Combustion plant with heat storage
Patent Information
- Application Number
- DE502020011222
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2020-01-29
- Publication Date
- 2025-07-03
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Current incineration plants face challenges in efficiently treating and disposing of sewage sludge with high moisture content, requiring centralized treatment facilities that are costly and environmentally impactful, and necessitating the use of auxiliary energy for heat retention during discontinuous operation.
A combustion plant design that incorporates a thermal storage system to store and reuse thermal energy from flue gas, allowing for continuous heat retention and rapid restart of the incineration process without the need for auxiliary energy, even during periods of non-combustion.
The solution enables decentralized treatment of sewage sludge, reduces energy costs and CO2 emissions, and allows for efficient discontinuous operation, thereby addressing the limitations of centralized treatment and auxiliary energy use.
Description
[0001] The invention relates to a combustion plant for the combustion of liquid, solid or gaseous fuels, comprising a combustion chamber with fuel supply and combustion air supply, a flue gas path and a thermal storage. Background of the invention
[0002] In industry, plants and processes are increasingly being adapted to reduce CO2 emissions and to use renewable energies.
[0003] WO 2013 / 037561 A1 is therefore based on the object of creating a solution that makes it possible to make the operation of a coal-fired power plant more flexible and to increase the net efficiency when the coal-fired power plant is kept ready for operation. WO 2013 / 037561 therefore relates to a method wherein the combustion plant is temporarily operated in a standby mode during its operating time, in which it is operated in a minimum load range or minimum load range of the steam generator and energy generated thereby, which is not fed or to be fed into the power grid connected to the power plant, is used to process raw materials or operating materials required for the operation of the power plant, in particular for the operation of the at least one coal mill, and / or is stored in at least one system, preferably integrated into the power plant, and / or is used as part of a combined heat and power generation system.
[0004] WO 2016 / 124709 A1 discloses a solar power plant with a first heat transfer medium circuit and a second heat transfer medium circuit, in which the first heat transfer medium circuit comprises a storage unit for hot heat transfer medium and a storage unit for cold heat transfer medium as well as a piping system connecting the storage units for hot heat transfer medium and cold heat transfer medium and leading through a solar field, and the second heat transfer medium circuit comprises a piping system connecting the storage units for hot heat transfer medium and cold heat transfer medium, in which at least one heat exchanger for evaporating and superheating water is accommodated, wherein the heat exchanger has a region through which the heat transfer medium flows and a region through which water flows, which are separated by a heat-conducting wall so that heat can be transferred from the heat transfer medium to the water.
[0005] The regenerative thermal waste incineration system disclosed in WO 02 / 097328 A1 exhibits very high heat recovery efficiency by directly heating ceramic packing materials using high-temperature exhaust gas, contacting room-temperature air with high-temperature air to regenerate heat, and then drying and incinerating the high-moisture waste using the high-temperature air. Therefore, the additional fuel costs required to incinerate the high-moisture waste can be significantly reduced.
[0006] In industry, wet materials with a high organic content are common products or by-products of processes. The goal is to dispose of these materials, use them for energy recovery, or at least minimize the amount of material requiring disposal. This is particularly the case with sewage sludge. Due to legal requirements, sewage sludge is increasingly being incinerated. Incineration takes place in large-scale plants using state-of-the-art technology. Small and medium-sized sewage sludge incineration plants are also technically feasible.
[0007] The organic solids content of sewage sludge must first be dried before it can be incinerated. With sewage sludge, mechanical dewatering is possible down to a maximum dry matter content of approximately 25%. To maintain self-sustaining or autothermal incineration of sewage sludge in a largely adiabatic reactor (i.e., a reactor with little or no heat loss), a dry matter content of at least 45 wt.% is typically required. With a dry matter content of less than 45 wt.%, incineration is also possible, but this requires additional auxiliary energy (supporting firing), which may require the use of expensive primary fuels.
[0008] Sewage sludge is incinerated in incineration plants, where the sewage sludge is fed into bunkers. From there, the sewage sludge is passed through dryers to reduce the moisture content below a certain limit. This dried sewage sludge is then burned in incinerators. Fluidized bed furnaces are often used to incinerate sewage sludge, but other state-of-the-art combustion processes are also employed. Typically, the thermal energy of the resulting hot flue gas is used to dry the sewage sludge.
[0009] The current state of the art is the collection of sewage sludge, which may have been mechanically dewatered, from a large number of wastewater treatment plants into a large, central, stationary treatment plant as a mono-incineration plant, usually with a thermal output of more than 20 MW, or as co-incineration in large coal-fired power plants with typically 500-2,000 MW thermal output. Such plants combine wastewater treatment plants in several districts.
[0010] The disadvantage is that the sewage sludge must be transported to centralized treatment plants, which is complex and involves considerable costs, and may also require interim storage. Furthermore, large-scale centralized treatment plants are not widely accepted by the public.
[0011] Recent amendments to the Sewage Sludge Ordinance require the recovery of phosphorus from sewage sludge, and at the same time, soil-based sewage sludge utilization is to be significantly restricted. This means significantly increased effort for sewage sludge treatment and thus a significant increase in costs for plant operators.
[0012] Given the aforementioned disadvantages, incineration in smaller, decentralized plants, which can possibly be installed directly on the premises of the respective wastewater treatment plant, is advantageous. For the operation of generally smaller, decentralized plants for incineration, energy generation, or waste disposal, discontinuous operation is often required to reduce costs, particularly for personnel. For example, operation from Monday to Friday is desired, while a shutdown or, preferably, a heat-retaining operation should take place over the weekend. However, heat-retaining operation is costly when using primary fuels and undesirable due to the emission of fossil CO2.
