Plant and process for energy storage and method for controlling a heat carrier in a plant and / or process for energy storage
The energy storage system addresses inefficiencies by actively controlling working fluid parameters to decouple heat carrier temperatures from ambient conditions, simplifying the system and reducing costs while maintaining efficiency.
Patent Information
- Application Number
- JP2023526033
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-11-05
- Filing Date
- 2021-10-27
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2041-10-27
AI Technical Summary
Existing energy storage systems dissipate heat to the environment, leading to inefficiencies and increased complexity and cost due to the need for external devices like heat pumps to manage ambient temperature-dependent heat exchange.
A plant and method for energy storage that actively adjusts working fluid parameters to decouple the temperature of the heat carrier from ambient temperature without external devices, using a closed-loop thermodynamic conversion system with a condenser/evaporator to control condensation and evaporation temperatures.
This approach enhances system simplicity, reduces costs, and improves reliability by allowing independent operation from ambient temperature, minimizing heat exchange with the environment.
Smart Images

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Abstract
Description
FIELD OF THE INVENTION
[0001] The object of the present invention is a plant and a method for energy storage. More precisely, the object of the present invention is a system that can absorb / use mechanical / electrical energy from the grid and / or system, for example in periods of excess availability / or poor consumption, maintain the stored energy over time, convert it into mechanical / electrical energy and reintroduce it into the network and / or system upon demand for said mechanical / electrical energy. In particular, the present invention relates to a method for controlling a heat carrier in a plant and / or an energy storage process.
[0002] Background of the Invention
[0003] One such type of system is shown, for example, in public document WO 2020 / 039416, on behalf of the same applicant, showing a process and plant for energy storage. The plant in WO 2020 / 039416 comprises a casing for storing a working fluid different from atmospheric air in a gas phase and in pressure equilibrium with the atmosphere, and a tank for storing such working fluid in a liquid or supercritical phase having a temperature close to its critical temperature, the critical temperature being close to ambient temperature. The plant is configured to perform a closed-loop thermodynamic conversion between the casing and the tank, first in one direction in a charging configuration, and then in the opposite direction in a discharging configuration. In the charging configuration, the plant accumulates heat and pressure, and in the discharging configuration, it generates energy.
[0004] definition
[0005] In this specification and the appended claims, reference is made to the following definitions.
[0006] Thermodynamic Cycle (TC): A thermodynamic transformation from point X to point Y (where X coincides with Y). A TC differs from a CTT (cyclic thermodynamic transformation) described below in that it does not have a mass accumulation within the cycle (important for energy purposes), but a CTT typically operates between two working fluid stores (one initial store and one final store).
[0007] Cyclic Thermodynamic Transformation (CTT): A thermodynamic transformation from point X to point Y and from point Y to point X, not necessarily through the same intermediate points.
[0008] Closed TC and / or CTT: no mass exchange with the atmosphere (important for energy purposes).
[0009] · Open TC and / or CTT: involves mass exchange with the atmosphere (important for energy purposes).
[0010] overview
[0011] For systems of the type described in International Publication WO 2020 / 039416, the applicant observed that due to the mechanical and thermal performance of the plant operating the cyclic thermodynamic conversion (CTT), there is always heat to be disposed of in the environment. For example, assuming a round trip efficiency (RTE) of 80%, 20% is dissipated to the environment. The need to be able to exchange heat with the environment arises from the ability to determine the temperature (and therefore pressure) level of the storage phase of the cyclic thermodynamic conversion (CTT), i.e., the temperature and pressure at which the mass of the working fluid accumulates in liquid form. For example, a relatively low pressure is favorable for system sizing, since it limits the thickness of tanks, piping, etc., and allows for simplified machinery, which leads to a significant reduction in plant implementation costs.
[0012] The applicant has observed that part of the heat dissipated is easily disposable since it is generated at average temperatures, e.g., mechanical and electrical losses, and is transferred to the lubricating oil or cooling air, which is easily disposed of in the environment since the temperatures are usually higher than the ambient temperature.
[0013] Applicant has also observed that some of the heat that is disposed of is instead closer to ambient temperature and more difficult to dispose of. Indeed, in a CTT system, heat can leave at certain points in the process if it has a temperature above ambient / source temperature, while heat can enter if it does not have a temperature above ambient / source temperature.
[0014] To allow heat exchange with the environment, it is known to generate an artificial source at an inlet or outlet at a temperature higher or lower than the ambient temperature via an external device for cyclic thermodynamic conversion (CTT), such as a heat pump or a refrigerator, independent of the ambient temperature, i.e., to decouple the operation of the CTT system from the ambient temperature. Such a type of known solution is illustrated, for example, in WO 2020 / 039416, which shows in FIG. 9 that its secondary circuit, traversed by a secondary fluid or heat carrier (useful for condensation and evaporation), is operatively connected to an auxiliary refrigerator.
[0015] However, the applicant has recognized that using external equipment for the CTT, such as an additional heat pump, makes the plant more complex and therefore more expensive and less reliable.
[0016] Applicant has also observed that the use of external devices causes a degradation in the overall performance of the system.
[0017] Therefore, the applicant has set an objective to be able to freely select / set the condensation and / or evaporation pressure of the working fluid used in the cyclic thermodynamic conversion (CTT) by decoupling the temperature of the heat carrier useful for condensation and evaporation from the ambient temperature without the aid of any system / device external to the cyclic thermodynamic conversion (CTT) itself.
[0018] In particular, the applicant has found that by actively adjusting the parameters of the working fluid it is possible to control the temperature of the heat carrier and to decouple said temperature of the heat carrier from the ambient temperature.
[0019] In particular, the above and further objects are substantially achieved by a plant and method for energy storage of the kind claimed in the accompanying claims and / or described in the following aspects.
[0020] In an independent aspect, the present invention relates to a process for energy storage, comprising carrying out closed-loop thermodynamic conversions between a casing for storing a working fluid different from atmospheric air and a tank for storing said working fluid in liquid or supercritical phase, first in one direction in a charging configuration / phase and then in the opposite direction in a discharging configuration / phase, in which in the charging phase the process stores heat and potential energy in the form of pressure and in the discharging phase generates energy; During the charging phase, the condensation of the working fluid is carried out by heat absorption (and transfer of heat from the working fluid) by a heat carrier, carried out in a condenser / evaporator acting as a cooler / condenser, storing said working fluid in a liquid or supercritical phase; In the discharge phase, evaporation of the working fluid is carried out, starting from the liquid or supercritical phase, by heat transfer from the heat carrier (and heat absorption by the working fluid) in said condenser / evaporator acting as a heater / evaporator; configured for actively adjusting at least one working fluid parameter related to condensation and / or evaporation to actively decouple the temperature of at least one working fluid parameter related to condensation and / or evaporation from an ambient temperature; The at least one actively adjusted parameter of the working fluid is selected from the group: the condenser inlet temperature, i.e. the inlet temperature to the condenser / evaporator during the filling phase, and / or the condensation onset temperature, and / or Condensation end temperature, and / or the condenser outlet temperature, i.e. the condenser / evaporator outlet temperature during the charging phase, and / or the evaporator inlet temperature, i.e. the inlet temperature to the condenser / evaporator during the discharge phase, and / or the evaporation onset temperature, and / or Evaporation end temperature, and / or · Evaporator outlet temperature, i.e. the temperature at the outlet of the condenser / evaporator during the discharge phase.
[0021] In an independent aspect, the present invention relates to a plant for energy storage, comprising: A working fluid different from the atmosphere, at least one casing configured to store a working fluid in a gas phase and in pressure equilibrium with the atmosphere; at least one tank configured to store said working fluid in a liquid or supercritical phase; Piping operably interposed between the casing and the tank, directly and / or indirectly connecting the casing and the tank, the piping separating: at least one filling passage extending from the casing to the tank; at least one discharge path extending from the tank to the casing; at least one expander (optionally an expansion turbine) arranged along the piping and configured to expand the working fluid; at least one compressor (optionally a turbocharger) arranged along the piping and configured to compress the working fluid; at least one condenser / evaporator arranged along the piping and operably coupled to the tank, the condenser / evaporator comprising a heat carrier configured to transfer heat to or absorb heat from the working fluid; the plant is configured to perform a closed loop thermodynamic exchange of a working fluid between the casing and the tank, first in one direction in a charging configuration and then in the opposite direction in a discharging configuration; In the charging configuration, the plant is configured to condense the working fluid by heat absorption by a heat carrier (and transfer of heat from the working fluid), performed in a condenser / evaporator, which acts as a cooler / condenser and stores said working fluid in a liquid or supercritical phase; In the discharge configuration, the plant is configured to evaporate the working fluid starting from the liquid or supercritical phase by heat transfer from a heat carrier (and heat absorption by the working fluid) carried out in said condenser / evaporator acting as a heater / evaporator; The plant also comprises a regulating device and a control unit operably coupled to the regulating device, the control unit configured and / or programmed to actively regulate at least one parameter of the working fluid related to condensation and / or evaporation via the regulating device to control at least one temperature of the heating carrier and to decouple the at least one temperature of the heating carrier from an ambient temperature; The at least one actively adjusted parameter of the working fluid is selected from the group: the condensation onset temperature, and / or Condensation end temperature, and / or Condenser outlet temperature, i.e. the temperature at the outlet of the condenser / evaporator in the charging configuration, and / or the evaporator inlet temperature, i.e. the inlet temperature to the condenser / evaporator in discharge configuration, and / or the evaporation onset temperature, and / or Evaporation end temperature, and / or Evaporator outlet temperature, i.e., the outlet temperature of the condenser / evaporator in discharge configuration.
