Steam and fused salt coupled heat storage and release peak shaving system

Through the steam and molten salt coupled heat transfer peak regulating system, the complexity and inefficiency of the molten salt heat transfer peak regulating technology of coal-fired power stations is solved, deep peak regulating and flexible adjustment are achieved, and the peak regulating capacity and power conversion efficiency of the power station are improved.

CN223227410UActive Publication Date: 2025-08-15HARBIN ELECTRIC POWER GENERATION EQUIP NAT ENG RES CENT CO LTD
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Patent Information

Application Number
CN202423104367.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-17
Publication Date
2025-08-15
Estimated Expiration
2034-12-17

AI Technical Summary

Technical Problem

The existing coal-fired power station molten salt heat storage peak shaving technology has complex process, high engineering cost, high implementation difficulty, low system electricity-electric conversion efficiency, and difficult to achieve deep peak shaving and flexible adjustment.

Method used

The steam and molten salt coupled heat-expressing peak regulating system is adopted, and the heat-expressing peak regulating system is achieved through the coupling design of boiler equipment, heat-expressing heat exchange system, heat-expressing heat exchange system and steam turbine equipment, deep peak regulating of coal-fired power stations is achieved, and the main steam is used to store heat sensible and latent heat, and the heat storage capacity is improved through electrical heating.

Benefits of technology

The 5%-15% deep peak regulating capacity of coal-fired power stations has been improved, the peak regulating rate has been increased by 2.67% Pe/min, and the electricity-electric conversion efficiency has reached 50.55%-69.66%, adapting to the 1.5~8.0MPa pressure changes and ≤50t/h steam supply flow changes.

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Abstract

The utility model discloses a steam and fused salt coupled heat storage and release peak shaving system. The existing steam sensible heat molten salt heating or pure electric molten salt heating technology has the problems of complex technical process, high construction cost, high implementation difficulty, low system electricity-electricity conversion efficiency and the like. The system comprises a fused salt storage system, a heat storage and exchange system, a heat release and exchange system, boiler equipment and steam turbine equipment, an outlet of the boiler equipment is connected with the steam turbine equipment and the heat storage and exchange system, the fused salt storage system is connected with the heat storage and exchange system and the heat release and exchange system, and the heat release and exchange system is connected with the steam turbine equipment. According to the utility model, the'machine-boiler decoupling 'and the electric heat storage peak regulation of the traditional thermal power plant can be realized. In the heat storage process, latent heat and sensible heat energy of main steam are stored in a fused salt storage system through a heat storage and exchange system, and deep peak regulation and energy storage are achieved; and in the heat release process, heat in the fused salt storage system is released through the heat release heat exchange system, and steam is prepared and supplemented into steam turbine equipment so as to improve the power generation power.
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Description

Technical Field

[0001] The utility model relates to the technical fields of deep peak regulation, auxiliary services, energy storage, etc. of coal-fired power plants, and specifically to a steam and molten salt coupled heat storage and release peak regulation system. Background Art

[0002] With the large-scale entry of new energy power generation into the grid, the power system faces severe challenges in efficiently absorbing new energy and ensuring safe and stable operation due to the volatility and randomness of new energy resources such as wind and light, and the weak anti-interference and low support of power generation equipment. There is an urgent need for a high proportion of flexible power sources and energy storage capacity to improve the power structure and ensure the safety of the power grid.

[0003] The deep peak-shaving transformation technology for the main equipment of coal-fired power plants has become mature and has basically achieved 30%Pe peak-shaving operation. However, due to the differences in the peak-shaving capacity limits of main equipment such as boilers and steam turbines, the actual peak-shaving capacity of coal-fired power plants has not been fully released.

[0004] Molten salt thermal storage and peak-shaving technology is a feasible technical direction for improving the deep peak-shaving capacity of coal-fired power plants and possessing energy storage properties. However, the existing steam sensible heat heating of molten salt or pure electric heating of molten salt technology has problems such as complex process, high engineering cost, difficult implementation, and low system electricity-to-electricity conversion efficiency. Utility Model Content

[0005] The purpose of the utility model is to solve the problems of the existing coal-fired power plant molten salt heat storage and peak-shaving technology system solution, such as complex process, high engineering cost, great implementation difficulty, and low system electricity-to-electricity conversion efficiency. A steam and molten salt coupled heat storage and release peak-shaving system is provided, which can realize the deep coupling of the coal-fired power plant steam system and the steam and molten salt coupled heat storage and release peak-shaving system, and improve the deep peak-shaving capability and peak-shaving rate of the coal-fired power plant based on high-power and high-temperature heat storage.