[0013] The technical object of the present invention was therefore to provide an incineration plant and a method which enables decentralised treatment and / or decentralised disposal of organic material, in particular that with a high moisture content or of wet materials such as sewage sludge, in smaller plants, allows discontinuous operation, reduces the use of auxiliary energy and shortens the start-up time of the plant.
[0014] The technical problem is solved by a combustion plant for the combustion of liquid, solid or gaseous fuels, comprising a combustion chamber with fuel supply and combustion air supply, a flue gas path and a thermal storage, wherein the combustion plant is designed to guide at least a portion of the thermal energy of the flue gas or combustion gas led from the combustion chamber into the thermal storage in an operating state in which the combustion of the fuel takes place in the combustion chamber, and the thermal storage is designed to store the thermal energy, wherein according to the invention the combustion plant is further designed to conduct at least a portion of the thermal energy of the flue gas or combustion gas led from the combustion chamber into the thermal storage in an operating state in which the combustion in the combustion chamber is switched off, ieno combustion takes place in the combustion chamber, to transfer thermal energy from the thermal storage into the combustion chamber, whereby the thermal energy enters the combustion chamber by means of a gaseous heat transfer medium, preferably air.
[0015] The transfer of thermal energy from the thermal storage unit serves to maintain heat during periods of non-combustion or to prepare for restarting the combustion plant by increasing the temperature of the combustion chamber after it has cooled down before restarting combustion, or by bringing it to a desired level. According to the invention, the thermal energy enters the combustion chamber via a gaseous heat transfer medium, preferably air. This means that the thermal energy for maintaining heat in the combustion chamber comes from outside the combustion chamber, specifically from a separate thermal storage unit, rather than using the heat storage capacity of the combustion chamber walls.
[0016] In order to allow discontinuous operation of the incineration plant and at the same time reduce the use of auxiliary energy sources such as natural gas, diesel, light oil, or electricity for heat-keeping operation, thereby shortening the start-up time, the present invention proposes charging a thermal storage device during regular operation of the incineration plant. This thermal storage device is then discharged, in particular to keep the plant warm while combustion is stopped and / or to more quickly restart the incineration plant. The advantages of the device according to the invention are therefore the reduction in the amount of auxiliary energy required and thus lower costs and lower CO2 emissions, as well as faster restart of the incineration plant.Further advantages arise from the reduced temperature fluctuations of the component materials (such as the combustion chamber, heat exchanger, air preheater, and flue gas cleaning system), resulting in less wear and tear and thus lower costs. The incineration plant according to the invention is not only suitable for incinerating sewage sludge, but is also suitable for any fuel. The incineration plant according to the present invention is therefore suitable for discontinuous operation, for heat-maintaining operation, and / or for faster restart, regardless of the fuel used.
[0017] The combustion plant according to the invention is preferably designed such that, in an operating state in which the combustion in the combustion chamber is switched off, thermal energy can be transferred from the thermal storage into the combustion chamber and optionally into other components of the plant for at least 1.0 hours, preferably at least 2.0 hours, more preferably at least 3.0 hours, even more preferably at least 5.0 hours, particularly preferably at least 10.0 hours, very particularly preferably at least 20.0 hours, most preferably at least 50.0 hours.
[0018] The combustion plant according to the invention is preferably designed such that, if a time interval in which the combustion in the combustion chamber is switched off is 8.0 to 100.0 hours, preferably 20.0 to 80.0 hours, before the combustion starts again, heat energy can be transferred from the thermal storage into the combustion chamber and optionally into other components of the plant over the entire time interval in which the combustion in the combustion chamber is switched off, or a part thereof.
[0019] Particularly preferably, the combustion plant is designed such that heat energy is transferred from the thermal storage into the combustion chamber and optionally into other components of the plant over a portion of the time interval in which combustion in the combustion chamber is switched off, in order to increase the temperature in the combustion chamber so that, at the time of restarting combustion, a higher temperature, preferably at least 100°C higher, more preferably at least 200°C higher, even more preferably at least 300°C higher, is reached in the combustion chamber than if this heat energy were not supplied to the combustion chamber. In this configuration, the combustion chamber is brought to a desired higher temperature after any cooling down following shutdown before restarting (i.e. start of combustion).
[0020] The technical measures mentioned, such as keeping the system warm and warming it up before restarting, can be used without the use of additional primary energy as long as the specifically designed thermal storage system can provide sufficient heat energy.
[0021] In the process according to the invention, the plant size is based on the requirements of the decentralized generation of wet feedstocks, i.e., for example, on the size of a single wastewater treatment plant. For example, a plant with a thermal output of 300 kW is suitable for a wastewater treatment plant with an annual generation of approximately 3,000 t of mechanically dewatered sludge, which corresponds to a municipality with approximately 40,000 inhabitants. The use of the plant according to the invention saves the costs of intermediate storage, transport, and disposal. Decentralized and small-scale plants are more readily accepted by the population than large, centralized plants.
[0022] For such a plant, for example, an appropriately insulated thermal storage tank with a volume of approximately 1-1.5 m3< would be suitable, filled with a particle bed as a storage medium, for example consisting of gravel, sand or other heat-resistant bulk materials with preferably a high specific heat capacity, to provide thermal energy for the heat-holding operation and / or for heating the combustion chamber (to approximately 400°C in the fluidized bed) for the restart of an incineration plant with fluidized bed combustion for up to 55.0 hours.
[0023] As mentioned above, the combustion chamber is equipped with a fuel supply and a combustion air supply. The main fuel, preferably organic materials that may also have a moisture content, or wet materials containing organic matter, particularly preferably sewage sludge, is fed into the combustion chamber via the fuel supply. A start-up and auxiliary burner, supplied with fuels such as natural gas, diesel, or light oil, is advantageously assigned to the combustion chamber. Since the combustion of the main fuel advantageously occurs automatically, the start-up and auxiliary burner is usually out of operation.