[0022] In one embodiment, the processes described and / or claimed herein are operated via a plant described and / or claimed herein, or a plant described and / or claimed herein is configured to perform the processes described and / or claimed herein.
[0023] In one aspect, the present invention refers to a method for controlling a heat carrier in a process and / or plant for energy storage, wherein the process and / or plant is as described in the above aspects.
[0024] This method is actively adjusting at least one parameter of the working fluid related to condensation and / or evaporation to control at least one temperature of the heat carrier and decouple said at least one temperature of the heat carrier from an ambient temperature; The at least one actively adjusted parameter of the working fluid is selected from the group: Condenser inlet temperature, i.e. the temperature at the inlet to the condenser / evaporator of the charge configuration / phase, and / or the condensation onset temperature, and / or Condensation end temperature, and / or Condenser outlet temperature, i.e. the temperature at the outlet of the condenser / evaporator in the charging configuration / phase, and / or Evaporator inlet temperature, i.e. the inlet temperature to the condenser / evaporator in the discharge configuration / phase, and / or the evaporation onset temperature, and / or Evaporation end temperature, and / or · Evaporator outlet temperature, i.e., condenser / evaporator outlet temperature in the discharge configuration / phase.
[0025] "Condensation onset temperature" means the temperature of a working fluid at which the working fluid begins to transition from a gas phase to a liquid phase.
[0026] "Condensation end temperature" means the temperature of the working fluid at which the phase transition from the gas phase to the liquid phase of the working fluid is completed.
[0027] Such starting and ending condensing temperatures are achieved by the working fluid in the condenser / evaporator in the charge configuration / phase.
[0028] "Vaporization onset temperature" means the temperature of a working fluid at which the phase transition of the working fluid from the liquid phase to the vapor phase begins.
[0029] "Evaporation end temperature" means the temperature of a working fluid at which the phase transition of the working fluid from the liquid phase to the vapor phase is completed.
[0030] Such starting and ending evaporation temperatures are achieved by the working fluid in the condenser / evaporator in the discharge configuration / phase.
[0031] The applicant has determined that by actively adjusting at least one of the parameters of the working fluid, cyclic thermodynamic conversion (CTT) can be performed independently of the ambient temperature and without the aid of a device external to the CTT adapted to create an artificial source at a temperature above or below the ambient temperature.
[0032] Applicant has determined that by actively adjusting one or more parameters of the working fluid, the CTT of the process / plant can be decoupled from the ambient temperature while keeping the plant relatively simple, resulting in advantages in terms of cost of achievement and its reliability.
[0033] Further aspects of the invention are set out below.
[0034] In one embodiment, the condenser / evaporator with heat carrier and tank is part of a system that is "nearly adiabatic" with respect to the environment, and in fact can be defined as adiabatic, except for minimal heat exchange, e.g., thermal insulation materials and heat losses that can be minimized through thermal insulation materials. The nearly adiabatic system comprises said condenser / evaporator, an energy store via a heat carrier (or condensing means) in the form of latent and sensible heat of condensation and the heat required to store evaporation, and a tank in which the condensed pressurized working fluid is accumulated.
[0035] In one embodiment, the basin contains a heat carrier, and the basin is part of a system that is "nearly adiabatic" with the environment.
[0036] In one embodiment, the condenser / evaporator comprises a single exchanger or a single multiple exchanger, in series or parallel, that can operate as both a condenser and an evaporator.
[0037] In one embodiment, the condenser / evaporator comprises a condensing exchanger (or a single or multiple condensing exchangers in series or parallel) and a different evaporating exchanger (or a single or multiple evaporating exchangers in series or parallel).
[0038] In one embodiment, it is configured to adjust multiple parameters of the working fluid.
[0039] In one embodiment, the working fluid is carbon dioxide.
[0040] In one embodiment, the working fluid is selected from a predetermined group including CO, SF, NO or mixtures thereof, or even mixtures thereof with other components that act as additives, e.g., that can be used primarily to modify the critical temperature parameters of the resulting mixture to optimize the performance of the system.
[0041] In one embodiment, the heat carrier is water and / or a predominantly water-based mixture.
[0042] In one embodiment, the charging phase includes condensation of the working fluid followed by desuperheating of the working fluid followed by subcooling of the working fluid.
[0043] In one embodiment, the condenser inlet temperature is the temperature at the start of superheat removal, the condensation start temperature is the temperature at the end of superheat removal and the start of actual condensation, the condensation end temperature is the temperature at the end of actual condensation and the start of subcooling, and the condenser outlet temperature is the temperature at the end of subcooling.
[0044] In one embodiment, the at least one actively adjusted parameter of the working fluid is the evaporation pressure, and adjustment of the evaporation pressure affects the evaporator inlet temperature and / or the evaporation start temperature and / or the evaporation end temperature.
[0045] In one embodiment, the release phase comprises possible heating and / or throttling of the working fluid, followed by evaporation of the working fluid, followed by superheating of the working fluid.
[0046] In one embodiment, the evaporator inlet temperature is the temperature at the start of heating and / or throttling, the evaporation start temperature is the temperature at the end of heating and / or throttling and the start of actual evaporation, the evaporation end temperature is the temperature at the end of actual evaporation and the start of superheating, and the evaporator outlet temperature is the temperature at the end of superheating.
[0047] In one embodiment, the evaporator inlet temperature and the evaporation start temperature are the same.
[0048] In one embodiment, the heat carrier has a first heat absorption start temperature, a second heat absorption end temperature, a third heat transfer start temperature, and a fourth heat transfer end temperature.
[0049] In one embodiment, the heat carrier has a first heat absorption onset temperature when the working fluid is at the condenser inlet temperature.
[0050] In one embodiment, the heat carrier has a second heat absorption end temperature when the working fluid is at the condenser outlet temperature.
[0051] In one embodiment, the heat carrier has a third heat transfer initiation temperature when the working fluid is at the evaporator inlet temperature.
[0052] In one embodiment, the heat carrier has a fourth ending heat transfer temperature when the working fluid is at the evaporator exit temperature.
[0053] In one embodiment, if the heat carrier is the same for both phases (load and discharge) and is maintained in a system that does not significantly dissipate heat, the second heat absorption end temperature and the third heat transfer start temperature will coincide.
[0054] In one embodiment, said at least one temperature of the heat carrier that is controlled comprises the first temperature and / or the fourth temperature of the heat carrier.
[0055] In one embodiment, the first temperature and / or the fourth temperature of the carrier is controlled so that the fourth temperature is higher than the first temperature, allowing the heat carrier to transfer heat to the environment while the working fluid is stored so that it has excess heat during condensation relative to evaporation. This control is performed when the plant is in a very cold environment. In this way, the heat carrier can transfer heat to the environment during the static storage period to return from the fourth temperature to the first temperature.
[0056] In one embodiment, the first temperature and / or the fourth temperature are controlled so that the first temperature is higher than the fourth temperature, allowing the heat carrier to absorb heat from the environment while the working fluid is stored so that it has excess heat during evaporation relative to condensation. This control is performed when the plant is in a very hot environment. In this way, the heat carrier can absorb heat from the environment during the static storage period and return from the fourth temperature to the first temperature.
[0057] In one embodiment, the step of controlling the first temperature of the heat carrier to have the excess heat relative to evaporation during condensation comprises, during condensation, increasing the condenser inlet temperature or increasing the difference between the condenser inlet temperature and the condensation start temperature, and / or decreasing the condenser outlet temperature or increasing the difference between the condensation end temperature and the condenser outlet temperature.
[0058] In one embodiment, the step of controlling the first temperature of the heat carrier to have the excess heat during condensation relative to evaporation comprises increasing the evaporation pressure during evaporation, and thus increasing the evaporator inlet temperature and / or the evaporation start temperature and / or the evaporation end temperature, and / or decreasing the difference between the evaporation end temperature and the evaporation outlet temperature.
[0059] In one embodiment, the step of controlling the first temperature of the heat carrier to have the excess heat during evaporation with respect to condensation includes, during condensation, decreasing the condenser inlet temperature or decreasing the difference between the condenser inlet temperature and the condensation start temperature, and / or increasing the condenser outlet temperature or decreasing the difference between the condensation end temperature and the condenser outlet temperature.
