Supplementary combustion type flue gas molten salt heat exchange device and working mechanism thereof
By adding a combustion supplement device upstream of the flue gas molten salt heat exchanger, the problems of waste heat reuse and thermoelectric coupling after gas turbine power generation are solved, realizing the autonomous power supply and heating functions of the gas turbine power generation, heating and energy storage system, and safely and efficiently monitoring the combustion process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- BEIJING GONGDA HUANNENG TECH CO LTD
- Filing Date
- 2022-11-06
- Publication Date
- 2026-05-08
AI Technical Summary
Existing technologies have failed to effectively reuse the waste heat from flue gas after gas turbine power generation, and the thermoelectric coupling relationship in gas turbine power generation, heating and energy storage systems limits the functions of independent power supply and heating.
An afterburning device is added upstream of the flue gas molten salt heat exchanger. The afterburning device is connected to the flue gas molten salt heat exchanger to form an integrated afterburning flue gas molten salt heat exchanger. It includes an afterburning nozzle, a mixing pipe, an ignition chamber, air and gas pipelines and a control system. This enables uniform afterburning inside the flue gas and safe ignition outside. The combustion process is optimized through an intelligent control system.
It achieves efficient reuse of waste heat from flue gas after gas turbine power generation, realizes thermoelectric decoupling, and the system can independently supply power, store heat or provide heat, while safely monitoring the combustion process.
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Figure CN116085759B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the technical field of molten salt equipment, specifically a combustion-type flue gas molten salt heat exchanger and its working mechanism. Background Technology
[0002] After some coal-fired power units were shut down, their functions were partially replaced by gas-fired heating boilers and partially by gas-fired power generation and heating systems. Optimization and modification of the basic functions of these gas-fired boilers have led to relatively mature technological solutions such as gas turbine-plus-waste-heat boiler power generation and heating systems, and gas turbine-plus-thermal-storage power generation and heating systems.
[0003] Patent CN 213021144 U discloses a molten salt flue gas heat exchanger, including a shell, a lower end cap, an upper end cap, heat exchange tubes, a lower tube sheet, and an upper tube sheet. While this patented technology can address the problem of intermittent high-temperature flue gas and molten salt heat exchange, it fails to achieve the functions of supplementary combustion and flue gas purification. Patent CN 206973508 U discloses a gas turbine waste heat molten salt thermal storage system, including a molten salt waste heat boiler, a low-temperature molten salt tank, a high-temperature molten salt tank, and a steam generation unit. Although this patented technology uses a molten salt waste heat boiler to recover heat from the high-temperature flue gas discharged from the gas turbine, it also fails to achieve the functions of supplementary combustion and flue gas purification. While this technology possesses heat storage and energy storage capabilities, its thermoelectricity is coupled, meaning the total amount of heat and the total amount of power generation are mutually limited. This means the stored heat cannot exceed the waste heat of the gas turbine flue gas, and it cannot achieve independent external heating or power supply.
[0004] This invention addresses the technical problems existing in the above-mentioned technical solutions. The technical solution implemented not only enables the reuse of waste heat from flue gas after gas turbine power generation, but also achieves complete decoupling of thermoelectricity in the gas turbine power generation, heating, and energy storage system, realizing flue gas purification and autonomous external power supply, heat storage, or heating. Summary of the Invention
[0005] The purpose of this invention patent is to realize the reuse of waste heat from flue gas after gas turbine power generation and the complete decoupling of thermoelectricity in the gas turbine power generation, heating and energy storage system, so as to realize the system's function of autonomously supplying power, storing heat or supplying heat.
[0006] The technical solution of the present invention is as follows:
[0007] A combustion-type flue gas molten salt heat exchanger is characterized in that: a combustion-type device is added upstream of the flue gas molten salt heat exchanger, and the combustion-type device is connected to the flue gas molten salt heat exchanger through a flue to form an integrated combustion-type flue gas molten salt heat exchanger.
[0008] Furthermore, a supplementary combustion type flue gas molten salt heat exchanger is characterized in that it includes at least one supplementary combustion device (72-2), wherein the supplementary combustion device (72-2) includes at least one first supplementary combustion nozzle (72-2-1-1), a first supplementary combustion branch circuit (72-2-1-2), a first supplementary combustion mixing pipe (72-2-1-3), a first supplementary combustion ignition chamber (72-2-1-4), a first supplementary combustion ignition observation window (72-2-1-5), a first supplementary combustion air pipe (72-2-1-6), a first supplementary combustion air electric valve (72-2-1-7), a first supplementary combustion electric igniter (72-2-1-8), a first supplementary combustion gas pipe (72-2-1-9), a first supplementary combustion gas electric valve (72-2-1-10), and at least one m-th supplementary combustion nozzle ( The combustion device (72-2) comprises m combustion branch circuits (72-2-m-1), m combustion mixing pipes (72-2-m-3), m combustion ignition chambers (72-2-m-4), m combustion ignition observation windows (72-2-m-5), m combustion air pipes (72-2-m-6), m combustion air electric valves (72-2-m-7), m combustion electric igniters (72-2-m-8), m combustion gas pipes (72-2-m-9), and m combustion gas electric valves (72-2-m-10); where m is a natural number.
[0009] The axis of the first supplementary combustion branch circuit (72-2-1-2) coincides with the first equal pressure line of flue gas (72-1-1), and the first supplementary combustion branch circuit (72-2-1-2) is a connected circuit;
[0010] The axis of the first afterburning nozzle (72-2-1-1) is along the flue gas flow direction and perpendicular to the axis of the first afterburning branch circuit (72-2-1-2). The first afterburning nozzle (72-2-1-1) is connected to the first afterburning branch circuit (72-2-1-2). Multiple first afterburning nozzles (72-2-1-1) are evenly arranged along the axis of the first afterburning branch circuit (72-2-1-2).
[0011] The axis of the first afterburning mixing pipe (72-2-1-3) is connected to the axis of the first afterburning branch pipe circuit (72-2-1-2), and the first afterburning mixing pipe (72-2-1-3) and the first afterburning branch pipe circuit (72-2-1-2) are connected in a continuous manner;
[0012] The symmetry line of the first afterburning ignition chamber (72-2-1-4) is connected in the same direction as the axis of the first afterburning mixing pipe (72-2-1-3), and the first afterburning ignition chamber (72-2-1-4) and the first afterburning mixing pipe (72-2-1-3) are connected in a through manner;
[0013] The first afterburning observation window (72-2-1-5) is set on at least one side of the first afterburning chamber (72-2-1-4), and the way and number of the window are set are to facilitate observation of the ignition situation in the first afterburning chamber (72-2-1-4).
[0014] The axis of the first afterburning air pipe (72-2-1-6) is obliquely connected to the symmetrical line of the first afterburning ignition chamber (72-2-1-4), and the first afterburning air pipe (72-2-1-6) and the first afterburning ignition chamber (72-2-1-4) are obliquely connected; a first afterburning air electric valve (72-2-1-7) is provided on the first afterburning air pipe (72-2-1-6) to control the air flow.
[0015] The axis of the first supplementary combustion gas pipe (72-2-1-9) is connected in the same direction as the symmetrical line of the first supplementary combustion ignition chamber (72-2-1-4). The first supplementary combustion gas pipe (72-2-1-9) is inserted into the first supplementary combustion ignition chamber (72-2-1-4) for a certain length and then connected to it. The first supplementary combustion gas pipe (72-2-1-9) is equipped with a first supplementary combustion gas electric valve (72-2-1-10) to control the gas flow rate.
