Methods and/or systems for magnetobaric assisted generation of power from low temperature heat
View Patent ↗Methods and/or systems using magnetically assisted pressurization of a gas for the generation of useful power from heat transfer using heat sources at lower temperatures in a manner that does not require the emission of CO 2 .
1. A method comprising:
adsorbing a paramagnetic gas and/or magnetic gas on a magnetically susceptible adsorbent facilitated by application of a magnetic field;
removing said magnetic field thereby desorbing at least a portion of said gas from said adsorbent into a limited void space of a pressure worthy vessel thereby pressurizing said desorbed gas;
heating said pressurized gas by directing said pressurized gas into a heat exchanger, said heat exchanger receiving heat from a heat source; and
driving a turbine generator with said heated and pressurized gas.
2. The method of claim 1 , and further comprising adsorbing ambient heat to maintain said pressure worthy vessel isothermal during said desorption.
3. The method of claim 1 , and further comprising applying a current to a superconductive electric magnet to generate said magnetic field.
4. The method of claim 1 , wherein said magnetic field is permanently associated with a solid material.
5. The method of claim 1 , wherein said heat source comprises a geothermal heat source.
6. The method of claim 5 , wherein said geothermal heat source imparts heat to the said pressurized desorbed gas using a downhole heat exchanger (DHE).
7. The method of claim 5 , wherein said geothermal heat source imparts heat to the said pressurized desorbed gas using an aboveground heat exchanger that is heated by hot water emerging from underground.
8. A method comprising:
adsorbing a paramagnetic gas and/or magnetic gas on a magnetically susceptible adsorbent thereby forming an adsorbent/adsorbate pair;
changing a magnetic field applied to said adsorbent/adsorbate pair thereby desorbing at least a portion of said adsorbed gas into a limited void space of a pressure worthy isothermal vessel thereby pressurizing said desorbed gas;
directing said pressurized gas over a heat source thereby heating said pressurized gas; and
driving a turbine generator to with said heated and pressurized gas.
9. The method of claim 8 , wherein said turbine expels said gas at an exit temperature below or equal to the temperature of the surroundings.
10. The method of claim 8 , wherein said heat source derives from solar energy concentrated using concave mirrors to generate high temperature from sun light.
11. The method of claim 8 , wherein the desorption or absorption energy applied from said magnetic field is in part given back to the process by the adsorption of heat into said pressure worthy vessel during isothermal desorption.