[0024] In principle, any type of combustion system is suitable for the incineration plant according to the present invention, such as fluidized bed combustion, fixed bed combustion, multi-level combustion, cycloidal combustion, grate combustion, melting furnace, and rotary kiln. Fluidized bed combustion is particularly preferred, with a temperature of at least 350°C, particularly preferably at least 400°C, being maintained in the fluidized bed during holding operation or being present upon restart.
[0025] In a preferred embodiment, the combustion plant according to the present invention further comprises a first heat exchanger configured, in an operating state in which the combustion of the fuel takes place in the combustion chamber, to be flowed through by at least a portion of the flue gas stream and to dissipate a portion of the thermal energy of the flue gas stream for further use. The further use can be, for example, the generation of electricity, the heating of rooms, and in particular the use of the heat to dry the fuel, preferably organic material, in particular organic material with a dry matter content of less than 45 wt. %, or wet materials containing organic material, particularly preferably sewage sludge.
[0026] The inventive combustion plant containing a thermal storage unit is suitable for all fuels for which discontinuous operation, i.e., operation including, for example, weekend shutdowns, is appropriate. These fuels can be biomass, production residues (e.g., biomass-like fuels from wood processing), processed waste, agricultural residues, or biomass from landscape maintenance. Discontinuous operation is appropriate when the plant is relatively small and, for cost reasons, should not be operated on weekends, for example.
[0027] Since all solid fuels generally contain some water content (unless they come directly from a production step that operates at high temperatures), pre-drying is often advisable for these fuels as well. In the case of fuels other than sewage sludge, excess heat usually remains, allowing energy to be available for other uses in addition to the potential drying of the fuel used. Depending on the water content and the required drying level, the energy flows shift to pre-drying, thermal storage, or other uses.
[0028] However, when sewage sludge is used, the energy for other uses is typically lost, as most of the energy is used for pre-drying and a small portion for storage. For example, with biomass with a higher calorific value and lower moisture content, there may be a residual energy stream that can be used for other purposes.
[0029] In principle, all known heat exchangers and heat transfer media are suitable as heat exchangers and the heat transfer media used therein, which depends largely on the desired use of the thermal energy, for example water vapor, steam, hot water, thermal oil or even air.
[0030] In particular for the combustion of organic materials, preferably organic material with a dry matter content of less than 45% by weight, orof sewage sludge and other wet substances containing organic material, it is provided in a preferred embodiment that the incineration plant further comprises a dryer for drying the fuel and a first heat exchanger through which part of the flue gas flow is passed, and wherein the first heat exchanger is designed to transfer part of the thermal energy of the flue gas flow into the dryer in an operating state in which the combustion of the fuel takes place in the combustion chamber.
[0031] In a further preferred embodiment, the combustion plant contains an air preheater which is designed to be flowed through by at least a part of the flue gas flow in an operating state in which the combustion of the fuel takes place in the combustion chamber, in order to preheat the combustion air fed into the combustion chamber by means of a part of the thermal energy of the flue gas flow, preferably of the flue gas flow which has already been passed through the first heat exchanger and / or the thermal storage.
[0032] In a preferred embodiment, the thermal storage device is designed to be directly flowed through by at least a portion of the flue gas in an operating state in which the combustion of the fuel takes place in the combustion chamber.
[0033] In a further preferred embodiment, the combustion plant is designed, in an operating state in which the combustion in the combustion chamber is switched off, to guide a gaseous heat transfer medium, particularly preferably air, through the thermal storage and then through the combustion chamber in order to transfer thermal energy from the thermal storage into the combustion chamber.
[0034] The combustion process is essentially the key to quickly restarting an incineration plant. To minimize the use of auxiliary fuel, the primary goal is to maintain the combustion chamber temperature at a certain level after combustion has stopped, or to bring it to a certain level before restarting. Therefore, in heat-retaining mode, the incineration plant is preferably configured so that at least the combustion chamber is supplied with thermal energy from the thermal storage system, which was charged during regular operation (the operating state in which fuel combustion takes place in the combustion chamber).
[0035] The same applies to the heat exchanger, which, during normal operation, extracts heat from the flue gas stream to dry the fuel and transfers it to the dryer. Therefore, the heat exchanger is preferably also supplied with thermal energy from the thermal storage device while the furnace is switched off. Therefore, in a preferred embodiment, the combustion plant is further configured, in an operating state in which combustion in the combustion chamber is switched off, to pass the gaseous heat transfer medium heated in the thermal storage device first through the combustion chamber and then through the first heat exchanger and optionally, then through the air preheater and, further optionally, then through the flue gas cleaning system, in order to transfer thermal energy to the first heat exchanger and, if applicable, to the air preheater and, if applicable, to the flue gas cleaning system.
[0036] In principle, any known flue gas cleaning system is suitable. The type and design of the flue gas cleaning system depend on the cleaning task, which is largely determined by the fuel and the relevant applicable regulations.
[0037] In a preferred embodiment, a partial flow of the purified flue gas is fed into the combustion chamber (flue gas recirculation) to regulate the combustion temperature and to reduce NOx formation (low-NOx operation).
[0038] In a further preferred embodiment, the combustion plant further comprises a second heat exchanger which is configured to be flowed through by at least a portion of the flue gas stream in an operating state in which the combustion of the fuel takes place in the combustion chamber and to transfer a portion of the thermal energy of the flue gas stream into the thermal storage by means of a heat transfer medium.
[0039] The advantage of indirect loading—heating the thermal storage medium using a heat transfer medium heated by the flue gas flow in a heat exchanger—is that the storage material has no direct contact with the flue gas. This keeps flue gas components such as dust or chemical substances away from the storage material.
