Energy storage assembly for reaction kettle system based on phase change heat storage material

By designing an energy storage component for reactor system based on phase change heat storage material, the complex operation of phase change heat storage body replacement and maintenance in the prior art is solved, and the rapid replacement and maintenance of heat storage components are realized, and the operation convenience and efficiency of the system are improved.

CN120212787APending Publication Date: 2025-06-27YANGZHOU POLYTECHNIC INST
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Patent Information

Application Number
CN202510697909.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-28
Publication Date
2025-06-27

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Abstract

The invention discloses an energy storage assembly for a reaction kettle system based on a phase change heat storage material in the technical field, the energy storage assembly comprises a storage box, first connecting blocks are fixedly connected to the periphery of the outer side of the storage box, a plurality of mounting cavities are formed in the first connecting blocks, and energy storage mechanisms are mounted in the mounting cavities; a plurality of heat conduction mechanisms are arranged in the periphery of the outer side of the storage box, one end of each heat conduction mechanism extends into the storage box, and the other end of each heat conduction mechanism extends into the mounting cavity; by arranging the movable heat storage assembly, the heat storage assembly can be movably installed in the installation cavity, the heat conduction mechanism can be cleaned in the installation process, the sealing groove is sealed through the sealing mechanism, and the sealing performance between the installation cavity and the sealing cover is ensured; heat of liquid entering the storage box can be transferred into the heat storage mechanism through the heat conduction mechanism for latent heat storage, and when the heat storage mechanism needs to be maintained or replaced, the heat storage mechanism in the mounting cavity can be maintained or replaced by independently opening the sealing cover at the position.
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Description

Technical Field

[0001] The present invention relates to the technical field of energy storage components, and particularly relates to an energy storage component for a reaction kettle system based on a phase change heat storage material. Background Art

[0002] For example, the Chinese patent with the publication number CN215766660U discloses a heat exchange type energy accumulator for a liquid reaction kettle, including a heating chamber body, a top end cover, a heat conduction chamber body, an energy storage chamber body, a phase change heat storage body, a heat conduction channel, a fluid channel, a heating body, a first heating electrode, and a second heating electrode. Among them, the top end cover is arranged on the top of the heating chamber body, the heat conduction chamber body is arranged on the outside of the heating chamber body, the fluid channel is arranged at the bottom end of the heating chamber body, the heating body is arranged inside the heating chamber body, one end of the heating body is connected to the first heating electrode, and the other end of the heating body is connected to the second heating electrode.

[0003] However, the above solution has the following deficiencies: In the above patent, the high-temperature liquid in the reaction kettle enters the heating chamber body, and the heat is transferred to the phase change heat storage body through the heat conduction chamber and the heat conduction channel for absorption. When the reaction kettle operates, the phase change heat storage body transfers the heat back to the heating chamber body for use. However, in the above patent, a certain phase change heat storage body cannot be taken out separately for replacement. When the phase change heat storage body needs to be replaced or maintained after long-term heat exchange use, the operator cannot quickly take out and install the phase change heat storage body in the energy storage chamber body. Therefore, we introduce an energy storage component for a reaction kettle system based on a phase change heat storage material. Summary of the Invention

[0004] Aiming at the deficiencies existing in the prior art, the present invention provides an energy storage component for a reaction kettle system based on a phase change heat storage material to solve the problems raised in the above background art.