[0006] The above purpose is achieved through the following technical solutions:

[0007] A steam and molten salt coupled heat storage and release peak shaving system comprises: a molten salt storage system, a heat storage and heat exchange system, a heat release and heat exchange system, a boiler device, and a steam turbine device. The main steam at the outlet of the boiler device is divided into two paths, one of which is connected to the steam turbine device and enters the steam turbine device for expansion and work.

[0008] The other path is connected to the heat storage and heat exchange system. The water side of the heat storage and heat exchange system is connected to the turbine condensate pipeline. The heat released by the heat storage and heat exchange system heats the molten salt and part of the feed water and then enters the condensate pipeline.

[0009] The heat storage and heat exchange system is connected to the molten salt storage system and is used to heat and store the low-temperature molten salt of the molten salt storage system;

[0010] The condensate pipeline is connected to the heat release heat exchange system, and the heat release heat exchange system is connected to an extraction pipeline between the high-pressure cylinder of the steam turbine and the check valve of the No. 1 high-pressure steam extraction pipeline, which is used to heat the condensate to prepare steam to enter the steam turbine equipment for expansion and work.

[0011] The heat release and heat exchange system is connected to the molten salt storage system and is used to release heat and store the high-temperature molten salt in the molten salt storage system.

[0012] The described steam and molten salt coupled heat storage and release peak-shaving system, the described heat storage and heat exchange system includes a main steam-molten salt heater, a condenser and a water-molten salt heater, the outlet main steam pipeline of the described boiler equipment enters the main steam-molten salt heater after passing through the main steam extraction pipeline stop valve and the main steam extraction pipeline check valve, the described main steam-molten salt heater is connected to the condenser, the described condenser is connected to the water-molten salt heater, the described water-molten salt heater is connected to the water-water heat exchanger, and the outlet of the described water-water heat exchanger is connected to the condensate pipeline.

[0013] The steam and molten salt coupled heat storage and release peak regulation system is described, in which the condensate pipe extracts part of the feed water from the feed water pump outlet, enters the water-water heat exchanger through the feed water heating bypass pipe, absorbs the heat of the main steam condensate, and then returns to the feed water pipe between the No. 1 high-pressure heater and the boiler.

[0014] The steam and molten salt coupled heat storage and release peak shaving system, the molten salt storage system includes a low-temperature molten salt storage tank and a molten salt electric heater;

[0015] The low-temperature molten salt storage tank is pumped out with a low-temperature molten salt pump and is divided into two paths after passing through the low-temperature molten salt storage tank outlet stop valve. One path is connected to the water-molten salt heater, enters the water-molten salt heater to absorb the heat of the main steam condensate and becomes medium-temperature molten salt, then enters the condenser to absorb the latent heat released by the main steam and becomes medium-high temperature molten salt, then enters the main steam-molten salt heater to absorb the sensible heat released by the main steam and becomes high-temperature molten salt, and then enters the high-temperature molten salt storage tank through the high-temperature molten salt storage tank inlet stop valve for storage.

[0016] The described steam and molten salt coupled heat storage and release peak-shaving system, the low-temperature molten salt storage tank is pumped out with a low-temperature molten salt pump and is divided into two paths after passing through the low-temperature molten salt storage tank outlet stop valve, the other path is connected to the molten salt electric heater, the low-temperature molten salt enters the molten salt electric heater through the molten salt electric heating bypass flow regulating valve, and after becoming high-temperature molten salt, enters the high-temperature molten salt storage tank through the high-temperature molten salt storage tank inlet stop valve for storage.