[0060] In one embodiment, the step of controlling the first temperature of the heat carrier so as to have the excess heat during evaporation relative to condensation comprises, during evaporation, decreasing the evaporation pressure, and thus decreasing the evaporator inlet temperature and / or the evaporation start temperature and / or the evaporation end temperature, and / or increasing the difference between the evaporation end temperature and the evaporation outlet temperature.
[0061] In one embodiment, the regulating device comprises a flow control valve operably arranged between the tank and the condenser / evaporator and configured to regulate the evaporation pressure of the working fluid, and thus the evaporator inlet temperature and / or the evaporation start temperature and / or the evaporation end temperature.
[0062] In one embodiment, the regulating device comprises a control valve disposed in the inlet expander and configured to regulate the evaporation pressure of the working fluid, and thus the evaporator inlet temperature and / or the evaporation start temperature and / or the evaporation end temperature.
[0063] In one embodiment, the adjustment device comprises at least one heat exchanger configured to exchange heat with the environment, coupled directly or indirectly to the working fluid piping, and positioned upstream of the condenser / evaporator and downstream of the compressor along the charge path, the at least one heat exchanger configured to exchange heat with the environment being configured to adjust the condenser inlet temperature.
[0064] In one embodiment, the temperature of the working fluid in the charge configuration / phase downstream of the compressor and upstream of the condenser / evaporator is greater than ambient temperature.
[0065] In one embodiment, in the charging configuration / phase, the compressor discharge temperature is less than 450°C, optionally less than 375°C.
[0066] In one embodiment, a thermal accumulator (thermal energy store or TES) is operably coupled to the piping and disposed between the expander and the condenser / evaporator.
[0067] In one embodiment, the thermal storage device is a "pressurized packed bed" (PPB).
[0068] In one embodiment, the heat reservoir is of the type that contains a liquid, optionally water.
[0069] In one embodiment, the heat reservoir comprises multiple heat reservoirs and / or is divided into multiple sections.
[0070] In one embodiment, at least one of the plurality of thermal stores or at least one of the portions is a "pressurized packed bed" (PPB), and at least one of the plurality of thermal stores or at least one of the portions is of the liquid type.
[0071] In one embodiment, at least one heat regenerator of the plurality or portions is operably located between two compressors or two compression stages and / or between two expanders or two expansion stages.
[0072] In one embodiment, the conditioning device is operably coupled to the heat storage device or is operably active between the heat storage device and the condenser / evaporator.
[0073] In one embodiment, the thermal storage device includes a thermal fluid and an auxiliary exchanger, the auxiliary exchanger being operably coupled to the piping and positioned along the charge path upstream of the condenser / evaporator.
[0074] In one embodiment, a heat exchanger configured to exchange heat with the environment is operably coupled to the heat reservoir, such that the heat reservoir can transfer heat to or receive heat from the environment.
[0075] In one embodiment, the heat storage device comprises a first tank, a second tank connected to each other and to an auxiliary exchanger and containing a thermal fluid, a first heat exchanger configured to exchange heat with the environment and positioned between the first tank and the auxiliary exchanger, and a second heat exchanger configured to exchange heat with the environment and positioned between the second tank and the auxiliary exchanger.
[0076] In one embodiment, the heat storage device comprises a tank for a thermal fluid in fluid communication with the auxiliary exchanger and a basin of the heat carrier, a first heat exchanger configured to exchange heat with the environment and positioned between the tank and the auxiliary exchanger, and a second heat exchanger configured to exchange heat with the environment and positioned between the auxiliary exchanger and the basin.
[0077] In one embodiment, the thermal fluid is the same heat carrier.
[0078] In one embodiment, at least one of the plurality of heat stores or at least one of the portions is in fluid communication with a basin for use of a portion of the heat carrier.
[0079] In one embodiment, the adjustment device comprises a flow rate and / or level regulator of the heat carrier and / or working fluid, which is operatively active within the condenser / evaporator when the flow rate and / or level regulator functions as a condenser, and the flow rate and / or level regulator is configured to adjust the flow rate and / or level of the heat carrier and / or working fluid, and thus, to adjust the condenser outlet temperature.
[0080] In one embodiment, the condenser / evaporator comprises a subcooling exchanger dedicated to cooling (subcooling) the working fluid from the condensation end temperature to the condenser outlet temperature, and the condenser outlet temperature is adjusted by adjusting the flow rate of the heat carrier in the subcooling exchanger.
[0081] In one embodiment, the condenser / evaporator is of the type having a tube bundle and shell (shell and tube).
[0082] In one embodiment, the heat carrier is contained in the tubes of the tube bundle and the working fluid is contained in the shell, where the condenser outlet temperature is adjusted by adjusting the level of working fluid in the shell (and / or by selecting the number of tubes and therefore the amount of exchanger surface dedicated to subcooling).
[0083] In one embodiment, the working fluid is contained in the tubes of the tube bundle and the heat carrier is contained in the shell, where the condenser outlet temperature is adjusted by adjusting the flow rate of the heat carrier within the tubes (i.e., by increasing the heat exchange and therefore the ability to remove heat from the working fluid).
[0084] In one embodiment, the adjustment device is a flow and / or level regulator of the working fluid and / or heat carrier operably active within the condenser / evaporator when acting as an evaporator, the flow and / or level regulator configured to adjust the flow and / or level of the heat carrier and / or working fluid and thus the evaporator outlet temperature.
[0085] In one embodiment, the condenser / evaporator comprises a dedicated superheat exchanger for superheating (superheating) the working fluid from the evaporation end temperature to the evaporator outlet temperature, and the evaporator outlet temperature is adjusted by adjusting the flow rate of the heat carrier in the superheat exchanger.
[0086] In one embodiment, the heat carrier is contained in the tubes of the tube bundle and the working fluid is contained in the shell, where the evaporator outlet temperature is adjusted by adjusting the level of the working fluid in the shell (and / or by selecting how many tubes, and therefore how much surface of the exchanger, is used for superheating).
[0087] In one embodiment, the working fluid is contained in the tubes of the tube bundle and the heat carrier is contained in the shell, where the evaporator outlet temperature is adjusted by adjusting the flow rate of the heat carrier within the tubes (i.e., by increasing the heat exchange and therefore the ability to transfer heat to the working fluid).
[0088] In one embodiment, the compressor is mechanically connected to a motor or motor-generator or another generator of mechanical energy utilized by the compressor.
[0089] In one embodiment, the compressor comprises multiple compressors in series or parallel, with or without intercooling.
[0090] In one embodiment, the expander is mechanically connected to a generator or motor-generator or another machine that can utilize the mechanical energy generated by the expander.
[0091] In one embodiment, the expander comprises multiple expanders in series or parallel, with or without intermediate cross-heating action.
[0092] Further features and advantages will be apparent from the detailed description of preferred, but not exclusive, embodiments of the plant and process for energy storage according to the invention. [Brief explanation of the drawings]
[0093] Such a description is given below with reference to the accompanying drawings, which are given by way of non-limiting example only. [Figure 1] FIG. 1 shows a schematic diagram of a plant for energy storage according to the invention. [Figure 2A] FIG. 2A is a schematic diagram of the elements of FIG. 1 in respective operating configurations. [Figure 2B] FIG. 2B is a schematic diagram of the elements of FIG. 1 in respective operating configurations. [Figure 3] FIG. 3 is a TS diagram relating to the thermodynamic transformations operated in the plant of FIG. [Figure 3A] FIG. 3A is an enlarged view of a portion of the TS diagram of FIG. [Figure 4] FIG. 4 is an enlarged view of FIG. [Figure 5] FIG. 5 illustrates an expansion of FIG. 4 according to the operating mode. [Figure 6] FIG. 6 illustrates an expansion of FIG. 4 according to different modes of operation. [Figure 7A] FIG. 7A illustrates a portion of the plant of FIG. 1 according to a variant of the embodiment. [Figure 7B] FIG. 7B illustrates a different variation of a portion of FIG. 7A. [Figure 8] FIG. 8 illustrates a portion of FIG. 7A according to a further embodiment variation. [Figure 9] FIG. 9 illustrates an embodiment of the plant of FIG. [Figure 10] FIG. 10 illustrates an embodiment of the plant of FIG. [Figure 11] FIG. 11 illustrates an embodiment of the plant of FIG. [Figure 12] FIG. 12 illustrates an embodiment of the plant of FIG. Detailed Description
[0094] With reference to the attached figures, the reference number 1 generally indicates a plant for energy storage according to the invention. The plant 1 operates with a working fluid WF different from atmospheric air, for example carbon dioxide (CO2). For example, the plant 1 may have the following chemical-physical properties: critical temperature between 0°C and 200°C, concentration at 25°C of 0.5 kg / m 3 to 10 kg / m 3 ) for example, the working fluid is selected from the group including: carbon dioxide, mixtures of CO2 with other substances, SF6, N2O, pure or in a mixture.