[0040] In a preferred embodiment, the second heat exchanger is connected in parallel to the first heat exchanger or in series with the first heat exchanger with respect to the flue gas flow. If the second heat exchanger is connected in series with the first heat exchanger, the second heat exchanger is preferably arranged upstream of the first heat exchanger with respect to the flue gas flow. Furthermore, heat exchangers connected in series can also be arranged in a single structural unit.
[0041] In a further preferred embodiment, the heat transfer medium conveyed between the second heat exchanger and the thermal storage unit is gaseous. In an operating state in which fuel combustion takes place in the combustion chamber, the heat transfer medium indirectly heated in the second heat exchanger transfers the thermal energy through direct contact to the storage material of the thermal storage unit. After the heat transfer medium has passed through the thermal storage unit, it is preferably returned to the second heat exchanger for reheating.
[0042] In a preferred embodiment, the combustion plant is designed to conduct thermal energy from the thermal storage into the combustion chamber by means of a gaseous heat transfer medium, preferably air, in an operating state in which the combustion in the combustion chamber is switched off.
[0043] In a preferred embodiment, the combustion plant is configured, in an operating state in which combustion in the combustion chamber is switched off, to further guide the gaseous heat transfer medium, after it has been guided through the combustion chamber, through the first heat exchanger and optionally, subsequently through the air preheater and, further optionally, subsequently through the flue gas cleaning plant, in order to transfer thermal energy into the first heat exchanger and, if appropriate, into the air preheater and, if appropriate, into the flue gas cleaning plant.
[0044] In a further preferred embodiment, the heat transfer medium conveyed between the second heat exchanger and the thermal storage unit is liquid. In an operating state in which the fuel is being burned in the combustion chamber, the heat transfer medium indirectly heated in the second heat exchanger transfers the thermal energy indirectly to the storage material of the thermal storage unit via a heat exchanger. After the heat transfer medium has transferred the heat to the thermal storage unit, it is preferably returned to the second heat exchanger for reheating.
[0045] In a preferred embodiment, the heat transfer medium guided between the second heat exchanger and the thermal storage is liquid and the combustion plant is designed, in an operating state in which the combustion in the combustion chamber is switched off, to guide thermal energy by means of a gaseous heat transfer medium, preferably air, from the thermal storage into the combustion chamber and optionally further through the first heat exchanger and optionally, subsequently through the air preheater and further optionally, subsequently through the flue gas cleaning plant.
[0046] In an alternative preferred embodiment, the heat transfer medium conducted between the second heat exchanger and the thermal storage is liquid and the combustion plant is set up, in an operating state in which the combustion in the combustion chamber is switched off, to transfer thermal energy from the thermal storage into the second heat exchanger by means of the liquid heat transfer medium and to conduct thermal energy from the second heat exchanger into the combustion chamber by means of a gaseous heat transfer medium, preferably air, and optionally further through the first heat exchanger and optionally, subsequently through the air preheater and further optionally, subsequently through the flue gas cleaning plant.
[0047] In an alternative preferred embodiment, the heat transfer medium conveyed between the second heat exchanger and the thermal storage unit is liquid or gaseous, and the storage material is liquid. In an operating state in which the fuel is being burned in the combustion chamber, the heat transfer medium indirectly heated in the second heat exchanger transfers the thermal energy indirectly via a heat exchanger to the liquid storage material of the thermal storage unit. After the heat transfer medium has transferred the heat to the thermal storage unit, it is preferably returned to the second heat exchanger for reheating.In a preferred embodiment, the combustion plant is configured, in an operating state in which combustion in the combustion chamber is switched off, to transfer thermal energy from the thermal storage device into the second heat exchanger by means of the gaseous or liquid heat transfer medium and to guide thermal energy from the second heat exchanger into the combustion chamber by means of a gaseous heat transfer medium, preferably air, and optionally further through the first heat exchanger and optionally, subsequently through the air preheater and further optionally, subsequently through the flue gas cleaning system.
[0048] For the thermal storage, in principle, all known storage types and storage media are conceivable that can be used for continuous charging during regular operation with heat transfer media. For indirect heating using the thermal energy of the flue gas stream, corresponding storage types and storage media are also known and can be used here. Thus, in a further preferred embodiment, the thermal storage is selected from the group consisting of fixed-bed particle storage, storage containing profiled sheets, storage containing ceramic storage media, and storage containing storage media selected from the group consisting of salt, pressurized water, and oils.
[0049] The present invention further provides a method for the combustion of liquid, solid or gaseous fuels in the combustion plant described above, wherein in an operating state in which the combustion of the fuel takes place in the combustion chamber, at least part of the thermal energy of the flue gas led from the combustion chamber is fed into the thermal storage and the thermal storage stores the thermal energy, wherein according to the invention in an operating state in which the combustion in the combustion chamber is switched off, thermal energy is transferred from the thermal storage into the combustion chamber, wherein the thermal energy is introduced into the combustion chamber by means of a gaseous heat transfer medium, preferably air.
[0050] In a preferred method, in an operating state in which the combustion in the combustion chamber is switched off, thermal energy is transferred from the thermal storage into the combustion chamber and optionally into other components of the system over a period of at least 1.0 hours, preferably at least 2.0 hours, more preferably at least 3.0 hours, even more preferably at least 5.0 hours, particularly preferably at least 10.0 hours, very particularly preferably at least 20.0 hours, most preferably at least 50.0 hours.
[0051] In a preferred method, if a time interval in which combustion in the combustion chamber is switched off is 8.0 to 100.0 hours, preferably 20.0 to 80.0 hours, before combustion starts again, heat energy is transferred from the thermal storage to the combustion chamber over the entire time interval in which combustion in the combustion chamber is switched off, or a part thereof.