[0017] The described steam and molten salt coupled heat storage and release peak-shaving system, the described heat release and heat exchange system includes a superheater, an evaporator, a preheater and a molten salt-feedwater heater, the described high-temperature molten salt storage tank is connected with the superheater, and the high-temperature molten salt is extracted from the high-temperature molten salt storage tank by a high-temperature molten salt pump and enters the superheater through the high-temperature molten salt storage tank outlet stop valve, the described superheater is connected with the evaporator, after releasing heat through the superheater, it enters the evaporator to heat saturated water to generate steam to become medium-temperature molten salt, and then enters the preheater to heat supercooled water to become sub-medium-temperature molten salt, and then enters the molten salt-feedwater heater to heat constant temperature feedwater to become low-temperature molten salt, and enters the low-temperature molten salt storage tank through the low-temperature molten salt storage tank inlet stop valve for storage.

[0018] The steam and molten salt coupled heat storage and release peak-shaving system, the feed water pump outlet pipeline is connected to the feed water pump outlet mixed water pipeline, part of the feed water extracted by the feed water pump passes through the feed water pump outlet mixed water bypass stop valve and is mixed with part of the feed water extracted from the No. 2 high-pressure heater outlet after passing through the No. 2 high-pressure heater outlet mixed water bypass stop valve and the No. 2 high-pressure heater outlet mixed water bypass regulating valve, the mixed constant temperature feed water enters the molten salt-feed water heater all the way and is heated by the sub-medium temperature molten salt, and then returns to the feed water pipeline between the No. 1 high-pressure heater and the boiler through the molten salt-feed water heater outlet stop valve.

[0019] The steam and molten salt coupled heat storage and release peak regulation system is described. The mixed constant temperature feed water enters the preheater after passing through the steam generation system inlet regulating valve to absorb the heat of medium-temperature molten salt and become saturated water, then enters the evaporator to absorb the heat of medium- and high-temperature molten salt to become saturated steam, and then enters the superheater to absorb the heat of high-temperature molten salt to become superheated steam, and then passes through the steam supply pipeline stop valve, the steam supply pipeline check valve, and the steam supply pipeline regulating valve in sequence to enter the first extraction pipeline between the high-pressure cylinder of the steam turbine and the check valve of the No. 1 high-pressure steam extraction pipeline.

[0020] The steam and molten salt coupled heat storage and release peak regulation system, the boiler equipment is a boiler.

[0021] The steam and molten salt coupled heat storage and release peak-shaving system, the steam turbine equipment includes a steam turbine high-pressure cylinder, a steam turbine intermediate-pressure cylinder, a steam turbine high-pressure regulating valve, a deaerator, a feed water pump, No. 3 high-pressure heater, No. 2 high-pressure heater, No. 1 high-pressure heater, and a check valve for the steam extraction pipeline of No. 1 high-pressure heater. Beneficial effects

[0022] 1. This utility model adopts a dual-path heating design, which performs flexible steam "sensible heat + latent heat" heat storage and electric heating heat storage through the configuration of different main steam extraction volumes and electric heating powers, and can achieve a deep peak-shaving capacity improvement of 5% to 15%Pe in coal-fired power plants, of which the peak-shaving capacity that can be improved by single main steam extraction is 6.28%Pe.

[0023] 2. The heat exchanger of the heat storage and heat exchange system of this utility model can maintain a minimum load operating state of 15% under rated parameters and can reach full load operating state within 2 minutes. Through the main steam extraction heat storage, the peak regulation rate (load reduction) of a single equipment can be increased by 2.67%Pe / min.

[0024] 3. The heat release heat exchange system of the present invention adopts the steam supplement design of the steam turbine thermal system. By supplementing a fixed amount of steam, it can provide a fixed capacity support of 3.85% to 5.96%Pe in different operating load ranges of the steam turbine.

[0025] 4. The heat exchanger of the heat release heat exchange system of this utility model can maintain a minimum load operation state of 15% under rated parameters and can reach full load operation state within 2 minutes. Through steam supplementation in the turbine thermal system, the peak regulation rate (load increase) of a single equipment can be increased by 1.64%Pe / min.

[0026] 5. The utility model achieves a relatively high electricity-to-electricity conversion efficiency, that is, the ratio of the additional power generation generated by the steam added to the system during the heat release process to the power generation lost due to main steam extraction and electric heating during the heat storage process. In the peak regulation capacity range of 5% to 15% Pe, the electricity-to-electricity conversion efficiency can reach 50.55% to 69.66%.