[0016] The first supplementary combustion electric igniter (72-2-1-8) is connected at one end to the wall of the first supplementary combustion gas pipe (72-2-1-9) via a wire, and at the other end is equipped with at least one ignition probe. One end of the ignition probe is connected to the first supplementary combustion electric igniter (72-2-1-8) via a wire, and the other end is not in contact with the opening of the first supplementary combustion gas pipe (72-2-1-9) after it has been inserted into the first supplementary combustion ignition chamber (72-2-1-4) for a certain length. The distance is suitable for generating an electric spark after being energized. The first supplementary combustion electric igniter (72-2-1-8) is equipped with a low-voltage power supply.
[0017] The axis of the m-th supplementary combustion branch circuit (72-2-m-2) coincides with the m-th isobaric line of the flue gas (72-1-m), and the m-th supplementary combustion branch circuit (72-2-m-2) is a connected circuit;
[0018] The axis of the m-th afterburning nozzle (2-m-1) is along the flue gas flow direction and perpendicular to the axis of the m-th afterburning branch circuit (72-2-m-2). The m-th afterburning nozzle (2-m-1) is connected to the m-th afterburning branch circuit (72-2-m-2). Multiple m-th afterburning nozzles (2-m-1) are evenly arranged along the axis of the m-th afterburning branch circuit (72-2-m-2).
[0019] The axis of the m-th supplementary combustion mixing pipe (72-2-m-3) is connected to the axis of the m-th supplementary combustion branch pipe circuit (72-2-m-2), and the m-th supplementary combustion mixing pipe (72-2-m-3) and the m-th supplementary combustion branch pipe circuit (72-2-m-2) are connected in a continuous manner;
[0020] The symmetry line of the m-th afterburning ignition chamber (72-2-m-4) is connected in the same direction as the axis of the m-th afterburning mixing pipe (72-2-m-3), and the m-th afterburning ignition chamber (72-2-m-4) and the m-th afterburning mixing pipe (72-2-m-3) are connected in a through manner;
[0021] The m-th afterburning ignition observation window (72-2-m-5) is set on at least one side of the m-th afterburning ignition chamber (72-2-m-4), and the way and number of its setting are based on the need to observe the ignition situation in the m-th afterburning ignition chamber (72-2-m-4);
[0022] The axis of the m-th supplementary combustion air pipe (72-2-m-6) intersects the symmetry line of the m-th supplementary combustion ignition chamber (72-2-m-4) and is obliquely connected; the m-th supplementary combustion air pipe (72-2-m-6) and the m-th supplementary combustion ignition chamber (72-2-m-4) are obliquely connected; the m-th supplementary combustion air pipe (72-2-m-6) is equipped with an m-th supplementary combustion air electric valve (72-2-m-7) to control the air flow.
[0023] The axis of the m-th supplementary combustion gas pipe (72-2-m-9) is connected in the same direction as the symmetry line of the m-th supplementary combustion ignition chamber (72-2-m-4). The m-th supplementary combustion gas pipe (72-2-m-9) is inserted into the m-th supplementary combustion ignition chamber (72-2-m-4) for a certain length and then connected to it. The m-th supplementary combustion gas pipe (72-2-m-9) is equipped with an m-th supplementary combustion gas electric valve (72-2-m-10) to control the gas flow rate.
[0024] The m-th supplementary combustion electric igniter (72-2-m-8) is connected at one end to the wall of the m-th supplementary combustion gas pipe (72-2-m-9) via a wire, and at the other end is equipped with at least one ignition probe. One end of the ignition probe is connected to the m-th supplementary combustion electric igniter (72-2-m-8) via a wire, and the other end is not in contact with the opening of the m-th supplementary combustion gas pipe (72-2-m-9) after it has been inserted into the m-th supplementary combustion ignition chamber (72-2-m-4) for a certain length. The distance is suitable for generating an electric spark after being energized. The m-th supplementary combustion electric igniter (72-2-m-8) is equipped with a low-voltage power supply.
[0025] further,
[0026] A flue gas molten salt heat exchanger for supplementary combustion, characterized in that: it includes an internal supplementary combustion and external ignition system (72) for flue gas, wherein the internal supplementary combustion and external ignition system (72) for flue gas includes at least one supplementary combustion device (72-2), at least one supplementary combustion and ignition video monitor (72-7), at least one supplementary combustion nozzle combustion observation window (72-3), at least one supplementary combustion nozzle combustion observation video monitor (72-6), a flue gas temperature and pressure measuring instrument before supplementary combustion (72-4), and a flue gas temperature and pressure measuring instrument after supplementary combustion (72-5);
[0027] Along the direction of the flue gas, at least one hole is opened on the flue wall downstream of the combustion device (72-2), and a combustion observation window (72-3) for the combustion of the combustion nozzle is embedded in each hole; the combustion observation video monitor (72-6) for the combustion of the combustion nozzle is arranged at a certain position outside the flue, and its position and number are determined so as to be able to observe the combustion of all combustion nozzles.
[0028] An instrument for measuring the temperature and pressure of flue gas before combustion (72-4) is arranged upstream of the combustion device (72-2), with its probe inserted into the flue through the flue wall in the radial direction of the flue.
[0029] A flue gas temperature and pressure measuring instrument (72-5) is arranged downstream of the afterburning device (72-2). Its probe passes through the flue wall and is inserted into the flue along the radial direction of the flue. It can be arranged upstream or downstream of the combustion observation window (72-6) of the afterburning nozzle. When it is arranged upstream of the combustion observation window (72-6) of the afterburning nozzle, it should be arranged so as not to affect the observation of the combustion of the afterburning nozzle.
[0030] The aforementioned afterburning ignition video monitor (72-7) is arranged at a certain position outside the flue. The position and number of the monitor are determined so that the ignition situation inside the afterburning ignition chamber of all afterburning devices can be observed.
[0031] The combustion nozzle, combustion branch circuit and part of the combustion mixing pipe in the combustion device (72-2) are arranged inside the flue and connected to the inner wall of the flue through a support structure; the combustion mixing pipe in the combustion device passes through the flue wall in the radial direction of the flue.
[0032] Furthermore, a flue gas molten salt heat exchanger for supplementary combustion is characterized by comprising a supplementary combustion system (72) or a supplementary combustion device (72-2) and a primary flue gas molten salt heat exchange assembly (73-1).
[0033] The burner system (72) is connected to the primary flue gas molten salt heat exchange assembly (73-1) via flue gas pipeline (60).
[0034] Furthermore, a combustion-type flue gas molten salt heat exchanger is characterized in that: the first isobaric line (72-1-1) to the m-th isobaric line (72-1-m) selected at the flue section are evenly distributed at the section; the flue gas pressure is the same on the same isobaric line; the positions of the first isobaric line (72-1-1) to the m-th isobaric line (72-1-m) are obtained by numerical simulation calculation.
[0035] Furthermore, a combustion-type flue gas molten salt heat exchanger is characterized in that: the inner contour line (72-1-0) of the flue section can be circular, square, or multi-segment closed zigzag lines.
[0036] Furthermore, a supplementary combustion type flue gas molten salt heat exchange device and its working mechanism are characterized in that: the gas inside the m-th supplementary combustion gas pipe (72-2-m-9) is a combustible gas, an atomized combustible gas-liquid mixture, an atomized combustible gas-powder mixture, or an atomized combustible gas-liquid-powder mixture.
[0037] Furthermore, a flue gas molten salt heat exchanger for supplementary combustion is characterized in that the internal cross-sectional profile of all supplementary combustion nozzles in the supplementary combustion device (72-2) is a hyperbola.
[0038] Furthermore, a method for operating a flue gas molten salt heat exchanger with a supplementary combustion type is characterized in that: the normal operating process of the flue gas internal supplementary combustion and external ignition system (72) is as follows:
[0039] The flue gas first passes through the pre-combustion flue gas temperature and pressure measuring instrument (72-4) upstream of the combustion device (72-2) to measure the pre-combustion flue gas temperature and pressure values. The pre-combustion flue gas temperature and pressure values are then transmitted to the combustion intelligent control system via a transmitter for backup.
