Claims
- 1. A magnetohydrodynamic fluidic system, comprising:
a reagent source containing a reagent fluid, a sample source containing a sample fluid that includes a constituent, a reactor operatively connected to said reagent source and said sample source, and MHD pumps for moving said reagent fluid and said sample fluid that includes a constituent in said reactor such that said sample fluid that includes a constituent flows at an interface between said reagent fluid and said sample fluid causing said constituent to be separated from said sample fluid.
- 2. The magnetohydrodynamic fluidic system of claim 1, wherein said reactor is a microchannel reactor and said reagent source includes a first reagent source containing a first sheath fluid and a second reagent source containing a second sheath fluid, and wherein said MHD pumps move said first sheath fluid, said second sheath fluid, and said sample fluid in said microchannel reactor in a layered flow such that said sample fluid flows between said first sheath fluid and said second sheath fluid causing said constituent to be separated from said sample fluid.
- 3. The magnetohydrodynamic fluidic system of claim 2, wherein said microchannel reactor is a diffusion extractor system.
- 4. The magnetohydrodynamic fluidic system of claim 3, wherein said diffusion extractor system is an extractor of high diffusion coefficient molecules.
- 5. The magnetohydrodynamic fluidic system of claim 3, wherein said diffusion extractor system includes an extraction section that extracts the faster diffusing small molecules to said sheath fluids.
- 6. The magnetohydrodynamic fluidic system of claim 3, wherein said sample fluid consists of a mixture of large and small molecules and said diffusion extractor system that extracts the faster diffusing small molecules from the large molecules.
- 7. The magnetohydrodynamic fluidic system of claim 6, wherein said MHD pumps adjust the diffusion of said diffusion extractor system.
- 8. The magnetohydrodynamic fluidic system of claim 7, wherein said MHD pumps adjust the diffusion of said diffusion extractor system by modifying pressure ratios.
- 9. The magnetohydrodynamic fluidic system of claim 2, wherein said microchannel reactor is a molecular loader system.
- 10. The magnetohydrodynamic fluidic system of claim 9, wherein said molecular loader system delivers small molecules to cells or proteins.
- 11. The magnetohydrodynamic fluidic system of claim 10, wherein said molecular loader system loads cells or proteins with small molecules or nucleic acids.
- 12. The magnetohydrodynamic fluidic system of claim 9, wherein said sample fluid consists of a host fluid of host molecules.
- 13. The magnetohydrodynamic fluidic system of claim 9, wherein said first reagent source is a first sheath delivery reservoir containing said first sheath fluid, said second reagent source is a second sheath delivery reservoir containing said second sheath fluid, and said sample fluid consists of a host fluid of host molecules.
- 14. The magnetohydrodynamic fluidic system of claim 13, wherein said host fluid is sandwiched by sheath flow of said first sheath fluid and said second sheath fluid.
- 15. The magnetohydrodynamic fluidic system of claim 14 including a product reservoir operatively connected to said microchannel reactor and wherein certain of said host molecules will diffuse and be delivered to said product reservoir.
- 16. The magnetohydrodynamic fluidic system of claim 14, wherein said MHD pumps control the rate said host molecules will diffuse and be delivered to said product stream and then into the product reservoir.
- 17. The magnetohydrodynamic fluidic system of claim 16, wherein said MHD pumps control the rate said host molecules will diffuse and be delivered to said product reservoir by modifying pressure ratios.
- 18. The magnetohydrodynamic fluidic system of claim 1, wherein said microchannel reactor includes a first loop and a second loop and said interface occurs between said first loop and said second loop.
- 19. The magnetohydrodynamic fluidic system of claim 18, wherein said MHD pumps control the rate said sample fluid that includes a constituent flows at said interface.
- 20. The magnetohydrodynamic fluidic system of claim 19, wherein said MHD pumps include a MHD pump in said first loop and a MHD pump in said second loop.
- 21. The magnetohydrodynamic fluidic system of claim 2, wherein said first sheath fluid and said second sheath fluid are saline buffer solutions and said sample fluid is whole saliva.