[0027] 6. The exothermic heat exchange system of the present invention is used for steam preparation, and the steam pressure is adjustable, which can adapt to the pressure variation range of 1.5~8.0MPa and the steam supply flow rate variation of ≤50t / h. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 It is a schematic diagram of the utility model;

[0029] Figure 1-1, low-temperature molten salt storage tank; 1-2, high-temperature molten salt storage tank; 1-3, low-temperature molten salt pump; 1-4, low-temperature molten salt storage tank outlet stop valve; 1-5, low-temperature molten salt storage tank inlet stop valve; 1-6, high-temperature molten salt storage tank inlet stop valve; 1-7, high-temperature molten salt pump; 1-8, high-temperature molten salt storage tank outlet stop valve; 1-9, molten salt electric heating bypass flow control valve; 1-10, molten salt electric heater; 2-1, main steam-molten salt heater; 2-2, condenser ; 2-3, water-molten salt heater; 2-4, water-water heat exchanger; 2-5, main steam extraction pipeline stop valve; 2-6, main steam extraction pipeline check valve; 2-7, main steam drain pipeline stop valve; 2-8, main steam drain pipeline regulating valve; 2-9, feedwater heating bypass stop valve; 2-10, feedwater heating bypass regulating valve; 2-11, feedwater heating bypass heater outlet stop valve; 2-12, main steam drain pipeline; 2-13, feedwater heating bypass pipeline 3-1, Superheater; 3-2, Evaporator; 3-3, Preheater; 3-4, Molten Salt-Feedwater Heater; 3-5, Steam Supply Pipeline Stop Valve; 3-6, Steam Supply Pipeline Check Valve; 3-7, Steam Supply Pipeline Regulating Valve; 3-8, Feedwater Pump Outlet Mixed Water Bypass Stop Valve; 3-9, No. 2 High-Pressure Heater Outlet Mixed Water Bypass Stop Valve; 3-10, No. 2 High-Pressure Heater Outlet Mixed Water Bypass Regulating Valve; 3-11, Steam Generation System Inlet Regulating Valve; 3-12, Molten Salt-Feedwater Heater Outlet 1. Stop valve; 3-13. Feedwater pump outlet mixed water pipe; 3-14. No. 2 HP heater outlet mixed water bypass pipe; 4. Boiler; 5-1. Turbine high-pressure cylinder; 5-2. Turbine intermediate-pressure cylinder; 5-3. Turbine high-pressure regulating valve; 5-4. Deaerator; 5-5. Feedwater pump; 5-6. No. 3 HP heater; 5-7. No. 2 HP heater; 5-8. No. 1 HP heater; 5-9. No. 1 HP heater extraction pipe check valve; 5-10. Primary extraction pipe; 6. Feedwater pipe; 7. Condensate pipe. DETAILED DESCRIPTION

[0030] Reference Figure 1 A steam and molten salt coupled heat storage and release peak shaving system, comprising: a molten salt storage system, a heat storage and heat exchange system, a heat release and heat exchange system, a boiler device 4 and a steam turbine device. The main steam at the outlet of the boiler device is divided into two paths, one of which is connected to the steam turbine device and enters the steam turbine device for expansion and work.

[0031] The main steam at the outlet of boiler 4 is divided into two paths. One path of steam enters the high-pressure cylinder 5-1 of the steam turbine through the high-pressure regulating valve 5-3 of the steam turbine to expand and do work. Part of the steam is extracted and enters the first extraction pipe 5-10. After passing through the check valve 5-9 of the No. 1 high-pressure heater extraction pipe, it enters the No. 1 high-pressure heater 5-8. The remaining steam is discharged from the high-pressure cylinder 5-1 of the steam turbine, and part of the steam is extracted and enters the No. 2 high-pressure heater 5-7 through the second extraction pipe. The remaining steam enters the boiler 4 for reheating and then enters the turbine intermediate-pressure cylinder 5-2. After expanding and doing work, part of the steam is extracted and enters the No. 3 high-pressure heater 5-6 through the third extraction pipe. The remaining steam continues to expand and do work, and part of the steam is extracted and enters the deaerator 5-4 through the fourth extraction pipe.

[0032] The other steam path is connected to the heat storage and heat exchange system, which is connected to the condensate pipe 7. The heat storage and heat exchange system releases heat to heat the molten salt and part of the feed water and then enters the condensate pipe 7.