[0005] The purpose of the present invention is achieved as follows: An energy storage component for a reaction kettle system based on a phase change heat storage material includes a storage box. A first connection block is fixedly connected to the outer periphery of the storage box. A plurality of installation cavities are formed in the first connection block. An energy storage mechanism is installed in the installation cavity. A plurality of heat conduction mechanisms are arranged inside the outer periphery of the storage box. One end of the heat conduction mechanism extends into the storage box, and the other end extends into the installation cavity and is connected to the energy storage mechanism. When high-temperature liquid enters the storage box, the heat conduction mechanism guides the heat into the energy storage mechanism for storage; A sealing cover is movably installed in the installation cavity. A sealing groove is formed on the outer side of the sealing cover, and a sealing mechanism is clamped in the sealing groove. Sealing mechanisms are arranged on the inner sides of the four peripheries of the installation cavity. When the heat storage mechanism is installed in the installation cavity, the sealing mechanism seals the sealing groove. A number of blocking mechanisms are arranged in the first connecting block, and a number of connecting grooves are formed in the first connecting block. When the heat storage mechanism is installed in the installation cavity, the blocking mechanisms cancel the blocking of the connecting grooves; The upper end of the storage box is movably installed with a box cover through a buckle. A heating rod is fixedly installed in the box cover, and the lower end of the storage box is fixedly connected with a three-way valve.

[0006] Furthermore, the heat conduction mechanism includes a heat conduction plate fixedly installed in the second connecting block. The second connecting block is fixedly installed in the storage box. One end of the heat conduction plate extends into the storage box, and the other end extends into the installation cavity. A cleaning ring is sleeved outside the heat conduction plate. The cleaning ring is arranged in the storage box. Two T-shaped rods are fixedly connected to the side of the cleaning ring close to the second connecting block. One end of the T-shaped rod close to the second connecting block is movably connected in the second connecting block. The other end of the T-shaped rod away from the cleaning ring extends into the installation cavity. A first spring is sleeved outside the T-shaped rod. One end of the first spring is fixedly connected to the second connecting block, and the other end is fixedly connected to the T-shaped rod Furthermore, the energy storage mechanism includes a connecting box. A phase change heat storage body is arranged in the connecting box. A jack is formed in the inner side of the connecting box close to the second connecting block. One end of the heat conduction plate is inserted into the jack.

[0007] Furthermore, sliding cavities are formed in the upper and lower inner sides of the connecting box. The two sliding cavities communicate with a liquid storage cavity. The liquid storage cavity is formed in the connecting box. Hydraulic oil is arranged in the liquid storage cavity. The sliding cavities communicate with the external environment. A T-shaped box is slidably connected in the sliding cavity. A T-shaped connecting block is movably connected in the T-shaped box. The upper end of the T-shaped connecting block extends into the sliding cavity. A second spring is fixedly connected in the T-shaped box. The other end of the second spring is fixedly connected to the T-shaped connecting block. An I-shaped connecting rod is slidably connected in the liquid storage cavity. The end of the I-shaped connecting rod away from the liquid storage cavity extends out of the connecting box.

[0008] Furthermore, the sealing mechanism includes a T-shaped extrusion block slidably connected in the connecting cavity. Hydraulic oil is arranged in the connecting cavity. The connecting cavity is formed in the first connecting block. One end of the T-shaped extrusion block is arranged in an inclined shape. A support spring is fixedly connected in the connecting cavity. The other end of the support spring is fixedly connected to the T-shaped extrusion block.

[0009] Further, the connection cavity is communicated with the liquid guide cavity, the liquid guide cavity is opened in the first connection block, one end of the liquid guide cavity far from the connection cavity is connected with the folding sealing bag, the folding sealing bag is arranged in the first connection block, and one end of the folding sealing bag is in contact with the sealing groove.

[0010] Further, the blocking mechanism includes an L-shaped connecting plate, the L-shaped connecting plate is slidably connected in the sliding groove, the sliding groove is opened in the first connection block, the sliding groove is communicated with the connection groove, a connecting spring is fixedly connected in the sliding groove, and the other end of the connecting spring is fixedly connected with the L-shaped connecting plate.

