used for the installation of the straight pipe 201 with the outside. The second mounting part 207 ensures the stability of the connection between the straight pipe 201 and the U-shaped pipe 203. The two sets of U-shaped pipes 203 are arranged side by side, which increases the flow path of the heat carrier and the contact area with the heating component 4. When the fluid flows in the U-shaped pipe 203, the built-in flow meter 205 monitors the flow rate of the fluid in real time. The fluid that passes through the U-shaped pipe 203 flows into the outlet pipe 204 through another section of the first connecting pipe 202, completing the circulation in the circulation component 2.

[0034] When the heat carrier flows in the straight pipe 201 and the U-shaped pipe 203, the heaters 404 are turned on and release heat through the heating pipes 401, twelve groups of the heaters 404 are respectively arranged at the bottom connecting ends of the U-shaped pipes 203 and the straight pipes 201, and the heat carriers at different positions can be uniformly heated; the fixed disc 402 on the surface of the heating pipe 401 is of a porous structure, which can ensure the normal flow of the heat carrier and stably fix the heating pipe 401 to prevent the heating pipe 401 from shaking or displacing in the pipe;

[0035] The control valve 303 is connected with the second connecting pipe 301 through the first connecting piece 302, and the second connecting pipe 301 is connected with the liquid inlet pipe 1; during the pipeline operation, the operator adjusts the control valve 303 according to the demand for the flow and flow rate of the heat carrier, so as to control the flow rate of the heat carrier entering the liquid inlet pipe 1.

[0036] Although the embodiments of the utility model have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and spirits of the utility model, and the scope of the utility model is defined by the appended claims and their equivalents.

Claims

1. A novel structure of organic heat carrier pipeline, comprising a liquid inlet pipe (1), characterized in that: The lower left of the liquid inlet pipe (1) is provided with a circulating assembly (2), one side of the liquid inlet pipe (1) is provided with a control assembly (3), the bottom of the circulating assembly (2) is provided with a heating assembly (4); The circulating assembly (2) comprises a straight pipe (201) installed at the bottom of the liquid inlet pipe (1), one side of the straight pipe (201) is provided with a first connecting pipe (202), one side of the first connecting pipe (202) is provided with a U-shaped pipe (203), and the U-shaped pipe (203) is provided with two groups, one side of the U-shaped pipe (203) is provided with a liquid outlet pipe (204), and one side of the U-shaped pipe (203) is provided with an internal flow meter (205).

2. A novel structure of organic heat carrier pipeline according to claim 1, characterized in that: The circulating assembly (2) further comprises a first mounting piece (206) mounted on one side of the straight pipe (201), the other side of the straight pipe (201) is provided with a second mounting piece (207), and the second mounting piece (207) is provided with four groups, which are used for connecting the straight pipe (201) with the U-shaped pipe (203) and the U-shaped pipe (203) with the U-shaped pipe (203).

3. A novel structure of organic heat carrier pipeline according to claim 1, characterized in that: The first connecting pipe (202) is provided with three groups, which are used for connecting the straight pipe (201) with the U-shaped pipe (203), the U-shaped pipe (203) with the U-shaped pipe (203) and the U-shaped pipe (203) with the liquid outlet pipe (204), so as to facilitate the flow of liquid, and the internal flow meter (205) is arranged on the top wall of the first connecting pipe (202) between the U-shaped pipe (203) and the liquid outlet pipe (204), and is in sealing connection with the first connecting pipe (202).

4. A novel structure of organic heat carrier pipeline according to claim 1, characterized in that: The control assembly (3) comprises a second connecting pipe (301) mounted on one side of the liquid inlet pipe (1), one end of the second connecting pipe (301) is provided with a first connecting piece (302), one side of the first connecting piece (302) is provided with a control valve (303).

5. A novel structure of organic heat carrier pipeline according to claim 4, characterized in that: The control valve (303) is used for controlling the flow rate of fluid entering the liquid inlet pipe (1).

6. A novel structure of organic heat carrier pipeline according to claim 1, characterized in that: The heating assembly (4) comprises a heating pipe (401) mounted on the inner wall of the straight pipe (201) and the U-shaped pipe (203), a plurality of fixing discs (402) are arranged on the surface of the heating pipe (401), a second connecting piece (403) is arranged on the bottom of the heating pipe (401), and a heater (404) is arranged on the bottom of the second connecting piece (403).

7. A novel structure of organic heat carrier pipeline according to claim 6, characterized by the fact that: The fixing disc (402) is a porous structure, which can fix the heating pipe (401) on the inner wall of the straight pipe (201) and the U-shaped pipe (203) while facilitating the flow of fluid.

8. A novel HTF piping structure according to claim 6, characterized in that: The circulating assembly (2) is provided with three places, and the heater (404) is provided with twelve groups, which are arranged at the bottom connecting end of the U-shaped pipe (203) and the straight pipe (201).