[0040] When the flue gas passes through the combustion device (72-2), it is heated by the combustion device (72-2) and continues to flow downstream; the combustion observation video monitor (72-6) of the combustion nozzle records the combustion status of all nozzles in the combustion device (72-2) through the combustion observation window (72-3), and the video signal is transmitted to the combustion intelligent control system through the video signal line. The result is analyzed and processed by AI technology and stored for later use.
[0041] After the flue gas is re-burned by the re-burning device (72-2), the flue gas temperature and pressure are measured by the flue gas temperature and pressure measuring instrument (72-5). The flue gas temperature and pressure values are then transmitted to the re-burning intelligent control system via a transmitter for backup.
[0042] The following data are processed by AI technology: the pre-combustion flue gas temperature and pressure values and the post-combustion flue gas temperature and pressure values are stored in the intelligent combustion control system; the combustion status of all nozzles in the combustion device (72-2) recorded by the combustion observation video monitor (72-6) stored in the intelligent combustion control system is analyzed and processed by AI technology; the ignition status of all combustion chambers in the combustion device (72-2) recorded by the combustion ignition video monitor (72-7) stored in the intelligent combustion control system is analyzed and processed by AI technology; and the relationships between the first combustion air electric valve (72-2-1-7), the first combustion electric igniter (72-2-1-8), the first combustion gas electric valve (72-2-1-10), the m-th combustion air electric valve (72-2-m-7), the m-th combustion electric igniter (72-2-m-8), and the m-th combustion gas electric valve (72-2-m-10) are interlocked, and the control logic is executed by the algorithm in the intelligent combustion control system.
[0043] Furthermore, a method for operating a combustion-type flue gas molten salt heat exchanger is characterized in that: when the flue gas requires combustion, the combustion-type device (72-2) undergoes the following process from ignition to normal operation:
[0044] When the flue gas needs to be supplemented with combustion, the algorithm in the supplementation combustion intelligent control system issues a command to open the first supplementation air electric valve (72-2-1-7) and / or the mth supplementation air electric valve (72-2-m-7), and after 1~2 seconds;
[0045] The algorithm in the supplementary combustion intelligent control system issues instructions to open the first supplementary combustion electric igniter (72-2-1-8) and the first supplementary combustion gas electric valve (72-2-1-10) simultaneously, and / or the mth supplementary combustion electric igniter (72-2-m-8) and the mth supplementary combustion gas electric valve (72-2-m-10) simultaneously;
[0046] At this time, the mixture in the first supplementary combustion ignition observation window (72-2-1-5) and / or the mth supplementary combustion ignition observation window (72-2-m-5) can be observed to have been ignited. This ignition video information is recorded by the supplementary combustion ignition video monitor (72-7) and then transmitted to the supplementary combustion intelligent control system for storage. The video information of the ignition status of all supplementary combustion ignition chambers in the supplementary combustion device (72-2) is analyzed and processed by AI technology, and the result is the value representing the ignition. After receiving this value, the algorithm in the supplementary combustion intelligent control system issues an instruction to shut down the first supplementary combustion electric igniter (72-2-1-8) and / or the mth supplementary combustion electric igniter (72-2-m-8).
[0047] At the same time, the algorithm in the supplementary combustion intelligent control system issues a command to increase the opening of the first supplementary combustion air electric valve (72-2-1-7) and the first supplementary combustion gas electric valve (72-2-1-10), and / or the mth supplementary combustion air electric valve (72-2-m-7) and the mth supplementary combustion gas electric valve (72-2-m-10), that is, to increase the flow rate;
[0048] At this time, the flow rate of the mixed gas entering the first afterburning ignition chamber (72-2-1-4) and / or the m-th afterburning ignition chamber (72-2-m-4) gradually increases. The flow ratio of air to fuel gas in the mixed gas is controlled by an algorithm, so that the flame flows forward with the flow of the mixed gas. The flame enters through the first afterburning mixing pipe (72-2-1-3) and the first afterburning branch pipe circuit (72-2-1-2) in sequence and is ejected from all the first afterburning nozzles (72-2-1-1), and / or enters through the m-th afterburning mixing pipe (72-2-m-3) and the m-th afterburning branch pipe circuit (72-2-m-2) in sequence and is ejected from all the m-th afterburning nozzles (72-2-m-1).
[0049] At this time, the combustion status of the gas mixture in all the combustion nozzles of the combustion device (72-2) can be observed in the combustion observation window (72-3). This combustion status video information is recorded by the combustion observation video monitor (72-6) and then transmitted to the combustion intelligent control system for storage. The result of the combustion status video information of all the gas mixture in the combustion device (72-2) after being analyzed and processed by AI technology is the value representing the ignition. After receiving this value, the algorithm in the combustion intelligent control system issues an instruction to maintain the current opening degree of the first combustion air electric valve (72-2-1-7) and the first combustion gas electric valve (72-2-1-10), and / or the mth combustion air electric valve (72-2-m-7) and the mth combustion gas electric valve (72-2-m-10); then the combustion system is in normal operation.
[0050] The pre-combustion flue gas temperature and pressure values and post-combustion flue gas temperature and pressure values, which are stored in the intelligent combustion control system, are analyzed and processed by AI technology as a reference for judging whether the combustion system is operating normally.
[0051] Furthermore, a combustion-type flue gas molten salt heat exchanger and its working mechanism are characterized by:
[0052] The working principle of the afterburning device (72-2) to achieve more uniform and efficient afterburning and heat transfer within the flue gas is as follows:
[0053] Because, firstly, the flue gas pressure is the same on the same isobar; secondly, the axis of the first supplementary combustion branch circuit (72-2-1-2) coincides with the first isobaric line of the flue gas (72-1-1), and the first supplementary combustion branch circuit (72-2-1-2) is a continuous circuit; the axis of the first supplementary combustion nozzle (72-2-1-1) is along the flue gas flow direction and perpendicular to the axis of the first supplementary combustion branch circuit (72-2-1-2), and the first supplementary combustion nozzle (72-2-1-1) is connected to the first supplementary combustion branch circuit (72-2-1-2), and / or the m-th supplementary combustion branch circuit (72-2-1-2) is connected to the first supplementary combustion branch circuit (72-2-1-2). The axis of the m-2 isobaric line of the flue gas (72-1-m) coincides with the m-th isobaric line of the flue gas. The m-th supplementary combustion branch circuit (72-2-m-2) is a continuous circuit. The axis of the m-th supplementary combustion nozzle (72-2-m-1) is along the flue gas flow direction and perpendicular to the axis of the m-th supplementary combustion branch circuit (72-2-m-2). The m-th supplementary combustion nozzle (72-2-m-1) is connected to the m-th supplementary combustion branch circuit (72-2-m-2). Therefore, the above arrangement can ensure that the pressure at each supplementary combustion nozzle is the same, thereby ensuring that the supplementary combustion mixture can reach all supplementary combustion nozzles evenly for combustion.
[0054] Firstly, the first isobaric line (72-1-1) and the m-th isobaric line (72-1-m) of the flue gas selected at the flue section are evenly distributed at that section; secondly, multiple first combustion nozzles (72-2-1-1) are evenly arranged along the axis of the first combustion branch circuit (72-2-1-2), and / or multiple m-th combustion nozzles (72-2-m-1) are evenly arranged along the axis of the m-th combustion branch circuit (72-2-m-2); therefore, the above arrangement can ensure that the heat distribution of combustion on the flue section is relatively uniform.