[0095] Plant 1 is configured to perform a closed loop thermodynamic conversion (CTT), first in one direction in a charging configuration / phase and then in the opposite direction in a discharging configuration / phase, where plant 1 accumulates heat and pressure in the charging configuration and generates electrical and / or mechanical energy in the discharging configuration.
[0096] Referring to FIG. 1, the plant 1 comprises an expander defined by a turbine 2 configured to expand a working fluid WF, and a rotary compressor (turbocharger) 3 configured to compress the working fluid WF.
[0097] The compressor 3 and the turbine 2 are connected to the same motor-generator 4 via respective transmission devices (not shown), for example friction-type connection devices, which make it possible to connect and disconnect the turbine 2 and / or the compressor 3 to the motor-generator 4 on command.
[0098] The plant 1 comprises a casing 5 configured to store the working fluid WF in the gas phase and in pressure equilibrium with atmospheric pressure. The casing 5 is defined, for example, by a pressure balloon made of a flexible material, for example, a PVC-coated polyester fabric. The pressure balloon is preferably arranged on the surface, not in an underground cavity, and is externally in contact with the atmosphere. The pressure balloon defines a variable volume therein configured to contain the working fluid WF at atmospheric pressure or substantially atmospheric pressure, i.e., at a pressure in pressure equilibrium with the atmosphere. The casing 5 can also be realized as a gasometer or any other storage system for gases at low pressure or zero overpressure.
[0099] The plant 1 comprises a tank 6 configured to store the working fluid WF in a liquid or supercritical phase. The tank 6 is, for example, made of metal and has a cylindrical or spherical outer wall.
[0100] The plant 1 includes a thermal accumulator 7 (thermal energy storage or TES) configured to transfer heat to the working fluid WF before it enters the turbine 2 or to absorb heat from the working fluid WF exiting the compressor 3. For example, the thermal accumulator 7 may be a thermal regenerator with a fixed or movable bed, or may include a water, oil, or salt circuit with at least one storage chamber. The working fluid exchanges heat with the thermal mass (e.g., cement, ceramic, or metal) of the thermal regenerator, with the fixed or movable bed, or with the water, oil, or salt circuit.
[0101] The condenser / evaporator 8 is operably coupled to the tank 6 and comprises a heat carrier VT (typically a fluid, e.g., water) configured to transfer heat to the working fluid WF or absorb heat from the working fluid WF.
[0102] In the illustrated schematic embodiment, the condenser / evaporator 8 is arranged between the heat accumulator 7 and the tank 6. The condenser / evaporator 8 is connected to a basin 9 containing the heat carrier VT.
[0103] For example, piping for the working fluid WF defined by a plurality of pipes is operably interposed between the casing 5 and the tank 6, directly and / or indirectly connecting the casing 5, the tank 6, the compressor 3, the turbine 2, the heat storage tank 7, and the condenser / evaporator 8.
[0104] The condenser / evaporator 8 is made up of one or more or is formed by one or more heat exchangers, which allow heat exchange between the working fluid WF passing through the respective pipes and the heat carriers VT flowing in respective ducts connected to the basin 9. As shown schematically in Figures 2A and 2B, the working fluid passes through respective ducts 10 in the condenser / evaporator 8, and the heat carriers TV pass through respective ducts 11 inside the condenser / evaporator 8.
[0105] The condenser / evaporator may be a single or multiple exchangers in series or parallel, which may operate as both a condenser and an evaporator, or the condenser / evaporator 8 may comprise a condensing exchanger (or a single or multiple condensing exchangers in series or parallel) and a different evaporating exchanger (or a single or multiple evaporating exchangers in series or parallel).
[0106] For example, the condenser / evaporator 8 is of the type having a tube bundle and a shell (shell & tube), known per se and not shown, where the heat carrier VT is contained in the tubes of the tube bundle and the working fluid WF is contained in the shell (i.e. between the shell and the tubes), or vice versa.
[0107] The system 12 comprising the tank 6 containing the working fluid WF, the condenser / evaporator 8 and the basin 9 with the heat carrier TV is a system that is nearly adiabatic with respect to the environment, i.e. a closed system that does not exchange substantially any heat with the environment except for heat losses.
[0108] The piping separates a fill path extending from the casing 5 to the tank 6 and a discharge path extending from the tank 6 to the casing 5 .
[0109] The plant 1 also includes a regulator configured to actively regulate the parameters of the working fluid WF. The regulator shown in Figure 1 includes a flow regulator valve 13 operatively arranged between the tank 6 and the condenser / evaporator 8, an expander 2 inlet regulator valve 14, and a heat exchanger 15 with the environment directly coupled to the temperature accumulator 7. The plant of Figure 1 also includes a shutoff valve 16 located at the discharge of the compressor 3.
[0110] The plant 1 also comprises a control unit (not shown) which is operatively connected to the various elements of the plant 1 itself and configured / programmed to manage its operation.
[0111] The plant 1 is configured to operate in a charging configuration / phase or a discharging configuration / phase, i.e., to perform a process including an energy charging phase and an energy generating and discharging phase according to a closed-loop thermodynamic transformation (CTT). In the charging configuration / phase, the plant 1 is configured to condense the working fluid WF by heat absorption by the heat carrier VT (and heat transfer from the working fluid) and store the working fluid WF in a liquid or supercritical phase in the tank 6. In the discharging configuration / phase, the plant 1 is configured to evaporate the working fluid starting from the liquid or supercritical phase by heat transfer from the heat carrier VT (and heat absorption by the working fluid). Referring to FIGS. 1 and 3, in the charging configuration / phase, the plant 1 starts from a first state in which the working fluid WF in gas form is contained in the casing 5 at atmospheric or substantially atmospheric pressure and at a temperature (point I) substantially equal to the ambient temperature Tam. The casing 5 is arranged to communicate with the inlet 3a of the compressor 3 via an appropriate valve, while communication with the outlet 2b of the turbine 2 is blocked. Furthermore, a valve places the heat accumulator 7 in fluid communication with the outlet 3b of the compressor 3 and blocks communication with the inlet 2a of the turbine 2. A motor-generator 4 is coupled to the single compressor 3 and is separate from the (stationary) turbine 2, and functions as a motor to operate the compressor 3 to compress the working fluid coming from the casing 5.
[0112] The working fluid WF is compressed and heated in the compressor 3 (point II). The discharge temperature of the compressor 2 is, for example, 400°C. The working fluid WF then flows through the heat accumulator 7, which acts as a cooler to remove heat from the compressed working fluid WF, cooling it (point III, Figures 3 and 3A), and storing the thermal energy removed from said working fluid WF. At point III, i.e., at the inlet to the condenser / evaporator 8, the working fluid WF is at a condenser inlet temperature Tc1, which is higher than the ambient temperature Tamb.
[0113] In this phase, the working fluid WF transfers heat to the heat carrier TV in the condenser / evaporator 8, which acts as a cooler / condenser (Fig. 3A), which is desuperheated (from the condenser inlet temperature Tc1 to the condensation start temperature Tc2), followed by condensation of the working fluid (from the condensation start temperature Tc2 to the condensation end temperature Tc3), followed by subcooling (from the condensation end temperature Tc3 to the condenser outlet temperature Tc4), at point IV. The working fluid WF is stored in the subcooled liquid phase in the tank 6.
[0114] The heat carrier TV absorbs heat and heats up from the first heat absorption start temperature T1 to the second heat absorption end temperature T2. The temperature difference T2-T1 depends on the specific heat of the heat carrier TV, its mass, and the heat it receives from the working fluid WF during the condensation phase. When the working fluid WF is at the condenser inlet temperature Tc1, the heat carrier TV has the first heat absorption start temperature T1. When the working fluid WF is at the condenser outlet temperature Tc4, the heat carrier TV has the second heat absorption end temperature T2.
[0115] According to the non-limiting example illustrated in FIGS. 3 and 3A, the condenser outlet temperature Tc4, ie the temperature at which the working fluid WF is stored in the tank 6, is higher than the ambient temperature Tamb.
[0116] While the working fluid is being stored, it exchanges heat with the environment by heat loss and is brought to point V at temperature Te1 (FIG. 3A).
[0117] In the discharge configuration / phase, the plant 1 starts in this state (point V in FIG. 3A). The casing 5 is in fluid communication with the outlet 2b of the turbine 2 via a valve, and is blocked from communication with the inlet 3a of the compressor 3. Additionally, a valve places the regenerator 7 in fluid communication with the inlet 2a of the turbine 2, and blocks communication with the outlet 3b of the compressor 3. The motor-generator 4 is coupled to the single turbine 2 and decoupled from the (stationary) compressor 3, and functions as a generator rotated by the turbine 2, which is powered by the expanding working fluid.