[0052] In a particularly preferred method, if a time interval in which the combustion in the combustion chamber is switched off is 8.0 to 100.0 hours, preferably 20.0 to 80.0 hours, before the combustion starts again, thermal energy is transferred from the thermal storage into the combustion chamber over part of the time interval in order to increase the temperature in the combustion chamber so that at the time of the restart of the combustion a higher temperature, preferably a temperature that is at least 100°C higher, more preferably a temperature that is at least 200°C higher, even more preferably a temperature that is at least 300°C higher, is reached in the combustion chamber than if this thermal energy were not supplied to the combustion chamber.
[0053] In a preferred process, organic material, including that with moisture content, or wet materials containing organic material, preferably sewage sludge, are used as fuel. This material, in particular the sewage sludge, is preferably dried, as already described above, using the thermal energy removed from the flue gas stream to such an extent that it can be burned in the combustion chamber. In a further preferred process, wet materials containing organic material, preferably sewage sludge, or organic material with a dry matter content of less than 45 wt.-% is used as fuel, wherein the fuel is dried in a dryer and, in an operating state in which the combustion of the fuel takes place in the combustion chamber, part of the thermal energy of the flue gas flow is transferred via a first heat exchanger into the dryer, and in an operating state in which the combustion in the combustion chamber is switched off, thermal energy from the thermal storage is additionally fed into the first heat exchanger and preferably via this into the dryer.
[0054] In a further preferred method, thermal energy is passed through the first heat exchanger and optionally, subsequently through the air preheater and further optionally, subsequently through the flue gas cleaning system, for transferring thermal energy into the first heat exchanger and optionally into the air preheater and optionally into the flue gas cleaning system.
[0055] The present invention further provides a use of a thermal storage device and a method for keeping warm and / or heating up a combustion chamber of a combustion plant for the combustion of liquid, solid or gaseous fuels, wherein in an operating state in which the combustion of the fuel takes place in the combustion chamber, at least part of the thermal energy of the flue gas led from the combustion chamber is fed into the thermal storage device and the thermal storage device stores the thermal energy, wherein in an operating state in which the combustion in the combustion chamber is switched off, thermal energy is transferred from the thermal storage device into the combustion chamber, wherein the thermal energy is introduced into the combustion chamber by means of a gaseous heat transfer medium, preferably air.
[0056] The present invention is described in more detail in the following figures: In Figure 1The regular operation of the combustion plant according to the invention is shown, wherein the thermal storage C is loaded. In a furnace A, fuel 1 and combustion air 8 are brought together to carry out the combustion. The flue gas 2 produced by the combustion in the combustion chamber A leaves the furnace A. A portion 3 of the flue gas stream 2 is diverted and passed through the thermal storage C, which is thus heated during regular operation of the combustion plant. The flue gas 3 leaves the thermal storage C cooled 3'.
[0057] The portion 4 of the flue gas 2 not directed to the thermal storage device C is passed through a heat exchanger B, where thermal energy is transferred to a heat transfer medium 9 for further use. This further use can be fuel drying (not shown in the figure). The partially cooled flue gas 4', which comes from the heat exchanger B, is fed into an air preheater D, where the air 8 required for combustion is preheated by heating ambient air 7.
[0058] The further cooled flue gas 4" is combined with the cooled flue gas partial stream 3' emerging from the thermal storage C and together fed into the downstream flue gas cleaning system E. Among other things, care must be taken to ensure that the flue gas stream 5 combined from 3' and 4" does not fall below the required inlet temperatures of the flue gas cleaning system E. Likewise, heat exchanger B and air preheater D must be energetically coordinated so that sufficient preheating of the combustion air 7 / 8 for the furnace A takes place.
[0059] According to the Figure 1 In the circuit shown, a partial flow 3 of the flue gas 2 emerging from the combustion is passed "directly" through the heat storage C, so that a direct heat transfer to the storage material takes place.
[0060] In Figure 2the keep-warm operation or warm-up when restarting the combustion plant is shown, whereby the thermal storage C is discharged to keep the furnace A, the heat exchanger B, the air preheater D and the flue gas cleaning E warm. If the plant is transferred to keep-warm operation, the firing in the combustion chamber A is stopped and ambient air 7 is passed through the thermal storage C and the air 7 is heated therein. This heated air 10 is passed through these to keep the components furnace A, heat exchanger B, air preheater D and flue gas cleaning E warm.
[0061] In Figure 3the keep-warm operation of the combustion plant is shown, whereby the thermal storage C is discharged in order to keep the furnace A and the heat exchanger B warm. The furnace A and, if necessary, also the heat exchanger B are essentially decisive for the rapid restart of the combustion plant using the smallest possible quantities of auxiliary fuel. Therefore, in keep-warm operation, ambient air 7 is passed through the thermal storage C and heated up therein. This heated air 10 is passed through the furnace A components and, advantageously, the heat exchanger B components to keep them warm. In this circuit variant, the keeping of the air preheater D and the flue gas cleaning system E is preferably dispensed with and the air 10, which has since cooled down, is released directly into the environment.
[0062] In Figure 4 is a modification of the Figure 1described circuit. Here, the flue gas coming from the thermal storage tank C is mixed in upstream of the air preheater. The part 4 of the flue gas 2 not directed to the thermal storage tank C is passed through a heat exchanger B, where the sensible heat is transferred to a heat transfer medium 9 for further use. The partially cooled flue gas 4' is combined with the cooled flue gas partial stream 3' emerging from the thermal storage tank C and together (3' + 4') is fed into the downstream air preheater D, in which the air 8 required for combustion is preheated by heating ambient air 7. The cooled flue gas stream 5 emerging from the air preheater D is fed into the downstream flue gas cleaning system E.
[0063] According to the Figure 4In the circuit shown, a partial flow 3 of the flue gas 2 emerging from the combustion is passed "directly" through the heat storage C, so that a direct heat transfer to the storage material takes place.
