Claims
- 1. A heat transfer composition comprising:
soy-based oil; and an additive comprising: a nano-particle size diamond powder characterized by a first mass, and a chemical agent characterized by a second mass, wherein the ratio of the second mass to the first mass is greater than one.
- 2. The heat transfer composition of claim 1, wherein the chemical agent comprises D-sorbitol Hexaacetate, and the mass ratio of diamond to D-sorbitol Hexaacetate is about 1:2.9.
- 3. The heat transfer composition of claim 1, wherein the nano-particle size diamond powder comprises particles having an average size of less than 100 nanometers.
- 4. A method for transferring heat between a heat source and a heat sink, the method comprising the steps of:
transferring heat between the heat source and the heat sink with a heat transfer composition that includes: a nano-particle size diamond powder characterized by a first mass, and a chemical agent characterized by a second mass, wherein the ratio of the second mass to the first mass is greater than one.
- 5. The method of claim 4, prior to the step of transferring heat, further including the steps of:
treating the nano-particle size diamond powder with the chemical agent; and combining the treated powder with a heat transfer medium.
- 6. The method of claim 5, wherein the step of treating includes the steps of:
dispersing the chemical agent in a solvent to form a mixture; and contacting the nano-particle size diamond powder with the mixture.
- 7. The method of claim 5, wherein the step of treating further includes at least one of the steps of:
a) complexing the chemical agent with accessible surfaces of particles of the nano-particle size diamond powder; and b) physically adsorbing the chemical agent on accessible surfaces of particles of the nano-particle size diamond powder.
- 8. The method of claim 7, wherein the chemical agent is in sufficient amount to form at least a partial monolayer of the chemical agent on the accessible surfaces of the powder particles.
- 9. The method of claim 5, wherein the heat transfer medium comprises soy-based oil.
- 10. The method of claim 5, wherein the heat transfer medium comprises ethylene glycol.
- 11. The method of claim 5, wherein the heat transfer medium is selected from the group consisting of water; aqueous brines; mixtures of water with at least one of the group consisting of alcohols, glycols, and ammonia; hydrocarbons; mineral oils; natural oils; synthetic oils; fats; waxes; ethers; esters; glycols; halogen derivatives of at least one of the group consisting of hydrocarbons, mineral oils, natural oils, synthetic oils, fats, waxes, ethers, esters, and glycols; silicate esters; biphenyl; polyaromatic compounds; salt-hydrates, organic eutectics, clathrate-hydrates; paraffins; inorganic and organic eutectic mixtures; and combinations thereof.
- 12. The method of claim 4, wherein the chemical agent comprises D-sorbitol Hexaacetate, and the mass ratio of diamond to D-sorbitol Hexaacetate is about 1:2.9.
- 13. The method of claim 4, wherein the powder comprises particles having an average size of less than 100 nanometers.
- 14. A heat transfer composition comprising:
a heat transfer medium; and an additive comprising: a nano-particle size diamond powder characterized by a first mass, an a chemical agent characterized by a second mass, wherein the ratio of the second mass to the first mass is greater than one.
- 15. The heat transfer composition of claim 14, wherein the chemical agent comprises D-sorbitol Hexaacetate, and the mass ratio of diamond to D-sorbitol Hexaacetate is about 1:2.9.
- 16. The heat transfer composition of claim 14, wherein the powder comprises particles having an average size of less than 100 nanometers.
- 17. The heat transfer composition of claim 14, wherein the heat transfer medium comprises soy-based oil.
- 18. The heat transfer composition of claim 14, wherein the heat transfer medium comprises ethlylene glycol.
- 19. The heat transfer composition of claim 14, wherein the heat transfer medium is selected from the group consisting of water; aqueous brines; mixtures of water with at least one of the group consisting of alcohols, glycols, and ammonia; hydrocarbons; mineral oils; natural oils; synthetic oils; fats; waxes; ethers; esters; glycols; halogen derivatives of at least one of the group consisting of hydrocarbons, mineral oils, natural oils, synthetic oils, fats, waxes, ethers, esters, and glycols; silicate esters; biphenyl; polyaromatic compounds; salt-hydrates, organic eutectics, clathrate-hydrates; paraffins; inorganic and organic eutectic mixtures; and combinations thereof.
