Heat storage tank for thermoelectric decoupling transformation

By designing a heat storage tank with a rotating mechanism and adjustment mechanism, the adjustability and layering functions inside the heat storage tank are realized, which solves the problem that existing heat storage tanks cannot store hot water in different time periods or temperatures according to demand, and improves the use efficiency and insulation performance of the heat storage tank.

CN119983356AInactive Publication Date: 2025-05-13FANPING BRANCH OF HUANENG GANSU ENERGY DEVELOPMENT CO LTD
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Patent Information

Application Number
CN202411832191.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-12-12
Publication Date
2025-05-13
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing heat storage tanks for thermoelectric decoupling transformation have a fixed internal space and do not have a layering function. They cannot store hot water at different time periods or temperatures according to actual needs, resulting in a decrease in usage efficiency.

Method used

A heat storage tank including a rotating mechanism and an adjustment mechanism is designed. Through the synergy between the first driving assembly and the first rotating assembly, the rotation of the insulation shell and the dynamic protection of the water inlet and outlet are realized, and the insulation performance is improved. At the same time, through the synchronous regulation of the third driving component and the second synchronization component, the movement of the layered partition plate and the sealing plate inside the heat storage tank is realized, forming two smaller water storage spaces to store hot water at different time periods or temperatures respectively.

Benefits of technology

The adjustment and layering function of the water storage space inside the heat storage tank is realized, and the storage flexibility and insulation performance of the heat storage tank are improved, making it convenient for the use of hot water according to actual needs.

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Abstract

The invention relates to the technical field of thermoelectric decoupling devices, in particular to a heat storage tank for thermoelectric decoupling transformation, which comprises a rotating mechanism, a rotating support, a heat preservation shell arranged on the rotating support, a first driving assembly arranged at the bottom of the heat preservation shell, and a first rotating assembly arranged on the heat preservation shell and the first driving assembly, the first synchronous assembly is arranged on the first driving assembly and the first rotating assembly, and the second driving assembly is arranged on the rotating support. According to the heat storage tank for thermoelectric decoupling transformation, a third driving assembly is started and drives a second synchronous assembly to operate, and the action drives a sealing plate on a translation assembly to move until the sealing plate tightly blocks a plurality of flow guide holes in a mixing assembly, so that hot water between layered partition plates does not circulate any more; therefore, two small-size water storage spaces are formed, and layering of the water storage spaces in the heat storage tank is achieved.
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Description

Technical Field

[0001] The invention relates to the technical field of thermoelectric decoupling devices, and in particular to a heat storage tank for thermoelectric decoupling transformation. Background Art

[0002] The purpose of thermal power decoupling transformation is to improve the flexibility of thermal power units to adapt to the peak load demand of the power grid and ensure heat supply. The core is to reduce the power generation load of the cogeneration units without reducing the heat supply capacity through technical transformation, realize the separation of heat load and power dispatch, and provide more power generation space for new energy units.

[0003] Thermoelectric decoupling devices usually use hot water heat storage to compensate for the lack of heating when the unit is under low load. Specifically, the device is equipped with a hot water heat storage tank. When the unit's heating or power supply capacity is sufficient, the excess electricity or heat is used to heat the network circulating water and store it in the heat storage tank. When the unit's heating capacity is insufficient to meet demand, the hot water in the heat storage tank is used to supplement the heat network circulating water system to ensure stable heating of the heat network.

[0004] However, commonly used hot water storage tanks have a fixed internal space and do not have a stratification function. They cannot store hot water of different time periods or temperatures according to actual needs, which directly weakens their efficiency. Summary of the invention

[0005] The purpose of this section is to summarize some aspects of embodiments of the present invention and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and the specification abstract and the invention title of this application to avoid blurring the purpose of this section, the specification abstract and the invention title, and such simplifications or omissions cannot be used to limit the scope of the present invention.

[0006] In view of the above-mentioned problems existing in the existing heat storage tank for thermoelectric decoupling transformation, the present invention is proposed.

[0007] Therefore, the object of the present invention is to provide a heat storage tank for thermoelectric decoupling transformation, the purpose of which is to achieve the adjustability of the water storage space inside the heat storage tank, thereby improving the storage flexibility of the heat storage tank.