[0064] In Figure 5 A circuit is shown in which the heat from the flue gas stream is indirectly fed to the heat storage unit. Another possible variant is to transfer the heat contained in the flue gas partial stream 3 to a heat transfer medium 11 using a heat exchanger F (second heat exchanger). This heat transfer medium 11, in turn, transfers the heat to the thermal storage unit C.
[0065] Heat transfer by means of 11 can be achieved in four basic ways: 1. The heat transfer medium 11, which was indirectly heated in the heat exchanger F, transfers the heat through direct contact to the storage material of the thermal storage C. 2. The heat transfer medium 11, which was indirectly heated in the heat exchanger F, transfers the heat through direct contact to the storage material of the thermal storage C and is then returned to the heat exchanger F for reheating. 3. The heat transfer medium 11, which was indirectly heated in the heat exchanger F, transfers the heat indirectly, i.e. via heat exchanger, to the storage material of the thermal storage C. 4. The heat transfer medium 11, which was indirectly heated in the heat exchanger (F), transfers the heat indirectly, i.e. via heat exchanger, to the storage material of the thermal storage C and is then returned to the heat exchanger F for reheating.
[0066] Basically, the coupling of the flue gas partial flow 3' into the main flue gas path is again carried out by the Figure 1 and Figure 4 described variants are available: Coupling after the air preheater (D) (here in Figure 5 shown) or coupling in front of the air preheater (not in Figure 5 shown, analogous to Figure 4 ). Advantages of this in Figure 5 The advantage of the illustrated option for thermally "charging" the thermal storage C is that the storage material has no direct contact with the flue gas. This keeps flue gas components such as dust or chemical substances, which can vary depending on the fuel 1, away from the storage material.
[0067] In Figure 6 The warming mode of the Figure 5Since the furnace A and the first heat exchanger B are essentially responsible for the rapid restart using the smallest possible quantities of auxiliary fuel, as shown in Fig. 3 As shown, the ambient air 7 is also heated in the thermal storage C in the warming mode and is led through the components furnace A and first heat exchanger B to keep it warm. Advantageously, in this circuit variant (analogous to Figure 3 ) the warming of the air preheater D and flue gas cleaning E is dispensed with and the cooled air 10 is released directly into the environment. However, it can also be analogous to Figure 2 Both air preheater D and flue gas cleaning E are flowed through to keep the air warm. These flow variations of the main flue gas path can also be carried out at different times. Thus, the heat can be maintained according to Figure 2at the beginning of the heat-holding process. Shortly before restarting the system, it may be advantageous to also carry out the flow through air preheater D and flue gas cleaning E (analog Figure 3 and Figure 6 ).
[0068] The Figure 7 shows the system with pre-drying of the fuel and direct heating of the thermal storage. In Figure 7an example application for the combustion of moist, water-containing fuels 1' is shown. In a dryer G, the fuel is partially dried 1 with the addition of heat 9 before it is fed into the furnace A. Here, fuels are provided for which pre-drying is useful, such as sewage sludge, moist refuse-derived fuels, waste, or various biomasses. Depending on the type of dryer G, an additional air stream 20 can be used, for example, which is heated with the help of heat 9 in order to at least partially dry the fuel 1'. State-of-the-art dryers can be used here. Depending on the type of dryer selected, the air stream 20 can also be dispensed with. The water expelled during the drying process is typically in vapor form, so-called vapors. Depending on the type of dryer, the stream 21 consists of exhaust air and vapors or just vapors.Exhaust air and vapors, or only vapors 21, are advantageously fed into the combustion process, so that separate purification of the exhaust air and vapors, or only vapors 21, can be dispensed with. According to the state of the art, the water vapor (vapors) generated during drying can also be fully or partially condensed, so that stream 21 can be only a portion of the vapors or a portion of the vapors with air.
[0069] In addition, part of the flue gas 6 can be recirculated after the flue gas cleaning E (see 22) and fed into the furnace A. Depending on the selection of the combustion system, this is advantageous for temperature control within the furnace and can be used to reduce the nitrogen oxides produced in the combustion process.
[0070] The loading of the storage for the Figure 7 The example shown is analogous to the procedure in Figure 1by means of a direct heat exchange between the partial flue gas flow 3 and the storage material in the thermal storage C.
[0071] Figure 8 shows in principle the already in Figure 2 described keeping warm in Figure 7 shown device. In the keep-warm mode, air 7 is passed through the thermal storage C and heated, and is then passed through the furnace A and the first heat exchanger B. In order, for example, to also preheat the dryer G from a certain point in time during the keep-warm mode, the heat transfer medium 9 can be heated with the keep-warm stream 10 in order to transfer heat to the dryer G. In this case, the heat transfer medium 9 can also be circulated.
[0072] Figure 9 shows in principle the already in Figure 8described warming. To improve efficiency, the flow 10' is recirculated 23. For temperature control, a portion can be replaced by fresh air 7. Alternatively, it can also be operated in a circle, at least temporarily and depending on the temperature level, without having to release a flow 10 to the environment. In this case, the heat transfer medium 9 can also be operated in a circle. Here, too, Figure 9 the warming of the dryer G is included (analog Figure 8 )
[0073] The Figure 10 shows the system with pre-drying of the fuel and indirect heating of the thermal storage. In Figure 10An exemplary application for the combustion of moist, water-containing fuels 1' is shown (analogous to Figure 7). In a dryer G, the fuel is partially dried 1 with the addition of heat 9 before it is fed into the furnace A. Here, fuels are provided for which pre-drying is useful, such as sewage sludge, moist refuse derived fuels, waste, or various biomasses. In contrast to Figure 7Here, the heating of the heat storage tank takes place indirectly, i.e., the heat from the flue gas partial stream 3 is transferred via a heat exchanger F to a heat transfer medium 11 in the storage tank. Heat transfer from the medium 11 to the storage tank can occur either through direct contact between the medium and the storage material or through indirect heat transfer, with a heat exchanger in the storage tank transferring the heat from the medium to the storage material. Any state-of-the-art media for direct heat transfer or for indirect heat transfer can be used as the heat transfer medium.