- 20. The heat transfer composition of claim 14, further including at least one additional additive selected from the group consisting of functionalizing agents, dispersants, surfactants, antioxidants, and combinations thereof.
- 21. A heat transfer composition comprising:
a heat transfer medium; and a nano-particle size diamond powder suspended in the heat transfer medium.
- 22. The heat transfer composition of claim 21, wherein the nano-particle size diamond powder is characterized by a first mass, further comprising a chemical agent characterized by a second mass, wherein the ratio of the second mass to the first mass is greater than one.
- 23. The heat transfer composition of claim 22, wherein the chemical agent comprises D-sorbitol Hexaacetate, and the mass ratio of diamond to D-sorbitol Hexaacetate is about 1:2.9.
- 24. The heat transfer composition of claim 22, wherein the powder comprises particles having an average size of less than 100 nanometers.
- 25. The heat transfer composition of claim 22, wherein the heat transfer medium comprises soy-based oil.
- 26. The heat transfer composition of claim 22, wherein the heat transfer medium comprises ethlylene glycol.
- 27. The heat transfer composition of claim 22, wherein the heat transfer medium is selected from the group consisting of water; aqueous brines; mixtures of water with at least one of the group consisting of alcohols, glycols, and ammonia; hydrocarbons; mineral oils; natural oils; synthetic oils; fats; waxes; ethers; esters; glycols; halogen derivatives of at least one of the group consisting of hydrocarbons, mineral oils, natural oils, synthetic oils, fats, waxes, ethers, esters, and glycols; silicate esters; biphenyl; polyaromatic compounds; salt-hydrates, organic eutectics, clathrate-hydrates; paraffins; inorganic and organic eutectic mixtures; and combinations thereof.
- 28. The heat transfer composition of claim 22, wherein the volume fraction of the nano-particle size diamond powder to the heat transfer medium is in the range of 0.01% to 10.0%.
- 29. The heat transfer composition of claim 22, wherein the volume fraction of the nano-particle size diamond powder to the heat transfer medium is in the range of 0.05% to 5.0%.
- 30. The heat transfer composition of claim 22, further including at least one additional additive selected from the group consisting of functionalizing agents, dispersants, surfactants, antioxidants, and combinations thereof.
- 31. A heat transfer composition comprising:
a heat transfer medium with a first volume; and a nano-particle size conductive material powder with a second volume, wherein the nano-particle size conductive material powder is suspended in the heat transfer medium to form a suspension in which the volume fraction of the nano-particle size conductive material powder to the heat transfer medium is in the range of 0.01% to 10.0%.
- 32. The heat transfer composition of claim 31, wherein the volume fraction of the nano-particle size conductive material powder to the heat transfer medium is in the range of 0.05% to 5.0%.
- 33. The heat transfer composition of claim 31, wherein the nano-particle size conductive material powder is formed from at least one carbon material selected from the group consisting of graphite, carbon nanotubes, diamond, and fullerene carbons of the general formula C2n, where n is an integer of at least 30.
- 34. The heat transfer composition of claim 33, wherein the nano-particle size diamond powder is characterized by a first mass, further comprising a chemical agent characterized by a second mass, wherein the ratio of the second mass to the first mass is greater than one.
- 35. The heat transfer composition of claim 34, wherein the chemical agent comprises D-sorbitol Hexaacetate, and the mass ratio of diamond to D-sorbitol Hexaacetate is about 1:2.9.
- 36. The heat transfer composition of claim 31, wherein the nano-particle size conductive material powder is formed from at least one material selected from the group consisting of metals, alloys, metal compounds, and combinations thereof.
- 37. The heat transfer composition of claim 31, wherein the nano-particle size conductive material powder is formed from at least one material selected from the group consisting of metal oxides.
- 38. The heat transfer composition of claim 31, wherein the nano-particle size conductive material powder comprises particles having an average size of less than 100 nanometers.
- 39. The heat transfer composition of claim 31, wherein the heat transfer medium comprises soy-based oil.
- 40. The heat transfer composition of claim 31, wherein the heat transfer medium comprises ethlylene glycol.