[0033] The heat storage and heat exchange system is connected to the molten salt storage system and is used to heat and store the low-temperature molten salt of the heat storage and heat exchange system;

[0034] The condensate pipe 7 is connected to the heat release heat exchange system, which is connected to the first extraction pipe 5-10 between the high-pressure cylinder 5-1 of the steam turbine and the check valve 5-9 of the No. 1 high-pressure heater extraction pipe, and is used to heat the condensate to prepare steam to enter the steam turbine equipment for expansion and work;

[0035] The heat storage and heat exchange system includes a main steam-molten salt heater 2-1, a condenser 2-2 and a water-molten salt heater 2-3. The outlet main steam pipeline of the boiler equipment enters the main steam-molten salt heater 2-1 after passing through the main steam extraction pipeline stop valve 2-5 and the main steam extraction pipeline check valve 2-6 to release sensible heat to heat the high-temperature molten salt, and then enters the condenser 2-2 to release latent heat to heat the medium-temperature molten salt. After condensing into water, it enters the water-molten salt heater 2-3 to release heat to heat the low-temperature molten salt, and then enters the water-water heat exchanger 2-4 to release heat to heat part of the feed water, and then passes through the main steam drain pipeline stop valve 2-7 and the main steam drain pipeline regulating valve 2-8 to replenish the condensate pipeline 7 before the deaerator 5-4;

[0036] The condensate pipe 7 extracts part of the feed water from the outlet of the feed water pump 5-5, enters the water-water heat exchanger 2-4 through the feed water heating bypass pipe 2-13 to absorb the heat of the main steam drainage, and then returns to the feed water pipe 6 between the No. 1 high-pressure heater 5-8 and the boiler 4.

[0037] The molten salt storage system includes a low-temperature molten salt storage tank 1-1, a high-temperature molten salt storage tank 1-2 and a molten salt electric heater 1-10.

[0038] The low-temperature molten salt storage tank 1-1 extracts low-temperature molten salt through the low-temperature molten salt pump 1-3 and is divided into two paths after passing through the low-temperature molten salt storage tank outlet stop valve 1-4. One path is connected to the water-molten salt heater 2-3, enters the water-molten salt heater 2-3 to absorb the heat of the main steam condensate water and becomes medium-temperature molten salt, and then enters the condenser 2-2 to absorb the latent heat released by the main steam to become medium-high temperature molten salt, and then enters the main steam-molten salt heater 2-1 to absorb the sensible heat released by the main steam to become high-temperature molten salt, and then enters the high-temperature molten salt storage tank 1-2 for storage through the high-temperature molten salt storage tank inlet stop valve 1-6.

[0039] The low-temperature molten salt storage tank 1-1 extracts low-temperature molten salt through the low-temperature molten salt pump 1-3 and is divided into two paths after passing through the low-temperature molten salt storage tank outlet stop valve 1-4. The other path is connected to the molten salt electric heater 1-10. The low-temperature molten salt enters the molten salt electric heater 1-10 through the molten salt electric heating bypass flow regulating valve 1-9, and after becoming high-temperature molten salt, it enters the high-temperature molten salt storage tank 1-2 for storage through the high-temperature molten salt storage tank inlet stop valve 1-6.

[0040] The exothermic heat exchange system includes a superheater 3-1, an evaporator 3-2, a preheater 3-3 and a molten salt-feedwater heater 3-4. The high-temperature molten salt storage tank 1-2 is connected to the superheater 3-1. The high-temperature molten salt extracted from the high-temperature molten salt storage tank 1-2 by the high-temperature molten salt pump 1-7 enters the superheater 3-1 through the high-temperature molten salt storage tank outlet stop valve 1-8 to heat steam and become medium-high temperature molten salt. After releasing heat through the superheater 3-1, it enters the evaporator 3-2 to heat saturated water to generate steam and become medium-temperature molten salt. Then it enters the preheater 3-3 to heat supercooled water and become sub-medium-temperature molten salt. Finally, it enters the molten salt-feedwater heater 3-4 to heat constant temperature feed water and become low-temperature molten salt. It enters the low-temperature molten salt storage tank 1-1 for storage through the low-temperature molten salt storage tank inlet stop valve 1-5.