[0118] The condenser / evaporator 8 acts as a heater / evaporator in this phase, and the heat carrier TV transfers part of the heat previously stored in the charging configuration to the working fluid WF, which undergoes possible heating and / or throttling (from the evaporator inlet temperature Te1 to the evaporation start temperature Te2), followed by evaporation of the working fluid (from the evaporation start temperature Te2 to the evaporation end temperature Te3), followed by superheating of the working fluid (from the evaporation end temperature Te3 to the superheating temperature Te4) until the temperature at the end of the evaporator outlet is located at point VI.
[0119] The heat carrier TV transfers heat and is cooled by the third heat transfer start temperature T3 to the fourth heat transfer end temperature T4. The temperature difference T3-T4 depends on the specific heat of the heat carrier TV, the mass of the heat carrier TV, and the heat removed by the working fluid WF during the evaporation phase.
[0120] When the working fluid WF is at the evaporator inlet temperature Te1, the heat carrier TV has a third heat transfer start temperature T3. When the working fluid WF is at the evaporator outlet temperature Te4, the heat carrier TV has a fourth heat transfer end temperature T4.
[0121] 3, 3A, and 4, the evaporator inlet temperature Te1 and the evaporation start temperature Te2 are identical, and the second temperature T2 and the third temperature T3 of the heat carrier TV are identical, so the system does not dissipate significant heat. Furthermore, to maximize system performance, it is desirable to have the evaporation pressure Pe as high as possible. Because the heat of evaporation Qevap removed during the evaporation phase is less than the heat of condensation Qcond during the condensation phase, temperature T4 is higher than temperature T1.
[0122] As the working fluid WF leaves the condenser / evaporator 8, it traverses the heat accumulator 7, which acts as a heater, transferring heat previously stored in the charging configuration to the working fluid WF, heating it. The heated working fluid WF enters the turbine 2, where it is expanded and cooled (point VIII in Figure 3), causing it to rotate. The turbine 2 is rotated by the heated working fluid and drives the motor-generator 4, which acts as a generator and produces electrical energy. The working fluid WF leaving the turbine 2 returns into the casing 5 at atmospheric or near atmospheric pressure (point VII in Figure 3).
[0123] After one cycle is finished, the plant 1 must return the heat carrier to the first temperature T1, starting from the second temperature T2, in preparation for a new cycle. Therefore, heat must be extracted from the heat carrier TV and transferred to the environment. The first temperature T1 must be close to or higher than the ambient temperature Tamb so that the heat is transferred outside the system.
[0124] The plant and process of the present invention are configured to regulate one or more parameters of the working fluid WF related to condensation and / or evaporation via the aforementioned regulating device in order to control the temperature of the heat carrier TV and decouple said temperature of the heat carrier TV from the ambient temperature Tamb without the aid of systems outside the cyclic thermodynamic conversion. In particular, actively regulating one or more parameters of the working fluid WF makes it possible to carry out the cyclic thermodynamic conversion (CTT) independently of the ambient temperature Tamb and without the aid of devices outside the cyclic thermodynamic conversion (CTT) adapted to create artificial sources at temperatures higher or lower than the ambient temperature Tamb. The system including the heat carrier TV transfers heat to or receives heat from the environment in a completely natural way, depending on whether the temperature is higher or lower than the ambient temperature Tamb.
[0125] The invention therefore also relates to a method for controlling a heat carrier in a process and / or plant for energy storage.
[0126] The actively adjustable parameters of the working fluid WF are: condenser inlet temperature Tc1 and / or condensation start temperature Tc2 and / or condensation end temperature Tc3 and / or condenser outlet temperature Tc4, evaporator inlet temperature Te1 and / or evaporation start temperature Te2 and / or evaporation end temperature Te3 and / or evaporator outlet temperature Te4 and / or evaporation pressure Pe. [Example 1 - Figure 5]
[0127] If it is desired to have excess heat during the condensation phase relative to the evaporation phase (Qcond-Qevap>0), the following adjustments can be made:
[0128] In the condensation phase, Increasing the inlet temperature in the condenser Tc1, i.e., increasing the difference between the inlet temperature in the condenser Tc1 and the condensation start temperature Tc2, thereby increasing the heat of the desuperheating subphase; Decreasing the condenser outlet temperature Tc4 and increasing the difference between the condensation end temperature Tc3 and the condenser outlet temperature Tc4 to increase the heat removed during the subcooling subphase.
[0129] Thus, with respect to that shown in FIG. 4, the second temperature T2 of the heat carrier TV increases due to the greater amount of heat to be removed given the same condensation pressure Pe conditions.
[0130] In the evaporation phase, Increasing the evaporation pressure Pe (and therefore the evaporation inlet temperature Te1 and / or the evaporation start temperature Te2 and / or the evaporation end temperature Te3) to reduce the heat of evaporation in the evaporation subphase; To reduce superheat, the difference between the evaporation end temperature Te3 and the evaporation outlet temperature Te4 is reduced.
[0131] Thus, with respect to that shown in FIG. 4, the fourth temperature T4 of the heat carrier TV increases because, given the same conditions, the amount of heat removed is less and the third temperature T3 of the heat carrier TV is higher. [Example 2 - Figure 6]
[0132] If it is desired to have excess heat during the evaporation phase relative to the condensation phase (Qcond-Qevap<0), the following adjustments can be made:
[0133] In the condensation phase, Reducing the heat of the desuperheating subphase by lowering the condenser inlet temperature Tc1 or by decreasing the difference between the condenser inlet temperature Tc1 and the condensation start temperature Tc2; In order to reduce the heat removed during the supercooling subphase, the condenser outlet temperature Tc4 is increased or the difference between the condensation end temperature Tc3 and the condenser outlet temperature Tc4 is reduced.
[0134] Thus, with respect to that shown in FIG. 4, the second temperature T2 of the heat carrier will be lower given the same conditions because less heat is removed.
[0135] In the evaporation phase, Decreasing the evaporation pressure Pe (and therefore the evaporation inlet temperature Te1 and / or the evaporation start temperature Te2 and / or the evaporation end temperature Te3) to increase the heat of evaporation in the evaporation subphase, since the latent heat increases with decreasing pressure (bell shape in Figure 3A); Increasing the difference between the evaporation end temperature Te3 and the evaporation outlet temperature Te4 increases the superheat.
[0136] Thus, with respect to that shown in FIG. 4, the fourth temperature T4 of the heat carrier TV will be lower given the same conditions due to the higher amount of heat removed and the lower third temperature T3 of the heat carrier TV.
[0137] The control unit is operatively coupled to the regulating device and is configured and / or programmed to regulate one or more parameters of the working fluid. The evaporation pressure Pe of the working fluid WF (and thus the evaporator inlet temperature Te1 and / or the evaporation start temperature Te2 and / or the evaporation end temperature Te3) can be regulated via the flow regulating valve 13 and, optionally, via the expander 2 inlet regulating valve 14. By adjusting the flow rate of the working fluid WF and the expander 2 inlet regulating valve 14, the desired effect can be achieved in various modes, depending on the flow rate of the heat carrier fluid TV. For example, one mode is one in which the expander 2 inlet valve 14 regulates the pressure upstream, i.e., in the evaporator 8. In this case, if the expander 2 inlet valve 14 is not fully open, the flow regulating valve 13, which regulates the flow rate, acts to regulate the output, and the expander 2 inlet valve 14 determines the evaporation pressure Pe. If the expander 2 inlet valve 14 is fully open, the evaporation pressure Pe depends on the flow regulated by the flow regulating valve 13.
[0138] The condenser outlet temperature Tc4 can be adjusted in various modes.
[0139] In one embodiment, the condenser / evaporator 8 includes a specially provided subcooling exchanger for cooling the working fluid WF from the condensation end temperature Tc3 to the condenser outlet temperature Tc4 (subcooling). In this case, the condenser outlet temperature Tc4 can be adjusted by adjusting the flow rate of the heat carrier TV in the subcooling heat exchanger. This flow rate of the heat carrier TV can be adjusted between a maximum flow rate and zero flow rate (using a complete bypass of the supercooling exchanger). A maximum flow rate allows the condenser outlet temperature Tc4 to be equal to or slightly higher than the first temperature T1 of the heat carrier TV, maximizing the removal of hot heat. A zero flow rate allows the condenser outlet temperature Tc4 to be equal to the condensation end temperature Tc3, and no hot heat can be removed.
[0140] If the condenser / evaporator 8 is a single exchanger with a tube bundle and a shell (shell and tube), with the heat carrier contained in the tubes of the tube bundle and the working fluid WF contained between the tubes and the shell, the condenser outlet temperature Tc4 can be adjusted by adjusting the level of the working fluid WF in the shell (and / or by selecting the number of tubes, and therefore the amount of exchanger surface dedicated to subcooling). This level of working fluid WF can be adjusted between a maximum (design) level below the tubes and a minimum level. The maximum level allows the condenser outlet temperature Tc4 to be equal to or slightly higher than the first temperature T1 of the heat carrier TV, maximizing heat removal and allowing some of the heat exchanger tubes to exchange heat with the condensate, thus subcooling the condensate. The minimum level below the tubes allows the condenser outlet temperature Tc4 to be equal to the condensation end temperature Tc3, and no heat removal. In fact, in this case, since there are no heat exchanger tubes exchanging heat with the condensate, no heat can be removed from the condensate and the condensate is not subcooled.