[0055] In the aforementioned afterburning device (72-2), the internal cross-sectional profile of all afterburning nozzles is a hyperbola. This structure not only improves the combustion efficiency of the gas mixture but also enhances the heat transfer efficiency of the flue gas after combustion. The lower part decreases in size, which increases the kinetic energy of the flue gas and improves the exhaust velocity; the upper part increases in size, gradually diffusing into the original flue gas, which reduces the exhaust resistance of the flue gas generated by afterburning.
[0056] Compared with the prior art, the present invention has the following advantages and outstanding technical effects:
[0057] ① To achieve more uniform and efficient combustion and heat transfer within the flue gas;
[0058] ② It achieves a safer ignition method for supplementary combustion gas or atomized supplementary combustion liquid (or gas-powder) mixture outside the flue; and it also enables more convenient monitoring of the supplementary combustion situation;
[0059] ③ By supplementing combustion, external heat supply is not limited by the gas turbine's operating status, thus achieving complete decoupling of thermoelectricity in the gas turbine power generation, heat supply, and energy storage system, enabling the system to independently supply power, store heat, or provide heat. Attached Figure Description
[0060] Figure 1 This is a schematic diagram of a gas and steam power generation and combustion supplementary combustion type thermal storage and heating decoupling system;
[0061] Figure 2 This is a schematic diagram of a combustion-type molten salt thermal storage and heating system.
[0062] Figure 3 This is a schematic diagram of a combustion-type flue gas molten salt heat exchanger.
[0063] Figure 4 This is a schematic diagram of a flue gas internal combustion supplementation system with external ignition and combustion supplementation.
[0064] Figure 5 This is a schematic diagram of a combustion chamber.
[0065] Figure 6 This is a schematic diagram of a nozzle structure;
[0066] In the diagram: 10. Gas turbine power generation system; 20. Exhaust flue gas; 30. Power transmission and distribution system; 40. External power grid; 50. Cable; 60. Flue gas pipeline; 70. Molten salt thermal storage system; 80. Steam power generation system; 90. Main steam pipeline; 100. Return water pipeline; 110. Waste heat exchanger; 120. Thermal pipeline; 130. External heating demand; 140. External industrial steam demand.
[0067] 70-0 Molten salt pipeline; 70-1 High-temperature molten salt storage tank; 70-2 Low-temperature molten salt storage tank; 70-3 Molten salt heating device; 70-4 Molten salt industrial steam generation device; 70-5 Molten salt high-temperature and high-pressure steam generation device; 71 Supplementary combustion type flue gas molten salt heat exchange integrated device; 72 Supplementary combustion system; 73-1 Primary flue gas molten salt heat exchange component;
[0068] 72-3. Combustion observation window of the afterburning nozzle; 72-4. Flue gas temperature and pressure measuring instrument before afterburning; 72-5. Flue gas temperature and pressure measuring instrument after afterburning; 72-6. Combustion observation video monitor of the afterburning nozzle; 72-7. Afterburning ignition video monitor; 72-2. Afterburning device; 72-1-0. Inner contour line of flue section; 72-1-1. First isobaric line of flue gas; 72-1-m. Mth isobaric line of flue gas; 72-2-1-1. First afterburning nozzle; 72-2-1-2. First afterburning branch circuit; 72-2-1-3. First afterburning mixing pipe; 72-2-1-4. First afterburning ignition chamber; 72-2-1-5. First afterburning ignition observation window; 72-2-1-6. First afterburning air pipe; 72-2-1 -7. First supplementary combustion air electric valve; 72-2-1-8. First supplementary combustion electric igniter; 72-2-1-9. First supplementary combustion gas pipe; 72-2-1-10. First supplementary combustion gas electric valve; 72-2-m-1. m-th supplementary combustion nozzle; 72-2-m-2. m-th supplementary combustion branch circuit; 72-2-m-3. m-th supplementary combustion mixing pipe; 72-2-m-4. m-th supplementary combustion ignition chamber; 72-2-m-5. m-th supplementary combustion ignition observation window; 72-2-m-6. m-th supplementary combustion air pipe; 72-2-m-7. m-th supplementary combustion air electric valve; 72-2-m-8. m-th supplementary combustion electric igniter; 72-2-m-9. m-th supplementary combustion gas pipe; 72-2-m-10. m-th supplementary combustion gas electric valve; where m is a natural number. Detailed Implementation
[0069] The present invention will be further described below with reference to the accompanying drawings and specific embodiments:
[0070] like Figure 1 A schematic diagram of a gas-fired and steam-powered supplementary combustion type thermal storage and heating decoupling system is shown.
[0071] A gas and steam power generation supplementary combustion type thermal storage and heating decoupling system includes a gas turbine power generation system (10), a power transmission and transformation system (30), a molten salt thermal storage system (70), and a steam power generation system (80).
[0072] The gas turbine power generation system (10) is connected to the molten salt thermal storage system (70); the molten salt thermal storage system (70) is connected to the waste heat exchanger (110) through the flue gas pipeline (60); the gas turbine power generation system (10) is connected to the power transmission and transformation system (30) through the cable (50); the molten salt thermal storage system (70) is connected to the steam power generation system (80) through the main steam pipeline (90) and the return water pipeline (100); the steam power generation system (80) is connected to the power transmission and transformation system (30) through the cable (50).
[0073] The power transmission and transformation system (30) is connected to the external power grid (40) via a cable (50);
[0074] The electricity generated by the gas turbine power generation system (10) is transmitted through the power transmission and transformation system (30) via the cable (50) to the external power grid (40).
[0075] The flue gas discharged from the gas turbine power generation system (10) passes through the flue gas pipeline (60) and then passes through the combustion-type flue gas molten salt heat exchange integrated device (71) and the waste heat exchanger (110) in sequence, and then becomes exhaust flue gas (20) before being discharged into the air.
[0076] The electricity generated by the steam power generation system (80) is transmitted through the power transmission and transformation system (30) via the cable (50) to the external power grid (40).
[0077] The external heating demand (130) is connected to the molten salt heating device (70-3) through a heat pipe (120);
[0078] The external industrial steam demand (140) is connected to the molten salt industrial steam generating unit (70-4) via a heat pipeline (120).
[0079] like Figure 2 A schematic diagram of a combustion-type molten salt thermal storage and heating system is shown.
[0080] The molten salt thermal storage system (70) includes a combustion-type flue gas molten salt heat exchange integrated device (71), a high-temperature molten salt storage tank (70-1), a low-temperature molten salt storage tank (70-2), a molten salt heating device (70-3), a molten salt industrial steam generating device (70-4), and a molten salt high-temperature and high-pressure steam generating device (70-5).
[0081] The molten salt outlet of the low-temperature molten salt storage tank (70-2) is connected to the molten salt inlet of the combustion-type flue gas molten salt heat exchanger (71) via a molten salt pipeline (70-0);
[0082] The molten salt inlet of the low-temperature molten salt storage tank (70-2) is connected to the molten salt outlet of the molten salt high-temperature and high-pressure steam generator (70-5), the molten salt heating device (70-3), and the molten salt industrial steam generator (70-4) via the molten salt pipeline (70-0).
[0083] The molten salt inlet of the high-temperature molten salt storage tank (70-1) is connected to the molten salt outlet of the combustion-type flue gas molten salt heat exchanger (71) via a molten salt pipeline (70-0);
[0084] The molten salt outlet of the high-temperature molten salt storage tank (70-2) is connected to the molten salt inlet of the molten salt high-temperature and high-pressure steam generator (70-5), the molten salt heating device (70-3), and the molten salt industrial steam generator (70-4) via the molten salt pipeline (70-0).