[0011] Compared with the prior art, the beneficial effects of the present invention are as follows: by providing a movable heat storage component, the heat storage component can be movably installed into the installation cavity. During the installation process, the heat conduction mechanism will be cleaned, and the blocking mechanism will cancel the block, so that the two installation cavities are communicated with each other. At the same time, after the sealing cover is installed, the sealing mechanism also seals the sealing groove to ensure the sealing performance between the installation cavity and the sealing cover. The heat of the liquid entering the storage tank can be transferred to the heat storage mechanism through the heat conduction mechanism for latent heat storage. When it is necessary to repair or replace the heat storage mechanism, the sealing cover at this position can be separately opened to repair or replace the heat storage mechanism in the installation cavity, which is convenient to use. BRIEF DESCRIPTION OF THE DRAWINGS

[0012] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only the embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained according to the provided drawings without creative efforts.

[0013] Figure 1 It is a schematic cross-sectional structure diagram of the present invention.

[0014] Figure 2 It is a schematic cross-sectional structure diagram of the connection box of the present invention.

[0015] Figure 3 It is a schematic cross-sectional structure diagram of the connection relationship between the T-shaped box and the sliding cavity of the present invention.

[0016] Figure 4 It is a schematic cross-sectional structure diagram of the heat conduction mechanism of the present invention.

[0017] Figure 5 It is a schematic cross-sectional structure diagram of the connection relationship between the blocking mechanism and the first connection block of the present invention.

[0018] Figure 6 It is a schematic cross-sectional structure diagram of the connection relationship between the storage tank and the first connection block of the present invention.

[0019] Figure 7 This is a three-dimensional structural schematic diagram of the heat conduction mechanism of the present invention.

[0020] In the figure: 1. Storage tank; 2. Cleaning ring; 3. Heat conduction plate; 4. Three-way valve; 5. Support spring; 6. Connection box; 7. Sealing cover; 8. Sealing groove; 9. First connection block; 10. Tank cover; 11. Heating rod; 12. Liquid guide cavity; 13. Folding sealing bladder; 14. Jack; 15. Phase change heat storage body; 16. I-shaped connecting rod; 17. Liquid storage cavity; 18. T-shaped connection block; 19. Sliding connection cavity; 20. T-shaped box; 21. Installation cavity; 22. Second spring; 23. Second connection block; 24. T-shaped extrusion block; 25. T-shaped rod; 26. First spring; 27. Connection groove; 28. L-shaped connecting plate; 29. Connection cavity; 30. Connection spring; 31. Chute. Specific embodiments

[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0022] As Figure 1-7 shown, the present invention provides a technical solution: Embodiment 1: An energy storage component for a reactor system based on a phase change heat storage material, including a storage tank 1 for storing the high-temperature liquid discharged from the reactor. A first connection block 9 is fixedly connected to the outer periphery of the storage tank 1. A plurality of installation cavities 21 are provided in the first connection block 9. An energy storage mechanism is installed in the installation cavity 21. A plurality of heat conduction mechanisms are provided inside the outer periphery of the storage tank 1. One end of the heat conduction mechanism extends into the storage tank 1, and the other end extends into the installation cavity 21 and is connected to the energy storage mechanism. When the high-temperature liquid enters the storage tank 1, the heat conduction mechanism guides the heat into the energy storage mechanism for storage; A sealing cover 7 is movably installed in the installation cavity 21. A sealing groove 8 is formed on the outer side of the sealing cover 7, and a sealing mechanism is clamped in the sealing groove 8. Sealing mechanisms are arranged around the inner side of the installation cavity 21. When the heat storage mechanism is installed in the installation cavity 21, the heat storage mechanism will extrude several sealing mechanisms. At this time, the several outward-bulging sealing mechanisms are in contact with the sealing groove 8, so that the connection between the sealing cover 7 and the installation cavity 21 is sealed to prevent heat dissipation. Several blocking mechanisms are arranged in the first connecting block 9, and several connecting grooves 27 are formed in the first connecting block 9. When the heat storage mechanism is installed in the installation cavity 21, the blocking mechanism will be pushed by the heat storage mechanism to move, so that the blocking of the connecting groove 27 by the blocking mechanism is cancelled. When there is no heat storage mechanism installed in an installation cavity 21, at this time, the installation cavities 21 with and without the heat storage mechanism installed will not be in a communicating state due to the blocking of a blocking mechanism; A box cover 10 is movably installed at the upper end of the storage tank 1 through a buckle. A heating rod 11 is fixedly installed in the box cover 10. A three-way valve 4 is fixedly connected to the lower end of the storage tank 1. When the liquid reaction kettle restarts working, the heat absorbed in the heat storage mechanism will be released outward, and the heat will be re-transferred into the storage tank 1 through the heat conduction mechanism, so that the liquid in the storage tank 1 is heated. At the same time, the liquid in the storage tank 1 can be further heated by turning on the heating rod 11. The liquid can be re-entered into the reaction kettle through the three-way valve 4 by means of an external circulation pump. At the same time, the storage tank 1 can be cleaned by opening the box cover 10, and the liquid generated after cleaning can be discharged outward through the other discharge port of the three-way valve 4.