[0008] In order to solve the above technical problems, the present invention provides the following technical solutions: comprising a rotating mechanism, comprising a rotating support, a heat preservation shell arranged on the rotating support, a first driving assembly arranged at the bottom of the heat preservation shell, a first rotating assembly arranged on the heat preservation shell and the first driving assembly, a first synchronizing assembly arranged on the first driving assembly and the first rotating assembly, and a second driving assembly arranged on the rotating support;

[0009] The regulating mechanism comprises a heat storage tank arranged on the second driving assembly, a stratified partition and a sealing plate arranged inside the heat storage tank, a third driving assembly arranged on the stratified partition, a second synchronization assembly arranged on the stratified partition and the third driving assembly, a translation assembly arranged on the sealing plate and the third driving assembly, a stabilizing assembly arranged on the insulation shell and the heat storage tank, and a mixing assembly arranged on the stratified partition and the sealing plate.

[0010] As a preferred solution of the heat storage tank for thermoelectric decoupling transformation described in the present invention, the first driving assembly includes a first motor arranged below the insulation shell and a first driving rod arranged on the first motor.

[0011] As a preferred solution of the heat storage tank for thermoelectric decoupling transformation described in the present invention, the first rotating assembly includes a supporting base arranged on the first motor, a driving gear arranged in the supporting base, and a driving gear ring arranged on the insulation shell.

[0012] As a preferred solution of the heat storage tank for thermoelectric decoupling transformation of the present invention, the first synchronization component includes a synchronization gear and a driven gear arranged inside the supporting base, and a first synchronization rod arranged on the synchronization gear.

[0013] As a preferred solution of the heat storage tank for thermoelectric decoupling transformation of the present invention, the second driving assembly includes a second motor arranged on the rotating support, and a second driving rod arranged on the rotating support and the second motor.

[0014] As a preferred solution of the heat storage tank for thermoelectric decoupling transformation of the present invention, the third driving component includes a waterproof motor arranged on the layered partition.

[0015] As a preferred solution of the heat storage tank for thermoelectric decoupling transformation described in the present invention, the second synchronization component includes a second synchronization rod arranged on the waterproof motor, a driving bevel gear arranged on the second synchronization rod, a rotating shaft arranged on the layered partition, and a driven bevel gear arranged on the rotating shaft.

[0016] As a preferred solution of the heat storage tank for thermoelectric decoupling transformation of the present invention, the translation assembly includes a translation gear arranged on the rotating shaft and a spur rack arranged on the sealing plate.

[0017] As a preferred solution of the heat storage tank for thermoelectric decoupling transformation described in the present invention, the stabilizing component includes a roller groove arranged on the insulation shell, a roller arranged on the heat storage tank, a slider arranged on the layered partition, and a slide groove arranged on the sealing plate.

[0018] As a preferred solution of the heat storage tank for thermoelectric decoupling transformation of the present invention, the mixing assembly includes guide holes arranged on the layered partition plate and guide grooves arranged on the sealing plate.

[0019] Beneficial effects of the present invention: Through the synergistic effect of the first drive component and the first rotating component, not only can the heat preservation shell be driven to rotate, but also the water inlet and outlet can be effectively dynamically protected, thereby improving the overall heat preservation performance of the heat storage tank. In addition, a double set of first drive components and first rotating components are designed, and they are respectively installed at both ends of the heat preservation shell, and through the synchronous regulation of the first synchronization component, it is ensured that the two sets of components can synchronously and accurately drive the heat preservation shell to rotate, effectively avoiding the occurrence of jamming;

[0020] In addition, the third driving component starts and drives the second synchronization component to operate. This action drives the sealing plate on the translation component to move until it tightly blocks the multiple diversion holes on the mixing component, so that the hot water between the layered partitions no longer flows, thereby forming two smaller water storage spaces, realizing the stratification of the water storage space inside the heat storage tank. The two layers of water storage space can store hot water of different time periods or temperatures respectively, which is convenient for staff to use according to actual needs. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings required for use in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other accompanying drawings can be obtained based on these accompanying drawings without paying creative labor.

[0022] Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0023] Figure 2 It is a schematic diagram of the structural connection between the third drive assembly and the heat storage tank of the present invention.

[0024] Figure 3 It is a schematic diagram of the structure inside the protective shell of the present invention.

[0025] Figure 4 It is a schematic diagram of the structural connection of the first rotating assembly and the first synchronous assembly of the present invention.

[0026] Figure 5 It is a schematic diagram of the structural connection of the first synchronization component of the present invention.

[0027] Figure 6 It is a schematic diagram of the structure inside the heat storage tank of the present invention.