[0085] The low-temperature molten salt is pumped from the low-temperature molten salt storage tank (70-2) through the molten salt pipeline (70-0) to the combustion-type flue gas molten salt heat exchanger (71) to exchange heat with the flue gas and become high-temperature molten salt. The high-temperature molten salt is pumped from the combustion-type flue gas molten salt heat exchanger (71) through the molten salt pipeline (70-0) to the high-temperature molten salt storage tank (70-1).
[0086] Under the action of the molten salt pump, the high-temperature molten salt is transferred from the high-temperature molten salt storage tank (70-1) through the molten salt pipeline (70-0) to the molten salt high-temperature high-pressure steam generator (70-5), the molten salt heating device (70-2), and the molten salt industrial steam generator (70-4) for heat exchange, and then becomes low-temperature molten salt. The low-temperature molten salt is then transferred from the high-temperature molten salt storage tank (70-2) through the molten salt pipeline (70-0) under the action of the molten salt pump.
[0087] like Figure 3 A schematic diagram of a combustion-type flue gas purification molten salt heat exchanger is shown, which includes a combustion-type flue gas molten salt heat exchanger, wherein the combustion-type flue gas molten salt heat exchanger includes a combustion system (72) or a combustion device (72-2); and a primary flue gas molten salt heat exchange component (73-1).
[0088] The burner system (72) is connected to the primary flue gas molten salt heat exchange assembly (73-1) via flue gas pipeline (60).
[0089] Waste heat storage process: After the gas turbine power generation system (10) generates electricity, the flue gas enters the combustion-type flue gas molten salt heat exchange integrated device (71), in which the flue gas exchanges heat with low temperature molten salt. The waste heat in the flue gas heats the low temperature molten salt into high temperature molten salt. Under the action of the molten salt pump, the high temperature molten salt enters the high temperature molten salt storage tank (70-1) through the molten salt pipeline (70-0). The flue gas that has exchanged heat with the molten salt is further heat-exchanged through the waste heat exchanger (110) and becomes exhaust flue gas (20) and is discharged into the air.
[0090] The process of generating electricity through heat release is as follows: under the action of the molten salt pump, the high-temperature molten salt enters the molten salt high-temperature and high-pressure steam generating device (70-5) through the molten salt pipeline (70-0). In the device, the high-temperature molten salt exchanges heat with water, turning the water into high-temperature and high-pressure steam. The high-temperature and high-pressure steam enters the steam power generation system (80) through the main steam pipeline (90) to generate electricity. The generated electricity is transmitted through the cable (50) and the power transmission and transformation system (30) to the external power grid (40). The high-temperature and high-pressure steam that has generated electricity becomes low-pressure steam and / or condensate and returns to the molten salt heat storage system (70) through the return water pipeline (100). After heat exchange, the high-temperature molten salt becomes low-temperature molten salt, which enters the low-temperature molten salt storage tank (70-2) through the molten salt pipeline (70-0) under the action of the molten salt pump.
[0091] The heat release and heating process is achieved as follows: Under the action of the molten salt pump, the high-temperature molten salt enters the molten salt heating device (70-3) and the molten salt industrial steam generating device (70-4) through the molten salt pipeline (70-0). In the device, the high-temperature molten salt exchanges heat with water. The hot water or steam generated after the heat exchange is respectively delivered through the heat pipeline (120) to meet the external heating demand (130) and the external industrial steam demand (140). After the heat exchange, the high-temperature molten salt becomes low-temperature molten salt, which enters the low-temperature molten salt storage tank (70-2) through the molten salt pipeline (70-0) under the action of the molten salt pump.
[0092] Achieving complete decoupling of thermoelectricity: Decoupling of heat storage and gas turbine power generation, because the heat energy of the molten salt thermal storage system (70) comes from the residual heat of the flue gas after the gas turbine generates electricity and the heat energy generated by the supplementary combustion of the supplementary combustion system (72), thus decoupling the coupling relationship between heat storage and gas turbine power generation; Decoupling of heat supply and gas turbine power generation, because the heat energy of the molten salt thermal storage system (70) comes from the residual heat of the flue gas after the gas turbine generates electricity and the heat energy generated by the supplementary combustion of the supplementary combustion system (72), heat release includes heat release power generation and heat release power supply, heat release power generation and heat release power supply operate independently, thus decoupling the coupling relationship between heat supply and gas turbine power generation.
[0093] like Figure 4 A schematic diagram of a flue gas internal combustion and external ignition combustion system is shown.
[0094] The working process of the internal combustion and external ignition system (72) for flue gas is as follows:
[0095] The flue gas first passes through the pre-combustion flue gas temperature and pressure measuring instrument (72-4) upstream of the combustion device (72-2) to measure the pre-combustion flue gas temperature and pressure values. The pre-combustion flue gas temperature and pressure values are then transmitted to the combustion intelligent control system via a transmitter for backup.
[0096] When the flue gas passes through the combustion device (72-2), it is heated by the combustion device (72-2) and continues to flow downstream; the combustion observation video monitor (72-6) of the combustion nozzle records the combustion status of all nozzles in the combustion device (72-2) through the combustion observation window (72-3), and the video signal is transmitted to the combustion intelligent control system through the video signal line. The result is analyzed and processed by AI technology and stored for later use.
[0097] After the flue gas is re-burned by the re-burning device (72-2), the flue gas temperature and pressure are measured by the flue gas temperature and pressure measuring instrument (72-5). The flue gas temperature and pressure values are then transmitted to the re-burning intelligent control system via a transmitter for backup.
[0098] The following data are processed by AI technology: the pre-combustion flue gas temperature and pressure values and the post-combustion flue gas temperature and pressure values are stored in the intelligent combustion control system; the combustion status of all nozzles in the combustion device (72-2) recorded by the combustion observation video monitor (72-6) stored in the intelligent combustion control system is analyzed and processed by AI technology; the ignition status of all combustion chambers in the combustion device (72-2) recorded by the combustion ignition video monitor (72-7) stored in the intelligent combustion control system is analyzed and processed by AI technology; and the relationships between the first combustion air electric valve (72-2-1-7), the first combustion electric igniter (72-2-1-8), the first combustion gas electric valve (72-2-1-10), the m-th combustion air electric valve (72-2-m-7), the m-th combustion electric igniter (72-2-m-8), and the m-th combustion gas electric valve (72-2-m-10) are interlocked, and the control logic is executed by the algorithm in the intelligent combustion control system.
[0099] like Figure 5 A schematic diagram of the structure of a combustion device and Figure 6 The diagram shows the structure of a nozzle.
[0100] When the flue gas requires re-combustion, the re-combustion device (72-2) proceeds from ignition to normal operation as follows:
[0101] When the flue gas needs to be supplemented with combustion, the algorithm in the supplementation combustion intelligent control system issues a command to open the first supplementation air electric valve (72-2-1-7) and / or the mth supplementation air electric valve (72-2-m-7), and after 1~2 seconds;
[0102] The algorithm in the supplementary combustion intelligent control system issues instructions to open the first supplementary combustion electric igniter (72-2-1-8) and the first supplementary combustion gas electric valve (72-2-1-10) simultaneously, and / or the mth supplementary combustion electric igniter (72-2-m-8) and the mth supplementary combustion gas electric valve (72-2-m-10) simultaneously;
[0103] At this time, the mixture in the first supplementary combustion ignition observation window (72-2-1-5) and / or the mth supplementary combustion ignition observation window (72-2-m-5) can be observed to have been ignited. This ignition video information is recorded by the supplementary combustion ignition video monitor (72-7) and then transmitted to the supplementary combustion intelligent control system for storage. The video information of the ignition status of all supplementary combustion ignition chambers in the supplementary combustion device (72-2) is analyzed and processed by AI technology, and the result is the value representing the ignition. After receiving this value, the algorithm in the supplementary combustion intelligent control system issues an instruction to shut down the first supplementary combustion electric igniter (72-2-1-8) and / or the mth supplementary combustion electric igniter (72-2-m-8).