[0023] Embodiment 2: On the basis of Embodiment 1, in order to enable the heat conduction mechanism to still conduct heat after long-term use, the heat conduction mechanism includes a heat conduction plate 3. The heat conduction plate 3 can be made of a material with good heat conduction and corrosion resistance, such as copper alloy or high-alloy stainless steel. The heat conduction plate 3 is fixedly installed in the second connecting block 23, and the second connecting block 23 is fixedly installed in the storage tank 1. One end of the heat conduction plate 3 extends into the storage tank 1, and the other end extends into the installation cavity 21. A cleaning ring 2 is sleeved outside the heat conduction plate 3. The cleaning ring 2 is arranged in the storage tank 1. Two T-shaped rods 25 are fixedly connected to the side of the cleaning ring 2 close to the second connecting block 23. One end of the T-shaped rod 25 close to the second connecting block 23 is movably connected in the second connecting block 23. One end of the T-shaped rod 25 away from the cleaning ring 2 extends into the installation cavity 21. A first spring 26 is sleeved outside the T-shaped rod 25. One end of the first spring 26 is fixedly connected to the second connecting block 23, and the other end is fixedly connected to the T-shaped rod 25. During the process of the connection box 6 moving inward, the T-shaped rod 25 will be squeezed to move. The movement of the T-shaped rod 25 drives the cleaning ring 2 to move along the surface of the heat conduction plate 3. During the movement of the cleaning ring 2, the surface of the heat conduction plate 3 will be cleaned, so that the impurities attached to the surface of the heat conduction plate 3 can be scraped off. At the same time, when the connection box 6 is taken out, under the elastic force of the first spring 26, the T-shaped rod 25 will drive the cleaning ring 2 back to the initial position; The energy storage mechanism includes a connection box 6. The connection box 6 can be made of a material with good heat conduction and corrosion resistance, such as copper alloy or high-alloy stainless steel. A phase change heat storage body 15 is arranged in the connection box 6. The material of the phase change heat storage body 15 is paraffin or molten salt. The phase change heat storage body 15 can store heat in the form of latent heat. A jack 14 is opened at one end of the connection box 6 close to the second connecting block 23. One end of the heat conduction plate 3 is inserted into the jack 14. After the connection box 6 is installed in the installation cavity 21, the heat conduction plate 3 will be inserted into the jack 14. A plurality of heat conduction plates 3 located in the storage tank 1 will guide the heat of the high-temperature liquid to the surface inside the connection box 6. At this time, the phase change heat storage body 15 located in the connection box 6 will absorb the heat; Sliding connection cavities 19 are provided at both the upper and lower ends of the connection box 6. The two sliding connection cavities 19 communicate with the liquid storage cavity 17. The liquid storage cavity 17 is provided inside the connection box 6. Hydraulic oil is provided inside the liquid storage cavity 17. The sliding connection cavity 19 communicates with the external environment. A T-shaped box 20 is slidably connected inside the sliding connection cavity 19. A T-shaped connection block 18 is movably connected inside the T-shaped box 20. The T-shaped box 20 and the T-shaped connection block 18 can be made of materials with good heat conduction and corrosion resistance, such as copper alloy or high alloy stainless steel. The upper end of the T-shaped connection block 18 extends into the sliding connection cavity 19. A second spring 22 is fixedly connected inside the T-shaped box 20. The other end of the second spring 22 is fixedly connected to the T-shaped connection block 18. The upper end of the T-shaped connection block 18 is arranged in a corrugated shape. Through this corrugated arrangement, the contact area between the two T-shaped connection blocks 18 is increased. An I-shaped connecting rod 16 is slidably connected inside the liquid storage cavity 17. One end of the I-shaped connecting rod 16 away from the liquid storage cavity 17 extends out of the connection box 6. During the process of installing the sealing cover 7, the I-shaped connecting rod 16 arranged inside the connection box 6 will be pushed to move along the liquid storage cavity 17. At this time, the hydraulic oil located inside the liquid storage cavity 17 will be pushed into the sliding connection cavity 19. The hydraulic oil entering the sliding connection cavity 19 will push the T-shaped box 20 to move upward. The movement of the T-shaped box 20 drives the T-shaped connection block 18 to move. When the T-shaped connection blocks 18 inside the two connection boxes 6 come into contact with each other, at this time, as the T-shaped box 20 continues to move, the T-shaped connection block 18 will move into the T-shaped box 20, causing the second spring 22 to be compressed, enabling the several connection boxes 6 to be connected to each other and completing the mutual transfer of heat; The sealing mechanism includes a T-shaped extrusion block 24. The T-shaped extrusion block 24 is slidably connected inside the connection cavity 29. Hydraulic oil is provided inside the connection cavity 29. The connection cavity 29 is provided inside the first connection block 9. One end of the T-shaped extrusion block 24 is arranged in an inclined shape. A support spring 5 is fixedly connected inside the connection cavity 29. The other end of the support spring 5 is fixedly connected to the T-shaped extrusion block 24. The connection cavity 29 communicates with the liquid guiding cavity 12. The liquid guiding cavity 12 is provided inside the first connection block 9. One end of the liquid guiding cavity 12 away from the connection cavity 29 is connected to the folding sealing bag 13. The folding sealing bag 13 is arranged inside the first connection block 9. One end of the folding sealing bag 13 is in contact with the sealing groove 8. After the connection box 6 comes into contact with the T-shaped extrusion block 24, as the connection box 6 continues to move, several T-shaped extrusion blocks 24 will move into the connection cavity 29. At this time, the support spring 5 is compressed. The hydraulic oil located inside the connection cavity 29 will be squeezed into the liquid guiding cavity 12. The hydraulic oil entering the liquid guiding cavity 12 will enter the folding sealing bag 13. At this time, several folding sealing bags 13 will simultaneously bulge outwards to seal the sealing groove 8. Among them, the length of the folding sealing bags 13 on the upper and lower sides of the installation cavity 21 can be greater than the length of the folding sealing bags 13 on the front and back sides, enabling the folding sealing bags 13 in the four directions to come into contact with each other when bulging, completing the full sealing of the sealing groove 8 and ensuring the sealing performance between the installation cavity 21 and the sealing cover 7; The blocking mechanism includes an L-shaped connecting plate 28 which is slidably connected in a chute 31. The chute 31 is formed in the first connecting block 9 and is communicated with the connecting groove 27. A connecting spring 30 is fixedly connected in the chute 31, and the other end of the connecting spring 30 is fixedly connected to the L-shaped connecting plate 28. During the movement of the connecting box 6, the L-shaped connecting plate 28 will be pushed to move. At this time, the connecting spring 30 is compressed, and the movement of the L-shaped connecting plate 28 cancels the block on the connecting groove 27, realizing the mutual communication between the two installation cavities 21. When there is no connecting box 6 installed in one installation cavity 21, the installation cavities 21 with and without the connecting box 6 installed will not be in a connected state due to the block of one blocking mechanism.