[0028] Figure 7 It is a schematic diagram of the structural connection between the third drive assembly and the layered partition of the present invention.

[0029] Figure 8 It is a schematic diagram of the structural connection between the third drive assembly and the layered partition of the present invention.

[0030] Fig. 9 For the present invention Figure 8 A partial enlarged view of part A.

[0031] Fig.10 It is a schematic diagram of the structural connection between the third driving component and the second synchronization component of the present invention.

[0032] Fig.11 It is a schematic structural diagram of the layered separator of the present invention.

[0033] Fig.12 It is a structural schematic diagram of the sealing plate of the present invention. DETAILED DESCRIPTION

[0034] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific implementation methods of the present invention are described in detail below in conjunction with the accompanying drawings.

[0035] In the following description, many specific details are set forth to facilitate a full understanding of the present invention, but the present invention may also be implemented in other ways different from those described herein, and those skilled in the art may make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0036] Secondly, the term "one embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The term "in one embodiment" that appears in different places in this specification does not necessarily refer to the same embodiment, nor does it refer to a separate or selective embodiment that is mutually exclusive with other embodiments.

[0037] Secondly, the present invention is described in detail with reference to the schematic diagram. When describing the embodiments of the present invention in detail, for the sake of convenience, the cross-sectional diagrams showing the device structure will not be partially enlarged according to the general scale, and the schematic diagrams are only examples, which should not limit the scope of protection of the present invention. In addition, in actual production, the three-dimensional dimensions of length, width and depth should be included.

[0038] Example 1, reference Figures 1 to 12, which is the first embodiment of the present invention, provides a heat storage tank for thermoelectric decoupling transformation, the device comprises a rotating mechanism 100, comprising a rotating support 101, a heat preservation shell 102 arranged on the rotating support 101, a first driving assembly 103 arranged at the bottom of the heat preservation shell 102, a first rotating assembly 104 arranged on the heat preservation shell 102 and the first driving assembly 103, a first synchronizing assembly 105 arranged on the first driving assembly 103 and the first rotating assembly 104, and a second driving assembly 106 arranged on the rotating support 101;

[0039] The regulating mechanism 200 includes a heat storage tank 201 arranged on the second driving assembly 106, a stratified partition 202 and a sealing plate 203 arranged inside the heat storage tank 201, a third driving assembly 204 arranged on the stratified partition 202, a second synchronization assembly 205 arranged on the stratified partition 202 and the third driving assembly 204, a translation assembly 206 arranged on the sealing plate 203 and the third driving assembly 204, a stabilizing assembly 207 arranged on the insulation shell 102 and the heat storage tank 201, and a mixing assembly 208 arranged on the stratified partition 202 and the sealing plate 203.

[0040] Among them, the first driving component 103 and the first rotating component 104 are arranged below the insulation shell 102, and the insulation shell 102 is supported on the first rotating component 104. The first driving component 103 and the first rotating component 104 are both arranged as a left and right pair, and are respectively installed at both ends of the insulation shell 102. The heat storage tank 201 is installed inside the insulation shell 102. The interior of the heat storage tank 201 is divided into two layers of space and separated by a layered partition 202. The second synchronization component 205 and the translation component 206 are arranged as left and right sets.

[0041] When in use, the heat storage tank 201 is placed inside the insulation shell 102, so that the insulation shell 102 can exert its insulation performance and ensure that the heat in the heat storage tank 201 is effectively locked. The upper and lower water storage spaces of the heat storage tank 201 are equipped with water inlets and outlets for filling and extracting hot water. These water inlets and outlets become insulation difficulties in traditional insulation designs, and are prone to forming leaking hot spots, thereby affecting the overall insulation effect. Through the synergistic effect of the first driving component 103 and the first rotating component 104, not only can the insulation shell 102 be driven to rotate, but the water inlets and outlets can also be effectively dynamically protected, thereby improving the overall insulation performance of the heat storage tank 201. In addition, a double set of first driving components 103 and first rotating components 104 are designed, and they are respectively installed at both ends of the heat preservation shell 102, and the synchronization regulation of the first synchronization component 105 ensures that the two sets of components can synchronously and accurately drive the heat preservation shell 102 to rotate, effectively avoiding the occurrence of jamming. In addition, the interior of the heat storage tank 201 is divided into two layers of water storage space by a layered partition 202. In daily use, the mixing component 208 allows a certain gap to be maintained between the layered partition 202 and the sealing plate 203, so that the two layers of water storage space can be combined. And, when it is necessary to stratify the interior of the heat storage tank 201, the third driving component 204 is started and drives the second synchronization component 205 to operate. This action drives the sealing plate 203 on the translation component 206 to move until it tightly blocks the multiple guide holes 208a on the mixing component 208, so that the hot water between the stratified partitions 202 no longer flows, thereby forming two smaller water storage spaces, realizing the stratification of the water storage space inside the heat storage tank 201. The two layers of water storage space can store hot water of different time periods or temperatures respectively, which is convenient for the staff to use according to actual needs.