[0041] The outlet pipeline of the feed water pump 5-5 is connected with the feed water pump outlet mixed water pipeline 3-13. Part of the feed water drawn out by the feed water pump 5-5 passes through the feed water pump outlet mixed water bypass stop valve 3-8 and is mixed with part of the feed water drawn out from the outlet of No. 2 high pressure heater 5-7 after passing through the No. 2 high pressure heater outlet mixed water bypass stop valve 3-9 and the No. 2 high pressure heater outlet mixed water bypass regulating valve 3-10. The mixed constant temperature feed water enters the molten salt-feed water heater 3-4 and is heated by the sub-medium temperature molten salt, and then returns to the feed water pipeline 6 between No. 1 high pressure heater 5-8 and boiler 4 through the molten salt-feed water heater outlet stop valve 3-12.

[0042] The mixed constant temperature feed water passes through the steam generation system inlet regulating valve 3-11 and then enters the preheater 3-3 to absorb the heat of the medium-temperature molten salt and become saturated water. The water then enters the evaporator 3-2 to absorb the heat of the medium- and high-temperature molten salt and become saturated steam. The water then enters the superheater 3-1 to absorb the heat of the high-temperature molten salt and become superheated steam. The water then passes through the steam supply line stop valve 3-5, the steam supply line check valve 3-6, and the steam supply line regulating valve 3-7 in sequence and then enters the first extraction pipeline 5-10 between the turbine high-pressure cylinder 5-1 and the No. 1 high-pressure heater extraction pipeline check valve 5-9.

[0043] The steam and molten salt coupled heat storage and release peak-shaving system proposed in the utility model can transform the original traditional coal-fired power plant into an ultra-flexible peak-shaving power plant with energy storage properties by adding a molten salt storage system, a heat storage and heat exchange system, and a heat release and heat exchange system.

[0044] The boiler equipment is a boiler 4 .

[0045] The steam turbine equipment includes a steam turbine high-pressure cylinder 5-1, a steam turbine intermediate-pressure cylinder 5-2, a steam turbine high-pressure regulating valve 5-3, a deaerator 5-4, a feed water pump 5-5, a No. 3 high-pressure heater 5-6, a No. 2 high-pressure heater 5-7, a No. 1 high-pressure heater 5-8, a No. 1 high-pressure heater extraction pipe check valve 5-9, and a first extraction pipe 5-10.

[0046] A peak-shaving method for a steam and molten salt coupled heat storage and release peak-shaving system, the method comprising the following steps:

[0047] The turbine high-pressure regulating valve 5-3 and the No. 1 high-pressure steam extraction pipe check valve 5-9 are always kept open.

[0048] During the heat storage process, the main steam extraction pipeline stop valve 2-5 is opened, the main steam extraction pipeline check valve 2-6 is opened, the main steam drain pipeline stop valve 2-7 is opened, the main steam drain pipeline regulating valve 2-8 is opened, the feed water heating bypass stop valve 2-9 is opened, the feed water heating bypass regulating valve 2-10 is opened, the feed water heating bypass heater outlet stop valve 2-11 is opened, the low-temperature molten salt storage tank outlet stop valve 1-4 is opened, the high-temperature molten salt storage tank inlet stop valve 1-6 is opened, the molten salt electric heating bypass flow regulating valve 1-9 is opened, and the other valves are in the closed state.

[0049] During the heat storage process, the main steam-molten salt heater 2-1, condenser 2-2, and water-molten salt heater 2-3 operate from a minimum steady-state load to full load. The low-temperature molten salt pump 1-3 controls the molten salt flow rate and main steam extraction flow rate in the main steam-molten salt heater 2-1, condenser 2-2, and water-molten salt heater 2-3. The water-water heat exchanger 2-4 operates from a minimum steady-state load to full load, and the feedwater heating bypass regulating valve 2-10 regulates the feedwater outlet temperature of the water-water heat exchanger 2-4 and the main steam condensate outlet temperature. This implementation process stores the sensible heat and latent heat of the main steam.

[0050] During the heat storage process, the molten salt electric heater 1-10 is in a state of operation ranging from the lowest steady-state load to the full load, and the molten salt electric heating bypass flow control valve 1-9 is used to control the power of the molten salt electric heater 1-10. This implementation process stores electrical energy heat.

[0051] During the heat storage process, the low-temperature molten salt in the low-temperature molten salt storage tank 1-1 is heated to become high-temperature molten salt and then enters the high-temperature molten salt storage tank 1-2 for storage.