[0024] Working principle: During use, the connecting box 6 is sequentially installed into the installation cavity 21 according to the usage situation, and the sealing cover 7 is installed on the connecting box 6 through a screw. During the installation of the sealing cover 7, the connecting box 6 will be continuously pushed into the installation cavity 21. During the inward movement of the connecting box 6, the T-shaped rod 25 will be extruded to move, and the movement of the T-shaped rod 25 drives the cleaning ring 2 to move along the surface of the heat conducting plate 3. During the movement of the cleaning ring 2, the surface of the heat conducting plate 3 will be cleaned. At the same time, when the connecting box 6 contacts the T-shaped extrusion block 24, as the connecting box 6 continues to move, several T-shaped extrusion blocks 24 will move into the connecting cavity 29. At this time, the support spring 5 is compressed, and the hydraulic oil in the connecting cavity 29 will be extruded into the liquid guide cavity 12. The hydraulic oil entering the liquid guide cavity 12 will enter the folding seal bag 13. At this time, several folding seal bags 13 will bulge outwards simultaneously to seal the seal groove 8. Through the contact between several outwardly bulging folding seal bags 13 and the seal groove 8, the connection between the sealing cover 7 and the installation cavity 21 is sealed. And during the movement of the connecting box 6, the L-shaped connecting plate 28 will be pushed to move. At this time, the connecting spring 30 is compressed, and the movement of the L-shaped connecting plate 28 cancels the block on the connecting groove 27. During the installation of the sealing cover 7, the I-shaped connecting rod 16 arranged in the connecting box 6 will be pushed to move along the liquid storage cavity 17. At this time, the hydraulic oil in the liquid storage cavity 17 will be pushed into the sliding cavity 19. The hydraulic oil entering the sliding cavity 19 will push the T-shaped box 20 to move upwards. The movement of the T-shaped box 20 drives the T-shaped connecting block 18 to move. When the T-shaped connecting blocks 18 in the two connecting boxes 6 contact each other, at this time, as the T-shaped box 20 continues to move, the T-shaped connecting block 18 will move into the T-shaped box 20, causing the second spring 22 to be compressed. When the liquid reactor stops operating, the high-temperature liquid enters the storage tank 1 through the three-way valve 4. A number of heat conducting plates 3 in the storage tank 1 will guide the heat of the high-temperature liquid to the surface in the connection box 6. At this time, the phase change heat storage body 15 in the connection box 6 will absorb the heat. When the liquid reactor starts to work, the heat absorbed by the phase change heat storage body 15 will be released outward, and the heat will be re-transmitted to the storage tank 1 through the heat conducting plates 3, so that the liquid in the storage tank 1 is heated. At the same time, by turning on the heating rod 11, the liquid in the storage tank 1 can be further heated. The liquid can re-enter the reactor through the three-way valve 4 by means of an external circulation pump.