[0074] Figure 11 shows in principle the already in Figure 8 shown warming operation of the system Figure 10To improve efficiency, the flow 10' is recirculated 23. For temperature control, part of it can be replaced by fresh air 7. Alternatively, it can be operated in a circle, at least temporarily and depending on the temperature level, without having to release a flow 10 to the environment.
[0075] Figure 12 shows the loading of the thermal storage by indirect heat transfer, where the heat exchanger F is located in the main flue gas flow. Figure 5 The basic procedure for the indirect loading of the storage tank C by a heat transfer medium 11 has already been described, which was previously heated with a partial flow 3 of the main flue gas flow 2. In contrast to the Figure 5 is in the here in Figure 12In the variant shown, the heat for charging the thermal storage is taken from the main flue gas flow 2 leaving the furnace A by means of a heat exchanger F. In the process, the heat transfer medium 11 is heated, which transfers the heat to the thermal storage C. The transfer of heat from the medium 11 to the thermal storage C can in turn take place directly, through direct contact with the storage material, or through indirect transfer to the storage material. The remaining heat of the flue gas flow 2 is transferred in the first heat exchanger B to the heat transfer medium 9, which can be used for any purpose and / or e.g. for pre-drying the fuel (as in Figure 10 shown) can be used.
[0076] The heat exchangers F and B are in Figure 12are arranged in a structural unit and can be arranged in any desired manner, ie, the transfer surfaces can be offset from one another, connected in series or parallel, or in combinations thereof. The heat transfer media 9 and 11 can be the same or different, and any media for direct heat transfer or for indirect heat transfer according to the state of the art can be used as the heat transfer medium.
[0077] Figure 13 basically describes the same functional principle as in Figure 12 However, in Figure 13 the heat exchangers F and B are again connected in series in the main gas flow.
[0078] Figure 14 describes a refinement of the Figure 13shown system, in that the heat exchangers F and B are again connected in series in the main gas flow, but the flue gas flow 2 can be completely (or partially, not shown here) bypassed by the heat exchanger F for control reasons. This is necessary, for example, when the thermal storage C is fully loaded and no further heat is to be transferred to the thermal storage. Then, by bypassing the heat exchanger F, the heat transfer to the heat transfer medium 11 is interrupted and the entire heat carried by the main flue gas flow 2 is available to the first heat exchanger B. In the Figure 14 a further variant is not shown, according to which only a part of the flue gas flow 2 is decoupled before heat exchanger F and recoupled before heat exchanger B. List of reference symbols
[0079] AFire chamber / Combustion system Burster heat exchanger / heat exchanger CThermal storage DAir preheater ERFlue gas cleaning FSecondary heat exchanger / heat exchanger GDryer 1Fuel / Feedstock 1'Fuel / Feedstock with higher moisture / water content than 1 2Flue gas from thermal conversion 3, 3'Partial flue gas flows 4, 4', 4"Partial flue gas flows 5Cooled flue gas 6, 6'Partial flue gas flow 7Ambient air 8Preheated air 9Heat transfer medium 10, 10'Air heated in the thermal storage 11Heat transfer medium 20Air 21Exhaust air and vapors or vapors or portions of vapors with air 22Recirculated flue gas 23(Partial) stream of recirculated air 24Air and recirculated air
Claims
1. A combustion installation for combusting liquid, solid or gaseous fuels, comprising a combustion chamber (A) with a fuel feed (1) and a combustion air feed (8), a flue gas path (2, 3, 3', 4, 4', 4", 5, 6, 6') and a heat accumulator (C), wherein the combustion installation is configured in a way that, in an operating state in which fuel combustion inside the combustion chamber (A) is taking place, to conduct at least part of the thermal energy of the flue gas (2, 3) conducted out of the combustion chamber (A) into the heat accumulator (C), and the heat accumulator (C) is configured to store the thermal energy, characterized in that said combustion installation is further configured, in an operating state in which combustion inside the combustion chamber (A) is turned off, to transfer thermal energy from the heat accumulator (C) into the combustion chamber (A), wherein the entry of the thermal energy into the combustion chamber (A) occurs by way of a gaseous heat carrier medium (10, 10'), preferably air.
2. The combustion installation according to claim 1, further comprising a first heat exchanger (B) that is configured in a way, in an operating state in which fuel combustion inside the combustion chamber (A) is taking place, that at least a part of the flue gas stream (4) is streaming through it and a part of the thermal energy of the flue gas stream is being diverted (9) for further use, preferably for drying (G) of the fuel (1'), preferably of organic material, particularly of organic material having a dry matter content of less than 45 wt-%, or of wet substances containing organic material, particularly preferred sewage sludge.
3. The combustion installation according to claim 1 or 2, further comprising an air preheater (D) that is configured in a way, in an operating state in which fuel combustion inside the combustion chamber (A) is taking place, that at least a part of the flue gas stream (4') is flowing through it for preheating the combustion air (8) fed to the combustion chamber (A) by way of a part of the thermal energy of the flue gas stream, preferably of the flue gas stream (4', 3') that has already been conducted through a first heat exchanger (B) and / or the heat accumulator (C).
4. The combustion installation according to any one of claims 1 to 3, wherein the heat accumulator (C) is configured in a way, in an operating state in which fuel combustion inside the combustion chamber (A) is taking place, that at least a part of the flue gas (3) is streaming directly through it.