- 41. The heat transfer composition of claim 31, wherein the heat transfer medium is selected from the group consisting of water; aqueous brines; mixtures of water with at least one of the group consisting of alcohols, glycols, and ammonia; hydrocarbons; mineral oils; natural oils; synthetic oils; fats; waxes; ethers; esters; glycols; halogen derivatives of at least one of the group consisting of hydrocarbons, mineral oils, natural oils, synthetic oils, fats, waxes, ethers, esters, and glycols; silicate esters; biphenyl; polyaromatic compounds; salt-hydrates, organic eutectics, clathrate-hydrates; paraffins; inorganic and organic eutectic mixtures; and combinations thereof.
- 42. The heat transfer composition of claim 31, further including at least one additional additive selected from the group consisting of functionalizing agents, dispersants, surfactants, antioxidants, and combinations thereof.
- 43. A method for transferring heat between a heat source and a heat sink, the method comprising the step of:
transferring heat between the heat source and the heat sink with a heat transfer composition that includes: a heat transfer medium with a first volume; and a nano-particle size conductive material powder with a second volume, wherein the nano-particle size conductive material powder is suspended in the heat transfer medium to form a suspension in which the volume fraction of the nano-particle size conductive material powder to the heat transfer medium is in the range of 0.01% to 10.0%.
- 44. The method of claim 43, wherein the volume fraction of the nano-particle size conductive material powder to the heat transfer medium is in the range of 0.05% to 5.0%.
- 45. The method of claim 44, wherein the nano-particle size conductive material powder is formed from at least one carbon material selected from the group consisting of graphite, carbon nanotubes, diamond, and fullerene carbons of the general formula C2n, where n is an integer of at least 30.
- 46. The method of claim 45, wherein a nano-particle size diamond powder is characterized by a first mass, further comprising a chemical agent characterized by a second mass, wherein the ratio of the second mass to the first mass is greater than one.
- 47. The method of claim 46, wherein the chemical agent comprises D-sorbitol Hexaacetate, and the mass ratio of diamond to D-sorbitol Hexaacetate is about 1:2.9.
- 48. The method of claim 46, prior to the step of transferring heat, further including the steps of:
treating the nano-particle size diamond powder with the chemical agent; and combining the treated powder with a heat transfer medium.
- 49. The method of claim 48, wherein the step of treating includes the steps of dispersing the chemical agent in a solvent to form a mixture; and contacting the nano-particle size diamond powder with the mixture.
- 50. The method of claim 48, wherein the step of treating further includes at least one of the steps of:
a) complexing the chemical agent with accessible surfaces of particles of the nano-particle size diamond powder; and b) physically adsorbing the chemical agent on accessible surfaces of particles of the nano-particle size diamond powder.
- 51. The method of claim 43, wherein the nano-particle size conductive material powder is formed from at least one material selected from the group consisting of metal oxides.
- 52. The method of claim 43, wherein the nano-particle size conductive material powder comprises particles having an average size of less than 100 nanometers.
- 53. The method of claim 43, wherein the heat transfer medium comprises soy-based oil.
- 54. The method of claim 43, wherein the heat transfer medium comprises ethlylene glycol.
- 55. The method of claim 43, wherein the heat transfer medium is selected from the group consisting of water; aqueous brines; mixtures of water with at least one of the group consisting of alcohols, glycols, and ammonia; hydrocarbons; mineral oils; natural oils; synthetic oils; fats; waxes; ethers; esters; glycols; halogen derivatives of at least one of the group consisting of hydrocarbons, mineral oils, natural oils, synthetic oils, fats, waxes, ethers, esters, and glycols; silicate esters; biphenyl; polyaromatic compounds; salt-hydrates, organic eutectics, clathrate-hydrates; paraffins; inorganic and organic eutectic mixtures; and combinations thereof.
- 56. The method of claim 43, further including at least one additional additive selected from the group consisting of functionalizing agents, dispersants, surfactants, antioxidants, and combinations thereof.
Government Interests
[0001] The present invention was made with Government support through a grant awarded by the Tennessee Valley Authority. The United States Government may have certain rights to this invention pursuant to the grant.