[0042] Example 2, reference Figure 1 to Figure 5 , which is the second embodiment of the present invention. This embodiment is different from the first embodiment in that: the first driving assembly 103 includes a first motor 103a arranged below the insulation shell 102, and a first driving rod 103b arranged on the first motor 103a; wherein, the first driving rod 103b is set in three pieces and is rotatably connected to the inside of the supporting base 104a, and the three first driving rods 103b are respectively installed on the driving gear 104b, the synchronous gear 105a and the driven gear 105b, and the output end of the first motor 103a is connected to the first driving rod 103b on the driving gear 104b.

[0043] Furthermore, the first rotating assembly 104 includes a supporting base 104a arranged on the first motor 103a, a driving gear 104b arranged in the supporting base 104a, and a driving gear ring 104c arranged on the insulation shell 102; wherein, the first motor 103a is installed on the outside of the supporting base 104a, the driving gear ring 104c surrounds the outside of the heat storage tank 201, and is meshed and connected with the driving gear 104b and the driven gear 105b at the same time.

[0044] Furthermore, the first synchronization component 105 includes a synchronization gear 105a and a driven gear 105b arranged inside the supporting base 104a, and a first synchronization rod 105c arranged on the synchronization gear 105a; wherein, the first synchronization rod 105c is arranged on the side away from the first motor 103a, and both ends are simultaneously connected to the synchronization gears 105a on both sides, and the two ends of the synchronization gear 105a are respectively meshed and connected with the driving gear 104b and the driven gear 105b.

[0045] Furthermore, the second driving assembly 106 includes a second motor 106a arranged on the rotating support 101, and a second driving rod 106b arranged on the rotating support 101 and the second motor 106a; wherein the second motor 106a is installed on the side of the rotating support 101 away from the insulation shell 102, the second driving rod 106b is connected to the output end of the second motor 106a, the second driving rod 106b is fixedly connected to the heat storage tank 201, and the insulation shell 102 is rotatably connected to the rotating support 101.

[0046] When in use, the first drive rod 103b starts to rotate through the drive of the first motor 103a, thereby driving the drive gear 104b to rotate synchronously. A meshing connection system is formed between the drive gear 104b, the synchronous gear 105a and the driven gear 105b. Since the sizes of the drive gear 104b and the driven gear 105b are exactly the same, synchronous rotation is achieved through the transfer effect of the synchronous gear 105a. In addition, the two synchronous gears 105a are closely connected by the first synchronous rod 105c, ensuring that the drive gears 104b and the driven gear 105b on both sides can rotate in unison, thereby efficiently and stably driving the upper insulation shell 102 to rotate. At the same time, the second motor 106a drives the heat storage tank 201 to rotate through the transmission of the second drive rod 106b. This design realizes the position interchange of the upper and lower water storage spaces of the heat storage tank 201, which greatly facilitates the staff to fill or extract hot water. More advanced is that when it is necessary to merge the layers, the mixing assembly 208 is turned on so that the upper and lower water storage spaces can be connected for use.

[0047] The remaining structures are the same as those of Example 1.

[0048] Example 3, reference Figure 6 to Figure 12, which is the third embodiment of the present invention. This embodiment is different from the second embodiment in that: the third driving component 204 includes a waterproof motor 204a arranged on the layered partition 202; wherein the waterproof motor 204a is installed on the layered partition 202, and the waterproof motor 204a is connected to the second synchronization rod 205a.