[0052] During the heat release process, the steam supply line stop valve 3-5 is opened, the steam supply line check valve 3-6 is opened, the steam supply line regulating valve 3-7 is opened, the feedwater pump outlet mixed water bypass stop valve 3-8 is opened, the No. 2 high-pressure heater outlet mixed water bypass stop valve 3-9 is opened, the No. 2 high-pressure heater outlet mixed water bypass regulating valve 3-10 is opened, the steam generation system inlet regulating valve 3-11 is opened, the molten salt-feedwater heater outlet stop valve 3-12 is opened, the low-temperature molten salt storage tank inlet stop valve 1-5 is opened, the high-temperature molten salt storage tank outlet stop valve 1-8 is opened, and the other valves are closed.

[0053] During the heat release process, superheater 3-1, evaporator 3-2, and preheater 3-3 operate from a minimum steady-state load to full load. High-temperature molten salt pump 1-7 controls the molten salt flow rate, steam production, and pressure in superheater 3-1, evaporator 3-2, and preheater 3-3. Steam generation system inlet regulating valve 3-11 controls the liquid level in evaporator 3-2 and the pressure in evaporator 3-3. Molten salt feedwater heater 3-4 operates from a minimum steady-state load to full load. The No. 2 high-pressure heater outlet mixed water bypass regulating valve 3-10 controls the feedwater flow rate and the molten salt temperature at the outlet of molten salt feedwater heater 3-4. The steam supply line regulating valve 3-7 controls the amount of steam added to the primary extraction pipeline. This implementation releases heat from the molten salt.

[0054] During the heat release process, the high-temperature molten salt in the high-temperature molten salt storage tank 1-2 cools down to become low-temperature molten salt and then enters the low-temperature molten salt storage tank 1-1 for storage.

[0055] This utility model achieves "engine-boiler decoupling" and electric heat storage peak regulation in traditional thermal power plants through a steam-molten salt coupled heat storage and release peak regulation system, thereby expanding the peak regulation depth and peak regulation rate of thermal power units. During the heat storage process, the main steam latent heat and sensible heat electricity are stored through molten salt heat exchange, significantly improving the heat storage energy and heat storage quality. During the heat release process, the most direct system steam injection is used to increase the power generation capacity. This utility model uses a steam-molten salt coupled heat storage and release peak regulation system to increase the upper and lower limits of the unit's power generation capacity and the load variation rate during peak and valley periods, and has a high power-to-power conversion efficiency.

Claims

1. A steam and molten salt coupled heat storage and release peak shaving system, comprising: The molten salt storage system, heat storage and heat exchange system, heat release and heat exchange system, boiler equipment and steam turbine equipment are characterized in that: the main steam at the outlet of the boiler equipment is divided into two paths, one of which is connected to the steam turbine equipment and enters the steam turbine equipment for expansion and work; The other path is connected to the heat storage and heat exchange system. The water side of the heat storage and heat exchange system is connected to the turbine condensate pipeline. The heat released by the heat storage and heat exchange system heats the molten salt and part of the feed water and then enters the condensate pipeline. The heat storage and heat exchange system is connected to the molten salt storage system and is used to heat and store the low-temperature molten salt of the molten salt storage system; The condensate pipe is connected to the heat release heat exchange system, which is connected to the first extraction pipe between the high-pressure cylinder of the steam turbine and the check valve of the No. 1 high-pressure steam extraction pipe, and is used to heat the condensate to prepare steam to enter the steam turbine equipment for expansion and work; The heat release and heat exchange system is connected to the molten salt storage system and is used to release heat and store the high-temperature molten salt in the molten salt storage system.

2. The steam and molten salt coupled heat storage and release peak shaving system according to claim 1 is characterized by: The heat storage and heat exchange system includes a main steam-molten salt heater, a condenser and a water-molten salt heater. The outlet main steam pipe of the boiler equipment enters the main steam-molten salt heater after passing through the main steam extraction pipeline stop valve and the main steam extraction pipeline check valve. The main steam-molten salt heater is connected to the condenser, the condenser is connected to the water-molten salt heater, the water-molten salt heater is connected to the water-water heat exchanger, and the outlet of the water-water heat exchanger is connected to the condensate pipeline.