[0025] The description of the above embodiments is only used to help understand the method and its core idea of the present invention. It should be noted that for those of ordinary skill in the art of this technology, without departing from the principle of the present invention, several improvements and modifications can be made to the present invention, and these improvements and modifications also fall within the protection scope of the claims of the present invention.

Claims

1. An energy storage component for a reactor system based on a phase change heat storage material, comprising a storage tank, characterized in that: A first connecting block is fixedly connected to the outer periphery of the storage box. A plurality of installation cavities are formed in the first connecting block. An energy storage mechanism is installed in the installation cavity. A plurality of heat conduction mechanisms are arranged inside the outer periphery of the storage box. One end of the heat conduction mechanism extends into the storage box, and the other end extends into the installation cavity and is connected to the energy storage mechanism. When high-temperature liquid enters the storage box, the heat conduction mechanism guides the heat into the energy storage mechanism for storage; A sealing cover is movably installed in the installation cavity. A sealing groove is formed on the outer side of the sealing cover. A sealing mechanism is clamped in the sealing groove. Sealing mechanisms are arranged inside the periphery of the installation cavity. When the heat storage mechanism is installed in the installation cavity, the sealing mechanism seals the sealing groove. A plurality of blocking mechanisms are arranged in the first connecting block. A plurality of connecting grooves are formed in the first connecting block. When the heat storage mechanism is installed in the installation cavity, the blocking mechanism cancels the blocking of the connecting groove; A box cover is movably installed at the upper end of the storage box through a buckle. A heating rod is fixedly installed in the box cover. A three-way valve is fixedly connected to the lower end of the storage box.