[0141] If the condenser / evaporator 8 is a single exchanger with a tube bundle and a shell (shell and tube), containing a working fluid WF in the tubes of the tube bundle and a heat carrier TV between the tube and the shell, the condenser outlet temperature Tc4 can be adjusted by adjusting the flow rate of the heat carrier TV in the tubes (i.e., by increasing the heat exchange rate and therefore the ability to remove heat from the working fluid WF). In this case, the heat carrier TV condenses in the tubes. The flow rate of such a heat carrier TV can be adjusted between a maximum flow rate (design value) and a minimum flow rate. The maximum flow rate allows the condenser outlet temperature Tc4 to be equal to or slightly higher than the first temperature T1 of the heat carrier TV, maximizing heat removal. The minimum flow rate allows the condenser outlet temperature Tc4 to be below the condensation end temperature Tc3, preventing heat removal after condensation. The temperature at the end of the superheater / evaporator Te4 outlet can be adjusted in various modes.
[0142] In one embodiment, the condenser / evaporator 8 includes a dedicated superheat exchanger that superheats the working fluid WF from the evaporation end temperature Te3 to the evaporator outlet temperature Te4 (superheat). In this case, the evaporator outlet temperature Te4 can be adjusted by adjusting the flow rate of the heat carrier TV through the superheat heat exchanger. This flow rate of the heat carrier TV can be adjusted between a maximum flow rate and zero flow rate (bypassing the superheat exchanger entirely). A maximum flow rate allows the evaporator outlet temperature Te4 to be equal to or slightly lower than the third temperature T3 of the heat carrier TV, maximizing transfer. A zero flow rate allows the evaporator outlet temperature Te4 to be equal to the evaporation end temperature Te3, eliminating heat transfer.
[0143] If the condenser / evaporator 8 is a single exchanger with a tube bundle and a shell (shell & tube), with the heat carrier contained in the tubes of the tube bundle and the working fluid WF contained between the tubes and the shell, the evaporator outlet temperature Te4 is adjusted by adjusting the level of the working fluid WF in the shell (and / or by selecting the number of tubes and, therefore, the amount of exchanger surface dedicated to superheating). This level of the working fluid WF can be adjusted between a minimum (design) level above the tubes and a maximum level. The minimum level allows the evaporator outlet temperature Te4 to be equal to or slightly lower than the third temperature T3 of the heat carrier TV and maximize heat transfer, since some of the exchanger tubes exchange heat with the steam and superheat it. The maximum level above the tubes allows the evaporation outlet temperature Te4 to be equal to the evaporation end temperature Te3 and no heat transfer occurs. In fact, in this case, the heat exchanger tubes that exchange heat with the steam are not exposed, preventing superheating of the steam.
[0144] If the condenser / evaporator 8 is a single exchanger having a tube bundle and a shell (shell and tube), with the working fluid WF contained in the tubes of the tube bundle and the heat carrier TV contained between the tubes and the shell, the evaporator outlet temperature Te4 can be adjusted by adjusting the flow rate of the heat carrier TV in the tubes (i.e., by increasing the heat exchange rate and therefore the ability to transfer heat to the working fluid WF). In this case, the working fluid WF evaporates and is superheated in the tubes. The flow rate of such a heat carrier TV can be adjusted between a maximum flow rate (design value) and a minimum flow rate. At the maximum flow rate (design), the evaporator outlet temperature Te4 can be set to a temperature equal to or slightly lower than the third temperature T3 of the heat carrier TV, thereby maximizing heat transfer. At the minimum flow rate, the evaporator outlet temperature Te4 can be set to a temperature equal to or slightly higher than the end-of-evaporation temperature Te3, thereby eliminating heat transfer after evaporation.
[0145] The condenser inlet temperature Tc1 is regulated via a heat exchanger 15 with the environment coupled to the heat accumulator 7. The heat exchanger 15 with the environment exchanges with the external environment a portion of the heat of the working fluid WF that accumulates in or passes through the heat accumulator 7 in a charging configuration / phase.
[0146] The heat exchanger 15 with the environment shown in FIG. 1 comprises a water-containing circuit and a radiator section of the circuit equipped with a fan. In a variant of the embodiment not shown in detail, the heat exchanger 15 may be of the direct exchange type, in the sense that the working fluid WF passes through the tubes and transfers / absorbs heat directly from the air. Depending on the position of the circuit within the heat accumulator 7, it is possible to remove heat from the heat accumulator 7 and the working fluid WF and transfer it to the environment, or to absorb heat from the environment and transfer it to the heat accumulator 7 and the working fluid WF. In this way, the temperature downstream of the heat accumulator 7, i.e., the condenser inlet temperature Tc1, can be adjusted.
[0147] In the plant shown in Figure 1, the suction pressure of compressor 3 is fixed and is approximately equal to atmospheric pressure, excluding load losses. Instead, the discharge pressure depends on the condensing pressure plus possible load losses. The discharge temperature of compressor 3 depends directly on the discharge pressure and the performance of compressor 3 itself: the higher the discharge pressure, the higher the temperature. Furthermore, a larger pressure jump means a lower machine performance.
[0148] If the discharge pressure is somehow related to the ambient temperature Tamb, then it is somehow predefined / constrained by the climatic conditions in which the system is installed. By the above-mentioned control of the condenser / evaporator 8, it is instead possible to define the discharge pressure of the compressor 3 independently of the environmental conditions.
[0149] This is a very advantageous property because the compressor 3 It can always work close to its design point, and in fact is decoupled from the ambient temperature, so that the diurnal and seasonal variations in temperature are not maintained, and therefore the compressor 3 can work at its maximum performance point; Limits the operating pressure and allows the use of machines with an axial main configuration; Instead of limiting the maximum operating temperature, which in hot climates results in higher condensing pressures and higher discharge temperatures, and involves choosing "expensive" materials for both the machine construction and the regenerator placed downstream of the compressor, and adjusting the condenser pressure, it is possible to choose common materials, generally below 450°C, preferably below 375°C, to maintain a sufficiently low pressure and therefore a reasonable temperature, not only for the regenerator but also for everything downstream of the compressor, including piping, connections, valves and the expander. - To enable condensation even in places with a significantly unfavourable climate, such as having an ambient temperature higher than the critical temperature of the working fluid, and without the control and free selection of the condensation pressure, it is impossible to achieve a system in which condensation is provided; It has an additional variable for defining the compressor's absorption capacity, the output of which in fact depends on the pressure pump and the processed flow rate, and as for the flow rate, it is possible to act, albeit within a limited range, on the variable geometry of the machine, and by acting on the discharge pressure of the machine, the adjustable field ("output") is considerably increased; The possibility of maintaining a constant discharge pressure, independent of the ambient conditions, makes it possible to choose a more "rigid" but more efficient machine type, The possibility of choosing the discharge pressure allows installation at altitudes below atmospheric pressure, but this also increases the compressor pressure pump.
[0150] 7A illustrates a portion of a plant 1 according to an embodiment in which the heat accumulator 7 includes a thermal fluid and an auxiliary exchanger 18, which is coupled to piping and operably arranged between the compressor 2 and the condenser / evaporator 8. The heat accumulator 7 includes a first tank 19A (for high-temperature storage of the thermal fluid) and a second tank 19B (for low-temperature storage of the thermal fluid), which are connected to each other by suitable piping 17. The auxiliary exchanger 18 is arranged between the first tank 19A and the second tank 19B. A thermal fluid, e.g., water, is located in the first tank 19A and the second tank 19B and travels through the auxiliary exchanger 18, which is coupled to the piping, together with the working fluid WF. Furthermore, a first exchanger 15A for heat with the environment is located between the first tank 19A and the auxiliary exchanger 18, and a second exchanger 15B for heat with the environment is located between the second tank 19B and the auxiliary exchanger 18. The heat accumulator 7 configured in this manner can also adjust the condenser inlet temperature Tc1.
[0151] FIG. 7B illustrates a portion of the plant 1 according to an embodiment in which the heat accumulator 7 includes a thermal fluid and an auxiliary exchanger 18, which is operably coupled to the piping and disposed between the condenser 2 and the condenser / evaporator 8. The heat accumulator 7 includes a first tank 19A (hot storage of the thermal fluid) and a second tank 19B (low temperature storage of the thermal fluid), which are connected to each other via appropriate piping 17. The auxiliary exchanger 18 is disposed between the first tank 19A and the second tank 19B. The thermal fluid, e.g., water, is disposed in the first tank 19A, the second tank 19B, and travels through the auxiliary exchanger 18, which is coupled to the piping, along with the working fluid WF. Additionally, a first exchanger 15A for heat with the environment is disposed between the one upstream of the exchanger 18 and the auxiliary exchanger 18, and a second exchanger 15B for heat with the environment is disposed between the auxiliary exchanger 18 and the condenser / evaporator. The heat exchangers 15A and 15B directly exchange heat with the WF and the environment without using an intermediate heat carrier. The heat accumulator 7 configured in this manner can also adjust the condenser inlet temperature Tc1.
