Integrated process for carbon capture and energy production
View Patent ↗The present invention pertains to new methods for generating energy and useful nitrogen compounds from captured carbon dioxide. It involves employing an osmotic engine, draw solution, and feed solution. An osmotic gradient between the solutions assists in generating energy and a solution of ammonium carbonate, ammonium bicarbonate or mixture thereof. This solution may be decomposed to form ammonia, carbon dioxide, a precipitate, or a mixture thereof.
1. An integrated process for generating energy and useful nitrogen compounds from captured carbon dioxide comprising:
forming a solution of ammonium carbonate, ammonium bicarbonate, ammonium carbamate or mixture thereof wherein said solution is formed from at least a portion of captured carbon dioxide; and
decomposing the solution of ammonium carbonate, ammonium bicarbonate, ammonium carbamate or mixture thereof to form a second aqueous solution comprising ammonia, carbon dioxide, or a mixture thereof;
wherein the decomposing of the solution to form said second aqueous solution is conducted in the presence of a water soluble organic solvent to form a gaseous carbon dioxide and aqueous ammonia in the absence of a precipitate.
2. The integrated process of claim 1 wherein the captured carbon dioxide used to form the solution comprises carbon dioxide captured from combustion or oxidation of one or more hydrocarbons, from steam reforming, from gas shift reaction, from catalytic reforming, from natural gas purification, from land fill gas, from biogas, from waste water treatment, fermentation, respiration, from air, or from mixtures thereof.
3. The integrated process of claim 1 wherein the formation of the solution is characterized by the purification of gas streams containing hydrogen, methane, or other desired gas by capturing carbon dioxide in these gas streams.
4. The integrated process of claim 1 further comprising producing ammonium carbamate, urea, or a derivative thereof.
5. The integrated process of claim 1 wherein the decomposing of the solution is characterized by decomposing at a pressure of from about 0.75 atmospheres to about 1.25 atmospheres and a temperature of less than about 70° C.
6. The integrated process of claim 1 wherein the decomposing of the solution is characterized by decomposing at a temperature of from about 40° C. to about 60° C.
7. The integrated process of claim 1 wherein the organic solvent is removed via distillation, membrane distillation, or in the presence of a semipermeable membrane.
8. The integrated process of claim 1 wherein the decomposing of the solution occurs under room temperature and pressure conditions.
9. The integrated process of claim 1 wherein the second aqueous solution comprises water, organic solvent, ammonia, and carbon dioxide wherein the concentration of ammonia is higher than the concentration of carbon dioxide.
10. The integrated process of claim 1 further comprising release of gaseous carbon dioxide from said second aqueous solution.
11. The integrated process of claim 1 further comprising purifying gaseous carbon dioxide by bubbling the carbon dioxide through water to remove organic solvent vapor and ammonia.
12. The integrated process of claim 1 further comprising separating the water soluble organic solvent from said second aqueous solution.
13. The integrated process of claim 12 wherein waste heat is used to separate the water soluble organic solvent from said second aqueous solution.
14. The integrated process of claim 1 wherein the water soluble organic solvent is non-azeotropic.
15. The integrated process of claim 1 wherein the water soluble organic solvent has a boiling point below that of water.
16. The integrated process of claim 1 wherein the water soluble organic solvent is selected from acetone, methyl formate, ethanol, and isopropyl alcohol.
17. The integrated process of claim 1 wherein the water soluble organic solvent is acetone.