- 22. The magnetohydrodynamic fluidic system of claim 21, wherein said constituent in said whole saliva sample fluid is bacteria.
- 23. The magnetohydrodynamic fluidic system of claim 22, wherein said bacteria constituent is separated from said whole saliva sample fluid and delivered to a bacteria reservoir.
- 24. The magnetohydrodynamic fluidic system of claim 23 including detection systems operatively connected to said bacteria reservoir and wherein said bacteria is delivered to said detection systems.
- 25. The magnetohydrodynamic fluidic system of claim 21, wherein said constituent in said whole saliva sample fluid is salivary proteins, ions, etc.
- 26. The magnetohydrodynamic fluidic system of claim 25, wherein said salivary proteins, ions, etc., constituent is separated from said whole saliva sample fluid and delivered to a salivary proteins, ions, etc., reservoir.
- 27. The magnetohydrodynamic fluidic system of claim 26 including detection systems operatively connected to said salivary proteins, ions, etc., reservoir and wherein said salivary proteins, ions, etc., is delivered to said detection systems.
- 28. A magnetohydrodynamic fluidic method, comprising the steps of:
providing a fluid, providing a sample fluid containing a constituent, and using a magnetohydrodynamic drive for moving said fluid and said sample fluid in a flow such that said fluid and said sample fluid form an interface causing said constituent to be separated from said sample fluid.
- 29. The magnetohydrodynamic fluidic method of claim 28, wherein said step of providing a fluid includes providing a first sheath fluid and providing a second sheath fluid, and wherein said step of using a magnetohydrodynamic drive for moving said fluid and said sample fluid moves said first sheath fluid, said second sheath fluid, and said sample fluid in a layered flow such that said sample fluid flows between said first sheath fluid and said second sheath fluid causing said constituent to be separated from said sample fluid.
- 30. The magnetohydrodynamic fluidic method of claim 29, wherein said sample fluid consists of a mixture of large and small molecules and said step of using a magnetohydrodynamic drive for moving said fluid separates said small molecules from said large molecules.
- 31. The magnetohydrodynamic fluidic method of claim 30, including the step of delivering said small molecules to cells or proteins.
- 32. The magnetohydrodynamic fluidic method of claim 31, including the step of loading cells or proteins with said small molecules.
- 33. The magnetohydrodynamic fluidic method of claim 29, wherein said first sheath fluid and said second sheath fluid are saline buffer solutions and said sample fluid is whole saliva.
- 34. The magnetohydrodynamic fluidic method of claim 33, wherein said constituent in said whole saliva sample fluid is bacteria.
- 35. The magnetohydrodynamic fluidic method of claim 34, wherein said bacteria constituent is separated from said whole saliva sample fluid and delivered to a bacteria reservoir.
- 36. The magnetohydrodynamic fluidic method of claim 35 including the step of using detection systems to analyze said bacteria.
- 37. The magnetohydrodynamic fluidic method of claim 33, wherein said constituent in said whole saliva sample fluid is salivary proteins, ions, etc.
- 38. The magnetohydrodynamic fluidic method of claim 34, wherein said salivary proteins, ions, etc., constituent is separated from said whole saliva sample fluid and delivered to a salivary proteins, ions, etc., reservoir.
- 39. The magnetohydrodynamic fluidic method of claim 35 including the step of using detection systems to analyze said salivary proteins, ions, etc.
- 40. The magnetohydrodynamic fluidic method of claim 28, wherein said step of using a magnetohydrodynamic drive for moving said fluid includes modifying pressure ratios.
- 41. The magnetohydrodynamic fluidic method of claim 28, wherein a first loop and a second loop are utilized to form said interface between said fluid and said sample fluid causing said constituent to be separated from said sample fluid.
- 42. The magnetohydrodynamic fluidic method of claim 41, adjusting the rate said sample fluid flows at said interface.
- 43. The magnetohydrodynamic fluidic method of claim 41, adjusting the rate said fluid flows at said interface.
- 44. The magnetohydrodynamic fluidic method of claim 41, adjusting the rates said fluid and said sample fluid flow at said interface.
Government Interests
[0001] The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.