[0152] FIG. 8 shows a variation of the heat storage device 7 of FIG. 7A, where the heat fluid is the same heat carrier TV as used in the condenser / evaporator 8. The heat storage device 7 of FIG. 8 comprises a tank 19 for the heat carrier TV / fluid (hot storage of the heat fluid) in fluid communication with a basin 9 for the heat carrier TV (cold storage of the heat fluid). A first heat exchanger 15A with the environment is located between the tank 19 and the auxiliary exchanger 18, and a second heat exchanger 15B with the environment is located between the auxiliary exchanger 18 and the basin 9. A portion of the heat carrier (at a second temperature T2) leaving the condenser / evaporator 8 is picked up and stored in the tank 19 in the charging configuration / phase after absorbing heat from the working fluid WF through the auxiliary exchanger 18. In the discharging configuration / phase, this portion of the heat carrier is heat transferred to the working fluid WF via the auxiliary exchanger 18 before being returned to the inlet to the condenser / evaporator 8.
[0153] In the solutions shown in Figures 7A and 8, the condenser inlet temperature Tc1 can be adjusted by acting on the heat accumulator 7 to remove heat from the environment or transfer heat to the environment via the first and second heat exchangers 15A and 15B. If it is desired to extract heat, it is necessary to act on the heat accumulator 7 in a phase in which the heat carrier / fluid has a temperature higher than the ambient temperature. Alternatively, it is possible to insert heat into the system in a phase in which the heat carrier / fluid has a temperature lower than the ambient temperature. The first heat exchanger 15A transfers heat to the environment by removing heat from the working fluid WF (Tc1 decreases). The second heat exchanger 15B transfers heat to the working fluid WF by removing it from the environment (Tc1 increases).
[0154] In the case of direct exchange (Figure 7B), if you want to extract heat, it is necessary to act on the phase where the WF has a temperature higher than the ambient temperature; instead, it is possible to insert heat into the system in the phase where the WF is at a temperature lower than the ambient temperature.
[0155] FIG. 9 shows an embodiment of the plant 1 with two compressors 3′, 3″ arranged in series and two expanders 2′, 2″ arranged in series. The heat storage comprises a first heat storage 7A interposed between the two compressors 3′, 3″ and the two expanders 2′, 2″, so that the compressors 3′, 3″ are cross-cooled and the expanders 2′, 2″ are cross-heated. The second heat storage 7B is positioned as shown in FIG. 1. The heat exchanger 15 with the environment is directly connected to the first heat storage 7A and not to the second heat storage 7B.
[0156] FIG. 10 illustrates a variant of the embodiment of the plant 1 of FIG. 9 (with two compressors 3′, 3″ arranged in series, two expanders 2′, 2″ arranged in series, a first heat accumulator 7A and a second heat accumulator 7B).
[0157] The first heat accumulator 7A is divided into two parts: a first tank 19A (hot storage of thermal fluid) and a second tank 19B (cold storage of thermal fluid) connected via appropriate piping 17 to a first auxiliary exchanger 18A and a second auxiliary exchanger 18B. The first heat exchanger 18A is connected to the piping of the working fluid WF downstream (charging phase) of two compressors 3', 3" arranged in series and upstream (discharge phase) of two expanders 2', 2" arranged in series. The second heat exchanger 18B is interposed between the two compressors 3', 3" (charging phase) and the two expanders 2', 2" (discharge phase). The heat exchanger 15 together with the environment is connected to the piping 17.
[0158] The second heat accumulator 7B comprises a tank 19 for the heat carrier TV / fluid and is in fluid communication with the basin 9 of the heat carrier TV. A single exchanger 15 of heat with the environment is located between the tank 19 and an auxiliary exchanger 18. The auxiliary exchanger 18 is coupled to the piping of the working fluid WF between the condenser / evaporator 8 and the first heat exchanger 18A.
[0159] FIG. 11 illustrates a further variant of the embodiment of the plant 1 of FIG. 9 (with two compressors 3′, 3″ arranged in series, two expanders 2′, 2″ arranged in series, a first heat accumulator 7A and a second heat accumulator 7B).
[0160] The first heat accumulator 7A is of the "pressurized packed bed" (PPB) type, and a heat exchanger 15 with the environment is connected to the piping for the working fluid WF between the first heat accumulator 7A and the compressor 3" arranged downstream.
[0161] The second thermal accumulator 7B comprises a first tank 19A (hot storage of thermal fluid) and a second tank 19B (cold storage of thermal fluid) connected to each other via suitable piping 17. An auxiliary exchanger 18 is arranged between the first tank 19A and the second tank 19B. In this embodiment, the second thermal accumulator 7B is not provided with a heat exchanger 15 with the environment.
[0162] FIG. 12 illustrates a variant of the embodiment of the plant 1 of FIG. 11, which differs from FIG. 11 in that the second heat accumulator 7B is substantially identical to that illustrated in FIG.
Claims
1. 1. A method for controlling a heat carrier in an energy storage process, comprising: The process comprises: The invention comprises a closed cyclic thermodynamic conversion (CTT) between a casing (5) for storing a working fluid (WF) different from air, the casing (5) being in gas phase and pressure equilibrium with the atmosphere, and a tank (6) for storing said working fluid (WF) in liquid or supercritical phase, first in one direction of a charging configuration / phase and then in the opposite direction of a discharging configuration / phase, During the charging phase, the process stores heat and potential energy in the form of pressure, and during the discharging phase, generates energy; During the charging phase, condensation of said working fluid (WF) is carried out by heat absorption by a heat carrier (TV) carried out in a condenser / evaporator (8) acting as a cooling / condenser in order to store said working fluid (WF) in liquid or supercritical phase; In the discharge phase, evaporation of the working fluid (WF) is carried out in the condenser / evaporator (8) acting as a heater / evaporator, starting from the liquid or supercritical phase and initiated by the transfer of heat from the heat carrier (TV), The method comprises: actively adjusting at least one parameter of the working fluid (WF) related to the condensation and / or evaporation in order to control at least one temperature of the heat carrier (TV) and decouple the at least one temperature of the heat carrier (TV) from an ambient temperature (Tam), The at least one actively adjusted parameter of the working fluid (WF) is selected from the group: the condenser inlet temperature (Tc1), i.e. the inlet temperature to the condenser / evaporator (8) during the charging phase, and / or Condensation onset temperature (Tc2), and / or Condensation end temperature (Tc3), and / or the condenser outlet temperature (Tc4), i.e. the outlet temperature from the condenser / evaporator (8) during the charging phase, and / or the evaporator inlet temperature (Te1), i.e. the inlet temperature to the condenser / evaporator (8) in the discharge phase, and / or Evaporation onset temperature (Te2), and / or Evaporation end temperature (Te3), and / or the evaporator outlet temperature (Te4), i.e. the outlet temperature of the condenser / evaporator (8) in the discharge phase; A method comprising:
2. 1. A method for storing energy, comprising: The invention comprises a closed cyclic thermodynamic transformation (CTT) between a casing (5) storing a working fluid different from atmospheric air, the casing (5) being in gas phase and in pressure equilibrium with atmospheric pressure, and a tank (6) storing said working fluid in liquid or supercritical phase, first in one direction of charging configuration / phase and then in the opposite direction of discharging configuration / phase, In a charging phase, the method stores heat and potential energy in the form of pressure and generates energy in a discharging phase; During the charging phase, the condensation of the working fluid (WF) is carried out by absorption of heat by a heat carrier (TV) carried out in a condenser / evaporator (8) acting as a cooler / condenser in order to store the working fluid (WF) in liquid or supercritical phase; In the discharge phase, the evaporation of the working fluid (WF) carried out in said condenser / evaporator (8) acting as a heater / evaporator is carried out by the transfer of heat from a heat carrier (TV), starting from the liquid or supercritical phase; At least one working fluid (WF) parameter related to condensation and / or evaporation is actively adjusted to control at least one temperature of the heat carrier (TV) and to decouple said at least one temperature of the heat carrier (TV) from the ambient temperature (Tamb); The at least one actively adjusted parameter of the working fluid (WF) is selected from the group: the condenser inlet temperature (Tc1), i.e. the inlet temperature to the condenser / evaporator (8) during the charging phase, and / or Condensation onset temperature (Tc2), and / or Condensation end temperature (Tc3), and / or the condenser outlet temperature (Tc4), i.e. the outlet temperature from the condenser / evaporator (8) during the charging phase, and / or the evaporator inlet temperature (Te1), i.e. the inlet temperature to the condenser / evaporator (8) in the discharge phase, and / or Evaporation onset temperature (Te2), and / or Evaporation end temperature (Te3), and / or the evaporator outlet temperature (Te4), i.e. the outlet temperature of the condenser / evaporator (8) in the discharge phase; 1. A method for storing energy, comprising:
3. 3. The method according to claim 2, wherein the at least one actively adjusted parameter of the working fluid (WF) is the evaporation pressure (Pe), and the adjustment of the evaporation pressure (Pe) affects the evaporation inlet temperature (Te1) and / or the evaporation start temperature (Te2) and / or the evaporation end temperature (Te3).