3. The steam and molten salt coupled heat storage and release peak shaving system according to claim 2 is characterized by: The condensate pipe extracts part of the feed water from the feed water pump outlet, enters the water-water heat exchanger through the feed water heating bypass pipe, absorbs the heat of the main steam condensate, and then returns to the feed water pipe between the No. 1 high-pressure heater and the boiler.

4. The steam and molten salt coupled heat storage and release peak shaving system according to claim 3 is characterized by: The molten salt storage system includes a low-temperature molten salt storage tank, a high-temperature molten salt storage tank and a molten salt electric heater; The low-temperature molten salt storage tank is pumped out with a low-temperature molten salt pump and is divided into two paths after passing through the low-temperature molten salt storage tank outlet stop valve. One path is connected to the water-molten salt heater, enters the water-molten salt heater to absorb the heat of the main steam condensate and becomes medium-temperature molten salt, then enters the condenser to absorb the latent heat released by the main steam and becomes medium-high temperature molten salt, then enters the main steam-molten salt heater to absorb the sensible heat released by the main steam and becomes high-temperature molten salt, and then enters the high-temperature molten salt storage tank through the high-temperature molten salt storage tank inlet stop valve for storage.

5. The steam and molten salt coupled heat storage and release peak shaving system according to claim 4 is characterized by: The low-temperature molten salt storage tank is pumped out with a low-temperature molten salt pump and then divided into two paths after passing through the low-temperature molten salt storage tank outlet stop valve. The other path is connected to the molten salt electric heater, and the low-temperature molten salt enters the molten salt electric heater through the molten salt electric heating bypass flow regulating valve. After becoming high-temperature molten salt, it enters the high-temperature molten salt storage tank through the high-temperature molten salt storage tank inlet stop valve for storage.

6. The steam and molten salt coupled heat storage and release peak shaving system according to claim 5 is characterized by: The exothermic heat exchange system includes a superheater, an evaporator, a preheater and a molten salt-feedwater heater. The high-temperature molten salt storage tank is connected to the superheater. The high-temperature molten salt is extracted from the high-temperature molten salt storage tank by a high-temperature molten salt pump and enters the superheater through the high-temperature molten salt storage tank outlet stop valve. The superheater is connected to the evaporator. After releasing heat through the superheater, it enters the evaporator to heat saturated water to generate steam and become medium-temperature molten salt, and then enters the preheater to heat supercooled water to become sub-medium-temperature molten salt, and then enters the molten salt-feedwater heater to heat constant temperature feedwater to become low-temperature molten salt, and then enters the low-temperature molten salt storage tank through the low-temperature molten salt storage tank inlet stop valve for storage.

7. The steam and molten salt coupled heat storage and release peak shaving system according to claim 6 is characterized by: The feed water pump outlet pipeline is connected to the feed water pump outlet mixed water pipeline. Part of the feed water drawn out by the feed water pump passes through the feed water pump outlet mixed water bypass stop valve and is mixed with part of the feed water drawn out from the No. 2 high-pressure heater outlet after passing through the No. 2 high-pressure heater outlet mixed water bypass stop valve and the No. 2 high-pressure heater outlet mixed water bypass regulating valve. The mixed constant temperature feed water enters the molten salt-feed water heater all the way and is heated by the sub-medium temperature molten salt, and then returns to the feed water pipeline between the No. 1 high-pressure heater and the boiler through the molten salt-feed water heater outlet stop valve.

8. The steam and molten salt coupled heat storage and release peak shaving system according to claim 7 is characterized by: The mixed constant temperature feed water passes through the steam generation system inlet regulating valve and then enters the preheater to absorb the heat of medium-temperature molten salt to become saturated water, then enters the evaporator to absorb the heat of medium- and high-temperature molten salt to become saturated steam, then enters the superheater to absorb the heat of high-temperature molten salt to become superheated steam, and then passes through the steam supply pipeline stop valve, steam supply pipeline check valve, steam supply pipeline regulating valve in sequence and enters the first extraction pipeline between the high-pressure cylinder of the steam turbine and the check valve of the No. 1 high-pressure steam extraction pipeline.

9. The steam and molten salt coupled heat storage and release peak shaving system according to claim 8, characterized in that: The boiler equipment is a boiler.