2. The energy storage component for the reactor system based on the phase change heat storage material according to claim 1, characterized in that: The heat conduction mechanism includes a heat conduction plate. The heat conduction plate is fixedly installed in a second connecting block. The second connecting block is fixedly installed in the storage box. One end of the heat conduction plate extends into the storage box, and the other end extends into the installation cavity. A cleaning ring is sleeved outside the heat conduction plate. The cleaning ring is arranged in the storage box. Two T-shaped rods are fixedly connected to the side of the cleaning ring close to the second connecting block. One end of the T-shaped rod close to the second connecting block is movably connected in the second connecting block. The other end of the T-shaped rod away from the cleaning ring extends into the installation cavity. A first spring is sleeved outside the T-shaped rod. One end of the first spring is fixedly connected to the second connecting block, and the other end is fixedly connected to the T-shaped rod.

3. The energy storage component for the reactor system based on the phase change heat storage material according to claim 2, characterized in that: The energy storage mechanism includes a connecting box. A phase change heat storage body is arranged in the connecting box. An insertion hole is formed in the end of the connecting box close to the second connecting block. One end of the heat conduction plate is inserted into the insertion hole.

4. The energy storage component for a reactor system based on a phase change heat storage material according to claim 3, characterized in that: Sliding cavities are formed in the upper and lower ends of the connecting box. The two sliding cavities are communicated with a liquid storage cavity. The liquid storage cavity is formed in the connecting box. Hydraulic oil is arranged in the liquid storage cavity. The sliding cavity is communicated with the external environment. A T-shaped box is slidably connected in the sliding cavity. A T-shaped connecting block is movably connected in the T-shaped box. The upper end of the T-shaped connecting block extends into the sliding cavity. A second spring is fixedly connected in the T-shaped box. The other end of the second spring is fixedly connected to the T-shaped connecting block. An I-shaped connecting rod is slidably connected in the liquid storage cavity. One end of the I-shaped connecting rod away from the liquid storage cavity extends out of the connecting box.

5. The energy storage component for the reactor system based on the phase change heat storage material according to claim 1, characterized in that: The sealing mechanism includes a T-shaped extrusion block. The T-shaped extrusion block is slidably connected in a connecting cavity. Hydraulic oil is arranged in the connecting cavity. The connecting cavity is formed in the first connecting block. One end of the T-shaped extrusion block is arranged in an inclined shape. A support spring is fixedly connected in the connecting cavity. The other end of the support spring is fixedly connected to the T-shaped extrusion block.

6. The energy storage component for a reactor system based on a phase change heat storage material according to claim 5, characterized in that: The connection cavity is communicated with the liquid guide cavity. The liquid guide cavity is opened in the first connection block. One end of the liquid guide cavity away from the connection cavity is connected to the folding seal bag. The folding seal bag is arranged in the first connection block. One end of the folding seal bag is in contact with the seal groove.

7. The energy storage component for a reactor system based on a phase change heat storage material according to claim 1, characterized in that: The blocking mechanism includes an L-shaped connecting plate. The L-shaped connecting plate is slidably connected in the sliding groove. The sliding groove is opened in the first connection block. The sliding groove is communicated with the connection groove. A connecting spring is fixedly connected in the sliding groove. The other end of the connecting spring is fixedly connected to the L-shaped connecting plate.

Citation Information

Patent Citations

  • Heat exchange type energy accumulator for liquid reaction kettle

    CN215766660U