[0104] At the same time, the algorithm in the supplementary combustion intelligent control system issues a command to increase the opening of the first supplementary combustion air electric valve (72-2-1-7) and the first supplementary combustion gas electric valve (72-2-1-10), and / or the mth supplementary combustion air electric valve (72-2-m-7) and the mth supplementary combustion gas electric valve (72-2-m-10), that is, to increase the flow rate;
[0105] At this time, the flow rate of the mixed gas entering the first afterburning ignition chamber (72-2-1-4) and / or the m-th afterburning ignition chamber (72-2-m-4) gradually increases. The flow ratio of air to fuel gas in the mixed gas is controlled by an algorithm, so that the flame flows forward with the flow of the mixed gas. The flame enters through the first afterburning mixing pipe (72-2-1-3) and the first afterburning branch pipe circuit (72-2-1-2) in sequence and is ejected from all the first afterburning nozzles (72-2-1-1), and / or enters through the m-th afterburning mixing pipe (72-2-m-3) and the m-th afterburning branch pipe circuit (72-2-m-2) in sequence and is ejected from all the m-th afterburning nozzles (72-2-m-1).
[0106] At this time, the combustion status of the gas mixture in all the combustion nozzles of the combustion device (72-2) can be observed in the combustion observation window (72-3). This combustion status video information is recorded by the combustion observation video monitor (72-6) and then transmitted to the combustion intelligent control system for storage. The result of the combustion status video information of all the gas mixture in the combustion device (72-2) after being analyzed and processed by AI technology is the value representing the ignition. After receiving this value, the algorithm in the combustion intelligent control system issues an instruction to maintain the current opening degree of the first combustion air electric valve (72-2-1-7) and the first combustion gas electric valve (72-2-1-10), and / or the mth combustion air electric valve (72-2-m-7) and the mth combustion gas electric valve (72-2-m-10); then the combustion system is in normal operation.
[0107] The pre-combustion flue gas temperature and pressure values and post-combustion flue gas temperature and pressure values, which are stored in the intelligent combustion control system, are analyzed and processed by AI technology as a reference for judging whether the combustion system is operating normally.
[0108] The working principle of the afterburning device (72-2) to achieve more uniform and efficient afterburning and heat transfer within the flue gas is as follows:
[0109] Because, firstly, the flue gas pressure is the same on the same isobar; secondly, the axis of the first supplementary combustion branch circuit (72-2-1-2) coincides with the first isobaric line of the flue gas (72-1-1), and the first supplementary combustion branch circuit (72-2-1-2) is a continuous circuit; the axis of the first supplementary combustion nozzle (72-2-1-1) is along the flue gas flow direction and perpendicular to the axis of the first supplementary combustion branch circuit (72-2-1-2), and the first supplementary combustion nozzle (72-2-1-1) is connected to the first supplementary combustion branch circuit (72-2-1-2), and / or the m-th supplementary combustion branch circuit (72-2-1-2) is connected to the first supplementary combustion branch circuit (72-2-1-2). The axis of the m-2 isobaric line of the flue gas (72-1-m) coincides with the m-th isobaric line of the flue gas. The m-th supplementary combustion branch circuit (72-2-m-2) is a continuous circuit. The axis of the m-th supplementary combustion nozzle (72-2-m-1) is along the flue gas flow direction and perpendicular to the axis of the m-th supplementary combustion branch circuit (72-2-m-2). The m-th supplementary combustion nozzle (72-2-m-1) is connected to the m-th supplementary combustion branch circuit (72-2-m-2). Therefore, the above arrangement can ensure that the pressure at each supplementary combustion nozzle is the same, thereby ensuring that the supplementary combustion mixture can reach all supplementary combustion nozzles evenly for combustion.
[0110] Firstly, the first isobaric line (72-1-1) and the m-th isobaric line (72-1-m) of the flue gas selected at the flue section are evenly distributed at that section; secondly, multiple first combustion nozzles (72-2-1-1) are evenly arranged along the axis of the first combustion branch circuit (72-2-1-2), and / or multiple m-th combustion nozzles (72-2-m-1) are evenly arranged along the axis of the m-th combustion branch circuit (72-2-m-2); therefore, the above arrangement can ensure that the heat distribution of combustion on the flue section is relatively uniform.
[0111] In the aforementioned afterburning device (72-2), the internal cross-sectional profile of all afterburning nozzles is a hyperbola. This structure not only improves the combustion efficiency of the gas mixture but also enhances the heat transfer efficiency of the flue gas after combustion. The lower part decreases in size, which increases the kinetic energy of the flue gas and improves the exhaust velocity; the upper part increases in size, gradually diffusing into the original flue gas, which reduces the exhaust resistance of the flue gas generated by afterburning.
[0112] The foregoing has provided a detailed description of one embodiment of the present invention, but this description is merely a preferred embodiment and should not be construed as limiting the scope of the invention. Any simple modifications, equivalent variations, and alterations made within the scope of the present invention should still fall within the patent coverage of the present invention.
Claims
1. A flue gas molten salt heat exchanger for supplementary combustion, characterized in that: It includes at least one afterburning device (72-2), which is used to afterburn the exhaust gas generated after the gas turbine generates electricity; The cross-section of the high-temperature exhaust gas duct of the gas turbine has the first isobaric line (72-1-1) to the m-th isobaric line (72-1-m); the pressure of the flue gas on the same isobaric line is the same; the position of the first isobaric line (72-1-1) to the m-th isobaric line (72-1-m) is obtained by numerical simulation calculation; The afterburning device (72-2) includes at least one first afterburning nozzle (72-2-1-1), a first afterburning branch circuit (72-2-1-2), a first afterburning mixing pipe (72-2-1-3), a first afterburning ignition chamber (72-2-1-4), a first afterburning ignition observation window (72-2-1-5), a first afterburning air pipe (72-2-1-6), a first afterburning air electric valve (72-2-1-7), a first afterburning electric igniter (72-2-1-8), a first afterburning gas pipe (72-2-1-9), a first afterburning gas electric valve (72-2-1-10), at least one m-th afterburning nozzle (72-2-m-1), and the m-th afterburning branch circuit (72-2-1-2). The combustion device (72-2) comprises m combustion branch circuits, combustion mixing pipes (72-2-m-3), combustion ignition chambers (72-2-m-4), combustion ignition observation windows (72-2-m-5), combustion air pipes (72-2-m-6), combustion air electric valves (72-2-m-7), combustion electric igniters (72-2-m-8), combustion gas pipes (72-2-m-9), and combustion gas electric valves (72-2-m-10); the combustion device (72-2) consists of m combustion branch circuits, combustion mixing pipes, combustion ignition chambers, combustion air pipes, combustion air electric valves, combustion electric igniters, combustion gas pipes, and combustion gas electric valves; where m is a natural number. The axis of the first supplementary combustion branch circuit (72-2-1-2) coincides with the first equal pressure line of flue gas (72-1-1), and the first supplementary combustion branch circuit (72-2-1-2) is a connected circuit; The axis of the first afterburning nozzle (72-2-1-1) is along the flue gas flow direction and perpendicular to the axis of the first afterburning branch circuit (72-2-1-2). The first afterburning nozzle (72-2-1-1) is connected to the first afterburning branch circuit (72-2-1-2). Multiple first afterburning nozzles (72-2-1-1) are evenly arranged along the axis of the first afterburning branch circuit (72-2-1-2). The axis of the first afterburning mixing pipe (72-2-1-3) is connected to the axis of the first afterburning branch pipe circuit (72-2-1-2), and the first afterburning mixing pipe (72-2-1-3) and the first afterburning branch pipe circuit (72-2-1-2) are connected in a continuous manner; The symmetry line of the first afterburning ignition chamber (72-2-1-4) is connected in the same direction as the axis of