5. The combustion installation according to any one of claims 1 to 4, wherein the combustion installation is configured, in an operating state in which combustion inside the combustion chamber (A) is turned off, to conduct a gaseous heat carrier medium (7) through the heat accumulator (C) and subsequently through the combustion chamber (A) for transferring thermal energy from the heat accumulator (C) into the combustion chamber (A).
6. The combustion installation according to at least claims 2 and 5, wherein the combustion installation, in an operating state in which combustion in the combustion chamber (A) is turned off, is further configured to conduct the gaseous heat carrier medium (10, 10'), heated up inside the heat accumulator (C), through the first heat exchanger (B) and optionally, in addition according to claim 3, subsequently through the air preheater (D) and, still optionally, subsequently through a flue gas purification unit (E), in order to transfer thermal energy into the first heat exchanger (B) and, if applicable, into the air preheater (D) and, if applicable, into the flue gas purification unit (E).
7. The combustion installation according to any one of claims 1 to 3, further comprising a second heat exchanger (F) that is configured in a way, in an operating state in which fuel combustion inside the combustion chamber (A) is taking place, that at least a part of the flue gas stream (3) is streaming through it, and a part of the thermal energy of the flue gas stream is transferred by way of a heat carrier medium (11) into the heat accumulator (C).
8. The combustion installation according to at least claims 2 and 7, wherein, with respect to the flue gas stream, the second heat exchanger (F) is connected in parallel to the first heat exchanger (B) or in series with the second heat exchanger (B), preferably upstream of the first heat exchanger (B).
9. The combustion installation according to claim 7 or 8, wherein the heat carrier medium (11) conducted between the second heat exchanger (F) and the heat accumulator (C) is gaseous.
10. The combustion installation according to any one of claims 2 to 9, wherein the combustion installation is configured, in an operating state in which combustion inside the combustion chamber (A) is turned off, to conduct the gaseous heat carrier medium (10, 10'), after it has been conducted through the combustion chamber (A), further through the first heat exchanger (B) and, optionally, in addition according to claim 3, subsequently through the air preheater (D) and, still optionally, subsequently through a flue gas purification unit (E), for transferring thermal energy into the first heat exchanger (B), and, if applicable, into the air preheater (D) and, if applicable, into the flue gas purification unit (E).
11. The combustion installation according to any one of claims 1 to 10, wherein the heat accumulator (C) is selected from the group consisting of fixed-bed particle accumulators, accumulators comprising profiled steel sheets, accumulators comprising ceramic storage media.
12. The combustion installation according to claim 7 or 8, wherein the heat carrier medium (11) conducted between the second heat exchanger (F) and the heat accumulator (C) is liquid, and the combustion installation is configured, in an operating state in which combustion of the fuel inside the combustion chamber (A) is taking place, to transfer the thermal energy of the heat carrier medium (11) heated indirectly inside the second heat exchanger (F) to the storage material of the heat accumulator (C).
13. The combustion installation according to claim 7 or 8, wherein the heat carrier medium (11) conducted between the second heat exchanger (F) and the heat accumulator (C) is liquid or gaseous and the storage material of the heat accumulator (C) is liquid, and the combustion installation is configured, in an operating state in which combustion of the fuel inside the combustion chamber (A) is taking place, to transfer the thermal energy of the heat carrier medium (11) heated indirectly inside the second heat exchanger (F) to the liquid storage material of the heat accumulator (C).
14. The combustion installation according to any one of claims 1 to 8 and 12 to 13, wherein the heat accumulator (C) comprises storage media selected from the group consisting of salt, pressurized water, oils.
15. A method for combusting liquid, solid or gaseous fuels in a combustion installation according to any one of claims 1 to 14, wherein, in an operating state in which combustion inside the combustion chamber (A) is taking place, at least a part of the thermal energy of the flue gas (2, 3) conducted out of the combustion chamber (A) is fed into the heat accumulator (C) and the heat accumulator (C) storing the thermal energy, characterized in that, in an operating state in which combustion inside the combustion chamber (A) is turned off, thermal energy is transferred from the thermal accumulator (C) into the combustion chamber (A), wherein the thermal energy is fed into the combustion chamber (A) by way of a gaseous carrier medium (10, 10'), preferably air.
16. The method according to claim 15, wherein, if a time interval during which combustion inside the combustion chamber (A) is turned off is 8.0 to 100.0 hours before combustion starts again, thermal energy is transferred from the heat accumulator (C) into the combustion chamber (A) throughout the entire time interval, or a part thereof, during which combustion inside the combustion chamber (A) is turned off.
17. The method according to claim 15, wherein, if a time interval during which combustion inside the combustion chamber (A) is turned off is 8.0 to 100.0 hours before combustion starts again, thermal energy is conducted from the heat accumulator (C) into the combustion chamber (A) during a part of the time interval in order to raise the temperature inside the combustion chamber (A), so that at the time when combustion starts again a higher temperature is reached inside the combustion chamber (A), preferably a temperature at least 100 °C higher, further preferred a temperature at least 200 °C higher, even further preferred a temperature at least 300 °C higher than if this thermal energy would not be fed into the combustion chamber (A).
18. The method according to any one of claims 15 to 17, wherein organic material, particularly organic material having a dry matter content of less than 45 wt-%, or wet substances containing organic matter, preferably sewage sludge, is used as a fuel, wherein the fuel (1') is dried in a dryer (G), and in an operating state in which combustion of fuel inside the combustion chamber (A) is taking place, a part of the thermal energy of the flue gas stream (2, 4) is transferred (9) via a first heat exchanger (B) into the dryer (G), and, in an operating state in which combustion inside the combustion chamber (A) is turned off, thermal energy from the heat accumulator (C) is additionally conducted into the first heat exchanger (B) and preferably via the same into the dryer (G).