[0049] Furthermore, the second synchronization component 205 includes a second synchronization rod 205a arranged on the waterproof motor 204a, a driving bevel gear 205b arranged on the second synchronization rod 205a, a rotating shaft 205d arranged on the layered partition 202, and a driven bevel gear 205c arranged on the rotating shaft 205d; wherein, two driving bevel gears 205b are arranged, and are respectively arranged at both ends of the second synchronization rod 205a, the two driving bevel gears 205b are respectively meshed and connected with the corresponding two driven bevel gears 205c, and the two driving bevel gears 205b are arranged in a mirror image, and the two rotating shafts 205d are rotatably connected to the two ends of the layered partition 202, one end of the second synchronization rod 205a is connected to the waterproof motor 204a, and the other end is rotatably connected to the layered partition 202.

[0050] Furthermore, the translation assembly 206 includes a translation gear 206a arranged on the rotating shaft 205d, and a spur rack 206b arranged on the sealing plate 203; wherein, one end of the rotating shaft 205d is connected to the driven bevel gear 205c, and the other end is connected to the translation gear 206a, and the translation gear 206a and the spur racks 206b on both sides of the sealing plate 203 are meshingly connected.

[0051] Furthermore, the stabilizing component 207 includes a roller groove 207a arranged on the insulation shell 102, a roller 207b arranged on the heat storage tank 201, a slider 207c arranged on the layered partition 202, and a slide groove 207d arranged on the sealing plate 203; wherein, multiple roller grooves 207a are arranged in parallel at both ends of the inner side of the insulation shell 102 and the driving gear ring 104c, and multiple rollers 207b are correspondingly installed on the outer side of the heat storage tank 201, and the roller 207b is slidably connected in the roller groove 207a, and multiple sliders 207c are arranged on the side of the layered partition 202 close to the sealing plate 203, and multiple slide grooves 207d are correspondingly opened on the side of the sealing plate 203 close to the layered partition 202, and the sliders 207c are slidably connected in the corresponding slide grooves 207d.

[0052] Furthermore, the mixing assembly 208 includes guide holes 208a arranged on the layered partition 202 and guide grooves 208b arranged on the sealing plate 203; wherein, a plurality of rows of guide holes 208a are opened on the layered partition 202, and a plurality of guide grooves 208b are correspondingly opened on the sealing plate 203, and the sealing plate interval in the middle of each guide groove 208b is larger than the guide holes 208a in each row.

[0053] When in use, the waterproof motor 204a drives the second synchronization rod 205a to rotate, thereby leading the driving bevel gears 205b at both ends to achieve synchronous rotation. The two driving bevel gears 205b are each tightly meshed with the corresponding driven bevel gear 205c. The driven bevel gear 205c is coaxially connected to the translation gear 206a through the rotating shaft 205d, forming an integrated transmission system. It is worth noting that the two driving bevel gears 205b are arranged in a mirrored manner to ensure that the waterproof motor 204a can drive the translation gears 206a on both sides to rotate in the same direction. The spur rack 206b meshing therewith is further driven, thereby achieving the smooth movement of the sealing plate 203. When the sealing plate 203 seals the position to the position of the diversion hole 208a, the diversion hole 208a is blocked, and the inside of the heat storage tank 201 is divided into two independent spaces, realizing the stratification of the water storage space inside the heat storage tank 201. The two layers of water storage space can store hot water of different time periods or temperatures respectively, which is convenient for the staff to use according to actual use needs. In addition, when the guide groove 208b overlaps with the guide hole 208a, the hot water between the two water storage spaces can flow freely, which greatly facilitates heat exchange and can be combined and used in layers. In addition, the design of the roller groove 207a and the roller 207b improves the freedom of rotation of the heat storage tank 201 and the insulation shell 102, ensuring that they do not interfere with each other during the rotation process, and also greatly enhances the stability of the rotational motion. The precise matching of the slider 207c and the slide groove 207d adds additional stability to the movement of the sealing plate 203, ensuring its accurate and stable movement.

[0054] The remaining structure is the same as that of Example 2.

[0055] Importantly, it should be noted that the construction and arrangement of the present application shown in a plurality of different exemplary embodiments are only exemplary. Although only a few embodiments are described in detail in this disclosure, it should be readily understood by those who refer to this disclosure that many modifications are possible (e.g., the size, scale, structure, shape and proportion of various elements, and parameter values ​​(e.g., temperature, pressure, etc.), installation arrangement, use of materials, color, directional changes, etc.) without substantially departing from the novel teachings and advantages of the subject matter described in the application. For example, the element shown as integrally formed can be composed of multiple parts or elements, the position of the element can be inverted or otherwise changed, and the nature or number or position of the discrete element can be changed or changed. Therefore, all such modifications are intended to be included in the scope of the present invention. The order or sequence of any process or method steps can be changed or reordered according to alternative embodiments. In the claims, any "device plus function" clause is intended to cover the structure of performing the function described herein, and is not only structurally equivalent but also equivalent structure. Without departing from the scope of the present invention, other replacements, modifications, changes and omissions can be made in the design, operating conditions and arrangement of the exemplary embodiments. Therefore, the invention is not limited to a specific embodiment, but extends to several modifications still falling within the scope of the appended claims.