the first afterburning mixing pipe (72-2-1-3), and the first afterburning ignition chamber (72-2-1-4) and the first afterburning mixing pipe (72-2-1-3) are connected in a through manner; The first afterburning observation window (72-2-1-5) is set on the first afterburning chamber (72-2-1-4), and its setting method and number are to facilitate the observation and determination of the ignition situation in the first afterburning chamber (72-2-1-4); The axis of the first afterburning air pipe (72-2-1-6) is obliquely connected to the symmetrical line of the first afterburning ignition chamber (72-2-1-4), and the first afterburning air pipe (72-2-1-6) and the first afterburning ignition chamber (72-2-1-4) are obliquely connected; a first afterburning air electric valve (72-2-1-7) is provided on the first afterburning air pipe (72-2-1-6) to control the air flow. The axis of the first supplementary combustion gas pipe (72-2-1-9) is connected in the same direction as the symmetrical line of the first supplementary combustion ignition chamber (72-2-1-4). The first supplementary combustion gas pipe (72-2-1-9) is inserted into the first supplementary combustion ignition chamber (72-2-1-4) for a certain length and then connected to it. The first supplementary combustion gas pipe (72-2-1-9) is equipped with a first supplementary combustion gas electric valve (72-2-1-10) to control the gas flow rate. The first supplementary combustion electric igniter (72-2-1-8) is connected at one end to the wall of the first supplementary combustion gas pipe (72-2-1-9) via a wire, and at the other end is equipped with at least one ignition probe. One end of the ignition probe is connected to the first supplementary combustion electric igniter (72-2-1-8) via a wire, and the other end is not in contact with the opening of the first supplementary combustion gas pipe (72-2-1-9) after it has been inserted into the first supplementary combustion ignition chamber (72-2-1-4) for a certain length. The distance is suitable for generating an electric spark after being energized. The first supplementary combustion electric igniter (72-2-1-8) is equipped with a low-voltage power supply. The axis of the m-th supplementary combustion branch circuit (72-2-m-2) coincides with the m-th isobaric line of the flue gas (72-1-m), and the m-th supplementary combustion branch circuit (72-2-m-2) is a connected circuit; The axis of the m-th afterburning nozzle (72-2-m-1) is along the flue gas flow direction and perpendicular to the axis of the m-th afterburning branch circuit (72-2-m-2). The m-th afterburning nozzle (72-2-m-1) is connected to the m-th afterburning branch circuit (72-2-m-2). Multiple m-th afterburning nozzles (72-2-m-1) are evenly arranged along the axis of the m-th afterburning branch circuit (72-2-m-2). The axis of the m-th supplementary combustion mixing pipe (72-2-m-3) is connected to the axis of the m-th supplementary combustion branch pipe circuit (72-2-m-2), and the m-th supplementary combustion mixing pipe (72-2-m-3) and the m-th supplementary combustion branch pipe circuit (72-2-m-2) are connected in a continuous manner; The symmetry line of the m-th afterburning ignition chamber (72-2-m-4) is connected in the same direction as the axis of the m-th afterburning mixing pipe (72-2-m-3), and the m-th afterburning ignition chamber (72-2-m-4) and the m-th afterburning mixing pipe (72-2-m-3) are connected in a through manner; The m-th supplementary combustion ignition observation window (72-2-m-5) is set on the m-th supplementary combustion ignition chamber (72-2-m-4), and the way and number of its setting are to facilitate the observation and determination of the ignition situation in the m-th supplementary combustion ignition chamber (72-2-m-4); The axis of the m-th supplementary combustion air pipe (72-2-m-6) intersects the symmetry line of the m-th supplementary combustion ignition chamber (72-2-m-4) and is obliquely connected; the m-th supplementary combustion air pipe (72-2-m-6) and the m-th supplementary combustion ignition chamber (72-2-m-4) are obliquely connected; the m-th supplementary combustion air pipe (72-2-m-6) is equipped with an m-th supplementary combustion air electric valve (72-2-m-7) to control the air flow. The axis of the m-th supplementary combustion gas pipe (72-2-m-9) is connected in the same direction as the symmetry line of the m-th supplementary combustion ignition chamber (72-2-m-4). The m-th supplementary combustion gas pipe (72-2-m-9) is inserted into the m-th supplementary combustion ignition chamber (72-2-m-4) for a certain length and then connected to it. The m-th supplementary combustion gas pipe (72-2-m-9) is equipped with an m-th supplementary combustion gas electric valve (72-2-m-10) to control the gas flow rate. The m-th supplementary combustion electric igniter (72-2-m-8) is connected at one end to the wall of the m-th supplementary combustion gas pipe (72-2-m-9) via a wire, and at the other end is equipped with at least one ignition probe. One end of the ignition probe is connected to the m-th supplementary combustion electric igniter (72-2-m-8) via a wire, and the other end is not in contact with the opening of the m-th supplementary combustion gas pipe (72-2-m-9) after it has been inserted into the m-th supplementary combustion ignition chamber (72-2-m-4) for a certain length. The distance is suitable for generating an electric spark after being energized. The m-th supplementary combustion electric igniter (72-2-m-8) is equipped with a low-voltage power supply.
2. A flue gas molten salt heat exchanger for supplementary combustion, characterized in that: Includes a burner system (72), wherein the flue gas is the exhaust gas generated after the gas turbine generates electricity; The aforementioned afterburner system (72) includes at least one afterburning device (72-2), at least one afterburning ignition video monitor (72-7), at least one afterburning nozzle combustion observation window (72-3), at least one afterburning nozzle combustion observation video monitor (72-6), a flue gas temperature and pressure measuring instrument before afterburning (72-4), and a flue gas temperature and pressure measuring instrument after afterburning (72-5). Along the direction of the flue gas, at least one hole is opened on the flue wall downstream of the combustion device (72-2), and a combustion observation window (72-3) for the combustion of the combustion nozzle is embedded in each hole; the combustion observation video monitor (72-6) for the combustion of the combustion nozzle is arranged at a certain position outside the flue, and its position and number are determined so as to be able to observe the combustion of all combustion nozzles. An instrument for measuring the temperature and pressure of flue gas before combustion (72-4) is arranged upstream of the combustion device (72-2), with its probe inserted into the flue through the flue wall in the radial direction of the flue. A flue gas temperature and pressure measuring instrument (72-5) is arranged downstream of the afterburning device (72-2), with its probe inserted into the flue through the flue wall in the radial direction of the flue; when the flue gas temperature and pressure measuring instrument (72-5) is arranged upstream of the combustion observation window (72-3) of the afterburning nozzle, it is determined so as not to affect the observation of the combustion of the afterburning nozzle. The aforementioned afterburning ignition video monitor (72-7) is arranged at a certain position outside the flue. The position and number of the monitor are determined so that the ignition situation inside the afterburning ignition chamber of all afterburning devices can be observed. The combustion nozzles, combustion branch circuits, and part of the combustion mixing pipes in the combustion device (72-2) are arranged inside the flue. The combustion nozzles are distributed on the combustion branch circuits. The combustion branch circuits are connected to the part of the combustion mixing pipes and are connected to the inner wall of the flue through a support structure. The combustion mixing pipes in the combustion device pass through the flue wall in the radial direction of the flue.
3. A combustion-type flue gas molten salt heat exchanger according to claim 1 or 2, characterized in that: It includes a combustion-type flue gas molten salt heat exchanger, which includes a combustion-type flue gas molten salt heat exchanger system (72) or a combustion-type device (72-2); and a primary flue gas molten salt heat exchange component (73-1). The burner system (72) or burner device (72-2) is connected to the primary flue gas molten salt heat exchange assembly (73-1) via flue gas pipeline (60).