4. The heat carrier (TV) is a first temperature (T1) at which heat absorption begins; a second temperature (T2) at which heat absorption is terminated; a third temperature (T3) at which heat transfer begins; a fourth temperature (T4) at which heat transfer is terminated; and 4. The method according to claim 2 or 3, wherein the at least one temperature of the heat carrier (TV) that is controlled comprises the first temperature (T1) and / or the fourth temperature (T4) of the heat carrier (TV).
5. 5. The method of claim 4, comprising a step of controlling the first temperature (T1) and / or the fourth temperature (T4) of the heat carrier (TV) so that the fourth temperature (T4) of the heat carrier (TV) is higher than the first temperature (T1), so that there is an excess of heat during evaporation compared to condensation, allowing the heat carrier (TV) to release heat to the environment while the working fluid (WF) is stored.
6. 5. The method of claim 4, comprising a step of controlling the first temperature (T1) and / or the fourth temperature (T4) of the heat carrier (TV) so that the first temperature (T1) of the heat carrier (TV) is higher than the fourth temperature (T4), so that there is an excess of heat during evaporation compared to condensation, allowing the heat carrier (TV) to absorb heat from the environment while the working fluid (WF) is stored.
7. The step of controlling the first temperature (T1) of the heat carrier (TV) to have the excess heat compared to evaporation during condensation comprises: When condensing, increasing the condenser inlet temperature (Tc1), or increasing the difference between the condenser inlet temperature (Tc1) and the condensation start temperature (Tc2), and / or decreasing the condenser outlet temperature (Tc4), or increasing the difference between the condensation end temperature (Tc3) and the condenser outlet temperature (Tc4), and / or When evaporating, increasing the evaporation pressure (Pe), and then increasing the evaporator inlet temperature (Te1) and / or the evaporation start temperature (Te2) and / or the evaporation end temperature (Te3), and / or decreasing the difference between the evaporation end temperature (Te3) and the evaporation outlet temperature (Te4); The method of claim 5 , comprising:
8. The step of controlling the first temperature (T1) of the heat carrier (TV) to have said excess heat during evaporation compared to condensation comprises: When condensing, a step of reducing the condenser inlet temperature (Tc1) or a step of reducing the difference between the condenser inlet temperature (Tc1) and the condensation start temperature (Tc2); and / or increasing the condenser outlet temperature (Tc4) or decreasing the difference between the condensation end temperature (Tc3) and the condenser outlet temperature (Tc4); and / or When evaporating, reducing the evaporation pressure (Pe) and then reducing the evaporator inlet temperature (Te1) and / or the evaporation start temperature (Te2) and / or the evaporation end temperature (Te3); and / or Increasing the difference between the evaporation end temperature (Te3) and the evaporation outlet temperature (Te4); The method of claim 6, comprising:
9. 1. A plant for energy storage, comprising: a working fluid (WF) other than atmospheric air; at least one casing (5) configured to store a working fluid (WF) in gas phase and in pressure equilibrium with atmospheric pressure; at least one tank (6) configured to store said working fluid (WF) in liquid or supercritical phase; a pipe operably interposed between the casing (5) and the tank (6) to directly and / or indirectly connect the casing (5) and the tank (6); Equipped with The piping is at least one filling path extending from the casing (5) to the tank (6); at least one discharge path extending from the tank (6) to the casing (5); at least one expander (2) arranged along the piping and configured to expand the working fluid (WF); optionally an expansion turbine; at least one compressor (3), optionally a turbocharger, arranged along said piping and configured to compress said working fluid (WF); at least one condenser / evaporator (8) arranged along the piping and operably coupled to the tank (6), the condenser / evaporator comprising a heat carrier (TV) configured to transfer heat to the working fluid (WF) or absorb heat from the working fluid (WF); Separate the The plant (1) is configured to perform a closed loop thermodynamic conversion (CTT) between the casing (5) and the tank (6) with a working fluid (WF), first in one direction in a charging configuration and then in the opposite direction in a discharging configuration, In the charging configuration, the plant (1) is configured to condense the working fluid (WF) by absorption of heat by a heat carrier (TV) carried out in a condenser / evaporator (8) acting as a cooler / condenser, and to store the working fluid (WF) in liquid or supercritical phase, In the discharge configuration, the plant (1) is configured to evaporate a working fluid (WF) starting from a liquid or supercritical phase through the transfer of heat from a heat carrier (TV) carried out in the condenser / evaporator (8) acting as a heater / evaporator, The plant (1) also comprises a regulating device and a control unit operably coupled to the regulating device, the control unit being configured and / or programmed to actively regulate at least one working fluid (WF) parameter related to condensation and / or evaporation via the regulating device in order to control at least one temperature of the heat carrier (TV) and to decouple the at least one temperature of the heat carrier (TV) from an ambient temperature (Tamb); The at least one actively adjusted parameter of the working fluid (WF) is selected from the group: the condenser inlet temperature (Tc1), i.e. the temperature at the inlet to the condenser / evaporator (8) in a charging configuration, and / or Condensation onset temperature (Tc2), and / or Condensation end temperature (Tc3), and / or the condenser outlet temperature (Tc4), i.e. the outlet temperature from the condenser / evaporator (8) in a charged configuration, and / or the evaporator inlet temperature (Te1), i.e. the inlet temperature to the condenser / evaporator (8) in the discharge configuration, and / or Evaporation onset temperature (Te2), and / or Evaporation end temperature (Te3), and / or evaporator outlet temperature (Te4), i.e. the outlet temperature of the condenser / evaporator (8) in the discharge configuration; Including, plant.
10. 10. The plant according to claim 9, wherein the regulating device comprises a flow control valve (13) operably arranged between the tank (6) and the condenser / evaporator (8) and configured to regulate the evaporation pressure (Pe) of the working fluid (WF) and the evaporator inlet temperature (Te1) and / or the evaporation start temperature (Te2) and / or the evaporation end temperature (Te3).
11. 11. The plant according to claim 9 or 10, wherein the regulating device comprises a control valve arranged at the inlet of the expander (2) and configured to regulate the evaporation pressure (Pe) of the working fluid (WF) and the evaporator inlet temperature (Te1) and / or the evaporation start temperature (Te2) and / or the evaporation end temperature (Te3).
12. 12. The plant according to claim 9, wherein the regulating device comprises at least one heat exchanger (15; 15A, 15B), which is placed upstream of the condenser / evaporator (8) and downstream of the compressor (2) along the charging path, and which is configured to exchange heat with the environment and to be coupled directly or indirectly to a working fluid (WF) piping, and wherein the at least one heat exchanger (15) configured to exchange heat with the environment is configured to regulate a condenser inlet temperature (Tc1).
13. 13. The plant of claim 12, further comprising a heat accumulator (7) operably coupled to the piping and arranged between the expander (2) and the condenser / evaporator (8), wherein the conditioning device is operably coupled to the heat accumulator (7) or is operably active between the heat accumulator (7) and the condenser / evaporator (8).
14. 14. The plant of claim 13, wherein the heat accumulator (7) is operatively coupled to the piping and arranged upstream of the condenser / evaporator (8) along the charging path, and wherein the at least one heat exchanger (15) configured for exchanging heat with the environment is operatively coupled to the heat accumulator (7), and optionally the heat fluid is the same heat carrier.
15. The plant according to any one of claims 9 to 14, wherein the regulating device is a flow rate and / or level regulator of the heat carrier (TV) and / or working fluid (WF) that is operably active in the condenser / evaporator (8) when operating as a condenser, the flow rate and / or level regulator being configured to regulate the flow rate or the level of the heat carrier (TV) and / or working fluid (WF) and thus the condenser outlet temperature (Tc4).
16. 16. The plant according to claim 9, wherein the regulating device is a flow rate and / or level regulator of the heat carrier (TV) and / or working fluid (WF) that is operably active in the condenser / evaporator (8) when operating as an evaporator, the flow rate and / or level regulator being configured to regulate the flow rate or the level of the heat carrier (TV) and / or working fluid (WF) and thus the evaporator outlet temperature (Te4).
Citation Information
Patent Citations
Energy Storage Plants and Processes
JP2022520218A
Constant flow function air expansion train with combuster
US20180258850A1