[0056] Additionally, in order to provide a concise description of exemplary embodiments, all features of an actual embodiment (ie, those features that are not relevant to the best mode presently contemplated for carrying out the invention or those that are not relevant to implementing the invention) may not be described.

[0057] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention rather than to limit it. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.

Claims

1. A heat storage tank for thermoelectric decoupling transformation, characterized by: include, The rotating mechanism (100) comprises a rotating support (101), a heat-insulating shell (102) arranged on the rotating support (101), a first driving assembly (103) arranged at the bottom of the heat-insulating shell (102), a first rotating assembly (104) arranged on the heat-insulating shell (102) and the first driving assembly (103), a first synchronizing assembly (105) arranged on the first driving assembly (103) and the first rotating assembly (104), and a second driving assembly (106) arranged on the rotating support (101); The regulating mechanism (200) comprises a heat storage tank (201) arranged on the second driving assembly (106), a layered partition (202) and a sealing plate (203) arranged inside the heat storage tank (201), a third driving assembly (204) arranged on the layered partition (202), a second synchronization assembly (205) arranged on the layered partition (202) and the third driving assembly (204), a translation assembly (206) arranged on the sealing plate (203) and the third driving assembly (204), a stabilizing assembly (207) arranged on the heat-insulating shell (102) and the heat storage tank (201), and a mixing assembly (208) arranged on the layered partition (202) and the sealing plate (203).

2. The heat storage tank for thermoelectric decoupling transformation according to claim 1 is characterized in that: The first driving assembly (103) comprises a first motor (103a) arranged below the heat-insulating shell (102) and a first driving rod (103b) arranged on the first motor (103a).

3. The heat storage tank for thermoelectric decoupling transformation according to claim 2 is characterized in that: The first rotating assembly (104) comprises a supporting base (104a) arranged on the first motor (103a), a driving gear (104b) arranged in the supporting base (104a), and a driving gear ring (104c) arranged on the heat-insulating shell (102).

4. The heat storage tank for thermoelectric decoupling transformation according to claim 3 is characterized in that: The first synchronization component (105) comprises a synchronization gear (105a) and a driven gear (105b) arranged inside the supporting base (104a), and a first synchronization rod (105c) arranged on the synchronization gear (105a).

5. The heat storage tank for thermoelectric decoupling transformation according to claim 4 is characterized in that: The second driving assembly (106) comprises a second motor (106a) arranged on the rotating support (101), and a second driving rod (106b) arranged on the rotating support (101) and the second motor (106a).

6. The heat storage tank for thermoelectric decoupling transformation according to claim 5 is characterized in that: The third driving assembly (204) comprises a waterproof motor (204a) disposed on the layered partition (202).

7. The heat storage tank for thermoelectric decoupling transformation according to claim 6 is characterized in that: The second synchronization component (205) comprises a second synchronization rod (205a) arranged on the waterproof motor (204a), a driving bevel gear (205b) arranged on the second synchronization rod (205a), a rotating shaft (205d) arranged on the layered partition (202), and a driven bevel gear (205c) arranged on the rotating shaft (205d).

8. The heat storage tank for thermoelectric decoupling transformation according to claim 7 is characterized in that: The translation assembly (206) comprises a translation gear (206a) arranged on the rotating shaft (205d) and a spur rack (206b) arranged on the sealing plate (203).

9. The heat storage tank for thermoelectric decoupling transformation according to claim 8, characterized in that: The stabilizing component (207) comprises a roller groove (207a) arranged on the heat-insulating shell (102), a roller (207b) arranged on the heat storage tank (201), a slider (207c) arranged on the layered partition (202), and a slide groove (207d) arranged on the sealing plate (203).

10. The heat storage tank for thermoelectric decoupling transformation according to claim 9, characterized in that: The mixing assembly (208) comprises a guide hole (208a) arranged on the layered partition plate (202) and a guide groove (208b) arranged on the sealing plate (203).

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