Energy storage systems and methods
The technical description relates to energy storage systems and methods. Specific examples described herein relate to methods of selectively discharging electrical energy from an energy storage system. An example method includes initializing an energy storage system, evaluating demand for electricity, evaluating tank temperatures, and updating the operational status of the energy storage system.
1 . A method of selectively discharging electrical energy from an energy storage system, the method comprising:
initializing an energy storage system having a loading operational phase, a storage operational phase, and a discharge operational phase and comprising:
a first in-ground fluid storage tank defining a first chamber;
a second in-ground fluid storage tank defining a second chamber;
a first fluid disposed in the first chamber;
a second fluid disposed in the second chamber;
a heating unit operably connected to the first in-ground fluid storage tank and adapted to heat the first fluid;
a cooling unit operably connected to the second in-ground fluid storage tank and adapted to cool the second fluid; and
a thermoelectric generator exposed to the first fluid and the second fluid and adapted to convert a temperature difference between the first fluid and the second fluid directly to electrical energy;
evaluating demand for electricity and price of electricity parameters to identify a desirable operational phase of the energy storage system based on pre-defined criteria;
evaluating tank temperatures in the energy storage system by determining a temperature of the first fluid in the first fluid storage tank and determining a temperature of the second fluid in the second fluid storage tank; and
updating the operational status of the energy storage system based on the evaluating demand for electricity and price of electricity parameters and the evaluating tank temperatures by maintaining the current operational phase of the energy storage system or changing the operational phase of the energy storage system from one of the loading operational phase, the storage operational phase, and the discharge operational phase to another, different one of the loading operational phase, the storage operational phase, and the discharge operational phase;
wherein the heating unit comprises an electrical induction heater partially disposed in ground adjacent the first in-ground fluid storage tank and having a heating coil disposed within the first chamber and in contact with the first fluid.
2 . The method of claim 1 , further comprising a second heating unit partially disposed in ground adjacent the first in-ground fluid storage tank and having a second heating coil disposed in the first chamber and in contact with the first fluid.
3 . A method of selectively discharging electrical energy from an energy storage system, the method comprising:
initializing an energy storage system having a loading operational phase, a storage operational phase, and a discharge operational phase and comprising:
a first in-ground fluid storage tank defining a first chamber;
a second in-ground fluid storage tank defining a second chamber;
a first fluid disposed in the first chamber;
a second fluid disposed in the second chamber;
a heating unit operably connected to the first in-ground fluid storage tank and adapted to heat the first fluid;
a cooling unit operably connected to the second in-ground fluid storage tank and adapted to cool the second fluid; and
a thermoelectric generator exposed to the first fluid and the second fluid and adapted to convert a temperature difference between the first fluid and the second fluid directly to electrical energy;
evaluating demand for electricity and price of electricity parameters to identify a desirable operational phase of the energy storage system based on pre-defined criteria;
evaluating tank temperatures in the energy storage system by determining a temperature of the first fluid in the first fluid storage tank and determining a temperature of the second fluid in the second fluid storage tank; and
updating the operational status of the energy storage system based on the evaluating demand for electricity and price of electricity parameters and the evaluating tank temperatures by maintaining the current operational phase of the energy storage system or changing the operational phase of the energy storage system from one of the loading operational phase, the storage operational phase, and the discharge operational phase to another, different one of the loading operational phase, the storage operational phase, and the discharge operational phase;
wherein the cooling unit comprises an electric refrigeration unit disposed in ground adjacent the second tank and having a cooling coil disposed in the second chamber and in contact with the second fluid.
4 . A method of selectively discharging electrical energy from an energy storage system, the method comprising:
initializing an energy storage system having a loading operational phase, a storage operational phase, and a discharge operational phase and comprising:
a first in-ground fluid storage tank defining a first chamber;
a second in-ground fluid storage tank defining a second chamber;
a first fluid disposed in the first chamber;
a second fluid disposed in the second chamber;
a heating unit partially disposed in ground adjacent the first in-ground fluid storage tank and having a heating coil disposed within the first chamber and in contact with the first fluid;
a cooling unit disposed in ground adjacent the second in-ground fluid storage tank and having a cooling coil disposed in the second chamber; and
a thermoelectric generator exposed to the first fluid and the second fluid and adapted to convert a temperature difference between the first fluid and the second fluid directly to electrical energy;
evaluating demand for electricity and price of electricity parameters to identify a desirable operational phase of the energy storage system based on pre-defined criteria;
evaluating tank temperatures in the energy storage system by determining a temperature of the first fluid in the first fluid storage tank and determining a temperature of the second fluid in the second fluid storage tank;
updating the operational status of the energy storage system based on the evaluating demand for electricity and price of electricity parameters and the evaluating tank temperatures by maintaining the current operational phase of the energy storage system or changing the operational phase of the energy storage system from one of the loading operational phase, the storage operational phase, and the discharge operational phase to another, different one of the loading operational phase, the storage operational phase, and the discharge operational phase; and
repeating the evaluating demand for electricity and price of electricity parameters, the evaluating tank temperatures in the energy storage system, and updating the operational status of the energy storage system at a pre-determined frequency of at least once per hour.
5 . The method of claim 4 , wherein the first fluid and the second fluid are the same.
6 . A method of selectively discharging electrical energy from an energy storage system, the method comprising:
initializing an energy storage system having a loading operational phase, a storage operational phase, and a discharge operational phase and comprising:
a first in-ground fluid storage tank defining a first chamber;
a second in-ground fluid storage tank defining a second chamber;
a first fluid disposed in the first chamber, the first fluid comprising water;
a second fluid disposed in the second chamber, the second fluid comprising water;
a heating unit partially disposed in ground adjacent the first in-ground fluid storage tank and having a heating coil disposed within the first chamber and in contact with the first fluid;
a cooling unit disposed in ground adjacent the second in-ground fluid storage tank and having a cooling coil disposed in the second chamber; and
a thermoelectric generator exposed to the first fluid and the second fluid and adapted to convert a temperature difference between the first fluid and the second fluid directly to electrical energy;
evaluating demand for electricity and price of electricity parameters to identify a desirable operational phase of the energy storage system based on pre-defined criteria;
evaluating tank temperatures in the energy storage system by determining a temperature of the first fluid in the first fluid storage tank and determining a temperature of the second fluid in the second fluid storage tank;
updating the operational status of the energy storage system based on the evaluating demand for electricity and price of electricity parameters and the evaluating tank temperatures by maintaining the current operational phase of the energy storage system or changing the operational phase of the energy storage system from one of the loading operational phase, the storage operational phase, and the discharge operational phase to another, different one of the loading operational phase, the storage operational phase, and the discharge operational phase; and
repeating the evaluating demand for electricity and price of electricity parameters, the evaluating tank temperatures in the energy storage system, and updating the operational status of the energy storage system at a pre-determined frequency of at least once per second.