4. A combustion-type flue gas molten salt heat exchanger according to claim 1 or 2, characterized in that: The inner contour line of the flue section (72-1-0) is a circle, a square, or a multi-segment closed broken line.
5. A combustion-type flue gas molten salt heat exchanger according to claim 1 or 2, characterized in that: The gas inside the m-th supplementary combustion gas pipe (72-2-m-9) is a combustible gas, an atomized combustible gas-liquid mixture, an atomized combustible gas-powder mixture, or an atomized combustible gas-liquid-powder mixture.
6. A combustion-type flue gas molten salt heat exchanger according to claim 1 or 2, characterized in that: The internal cross-sectional profile of all the afterburning nozzles in the afterburning device (72-2) is a hyperbola; The cross-section of the high-temperature exhaust gas duct of the gas turbine has the first isobaric line (72-1-1) to the m-th isobaric line (72-1-m); the pressure of the flue gas on the same isobaric line is the same; the position of the first isobaric line (72-1-1) to the m-th isobaric line (72-1-m) is obtained by numerical simulation calculation; The axis of the first supplementary combustion branch pipe circuit (72-2-1-2) of the supplementary combustion device (72-2) coincides with the first isobaric line of the flue gas (72-1-1), and the first supplementary combustion branch pipe circuit (72-2-1-2) is a connected circuit; the axis of the m-th supplementary combustion branch pipe circuit (72-2-m-2) of the supplementary combustion device (72-2) coincides with the m-th isobaric line of the flue gas (72-1-m), and the m-th supplementary combustion branch pipe circuit (72-2-m-2) is a connected circuit; Multiple first-stage combustion nozzles (72-2-1-1) are uniformly arranged along the axis of the first-stage combustion branch circuit (72-2-1-2), and / or multiple m-th stage combustion nozzles (72-2-m-1) are uniformly arranged along the axis of the m-th stage combustion branch circuit (72-2-m-2).
7. A method for operating a combustion-type flue gas molten salt heat exchanger, characterized in that: The afterburning flue gas molten salt heat exchanger includes an afterburner system (72); The normal operation process of the afterburner system (72) is as follows: The flue gas first passes through the pre-combustion flue gas temperature and pressure measuring instrument (72-4) upstream of the combustion device (72-2) to measure the pre-combustion flue gas temperature and pressure values. The pre-combustion flue gas temperature and pressure values are then transmitted to the combustion intelligent control system via a transmitter for backup. When the flue gas passes through the combustion device (72-2), it is heated by the combustion device (72-2) and continues to flow downstream; the combustion observation video monitor (72-6) of the combustion nozzle records the combustion status of all nozzles in the combustion device (72-2) through the combustion observation window (72-3), and the video signal is transmitted to the combustion intelligent control system through the video signal line. The result is analyzed and processed by AI technology and stored for later use. After the flue gas is re-burned by the re-burning device (72-2), the flue gas temperature and pressure are measured by the flue gas temperature and pressure measuring instrument (72-5). The flue gas temperature and pressure values are then transmitted to the re-burning intelligent control system via a transmitter for backup. The following data are transmitted to the intelligent combustion control system: pre-combustion flue gas temperature and pressure values; post-combustion flue gas temperature and pressure values; combustion status of all nozzles in the combustion device (72-2) recorded by the combustion observation video monitor (72-6) stored in the intelligent combustion control system, analyzed and processed using AI technology; and ignition status of all combustion chambers in the combustion device (72-2) recorded by the combustion ignition video monitor (72-7) stored in the intelligent combustion control system, analyzed and processed using AI technology. After analysis and processing, the first supplementary combustion air electric valve (72-2-1-7), the first supplementary combustion electric igniter (72-2-1-8), the first supplementary combustion gas electric valve (72-2-1-10), the m-th supplementary combustion air electric valve (72-2-m-7), the m-th supplementary combustion electric igniter (72-2-m-8), and the m-th supplementary combustion gas electric valve (72-2-m-10) of the supplementary combustion device (72-2) are linked together, and the control logic is executed by the algorithm in the supplementary combustion intelligent control system.
8. A method for operating a combustion-type flue gas molten salt heat exchanger, characterized in that: The aforementioned combustion-type flue gas molten salt heat exchanger includes a combustion-replenishing device (72-2) for combustion-replenishing the flue gas. When the flue gas requires re-combustion, the re-combustion device (72-2) proceeds from ignition to normal operation as follows: When the flue gas needs to be supplemented with combustion, the algorithm in the supplementation combustion intelligent control system issues a command to open the first supplementation air electric valve (72-2-1-7) and / or the mth supplementation air electric valve (72-2-m-7), and after 1~2 seconds; The algorithm in the supplementary combustion intelligent control system issues instructions to open the first supplementary combustion electric igniter (72-2-1-8) and the first supplementary combustion gas electric valve (72-2-1-10) simultaneously, and / or the mth supplementary combustion electric igniter (72-2-m-8) and the mth supplementary combustion gas electric valve (72-2-m-10) simultaneously; At this time, the mixture in the first ignition observation window (72-2-1-5) and / or the mth ignition observation window (72-2-m-5) of the ignition device (72-2) can be observed to have been ignited. This ignition video information is recorded by the ignition video monitor (72-7) and then transmitted to the ignition intelligent control system for storage. The video information of the ignition status of all ignition chambers in the ignition device (72-2) is analyzed and processed by AI technology to obtain the value representing the ignition. After receiving this value, the algorithm in the ignition intelligent control system issues a command to shut down the first ignition electric igniter (72-2-1-8) and / or the mth ignition electric igniter (72-2-m-8). At the same time, the algorithm in the supplementary combustion intelligent control system issues a command to increase the opening of the first supplementary combustion air electric valve (72-2-1-7) and the first supplementary combustion gas electric valve (72-2-1-10), and / or the mth supplementary combustion air electric valve (72-2-m-7) and the mth supplementary combustion gas electric valve (72-2-m-10), that is, to increase the flow rate; At this time, the flow rate of the mixed gas in the first combustion ignition chamber (72-2-1-4) and / or the mth combustion ignition chamber (72-2-m-4) of the combustion device (72-2) gradually increases. The flow ratio of air to gas in the mixed gas is controlled by an algorithm, so that the flame flows forward with the flow of the mixed gas. The flame enters through the first combustion mixing pipe (72-2-1-3) and the first combustion branch pipe circuit (72-2-1-2) and exits from all the first combustion nozzles (72-2-1-1) in sequence, and / or enters through the mth combustion mixing pipe (72-2-m-3) and the mth combustion branch pipe circuit (72-2-m-2) and exits from all the mth combustion nozzles (72-2-m-1) in sequence. At this time, the combustion status of the gas mixture in all the combustion nozzles of the combustion device (72-2) can be observed in the combustion observation window (72-3). This combustion status video information is recorded by the combustion observation video monitor (72-6) and then transmitted to the combustion intelligent control system for storage. The result of the combustion status video information of all the gas mixture in the combustion device (72-2) after being analyzed and processed by AI technology is the value representing the ignition of the combustion nozzle. After receiving this value, the algorithm in the combustion intelligent control system issues an instruction to maintain the current opening degree of the first combustion air electric valve (72-2-1-7) and the first combustion gas electric valve (72-2-1-10), and / or the mth combustion air electric valve (72-2-m-7) and the mth combustion gas electric valve (72-2-m-10); then the combustion system is in normal operation. The pre-combustion flue gas temperature and pressure values and post-combustion flue gas temperature and pressure values, which are stored in the intelligent combustion control system, are analyzed and processed by AI technology as a reference for judging whether the combustion system is operating normally.
Citation Information
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