Claims
- 1. A combinatorial chemistry reactor system for the parallel processing of reaction mixtures, comprising
a reactor block comprising a monolithic body of thermally conductive material having a plurality of wells therein for containing reaction mixtures, a head adapted for assembly with the reactor block for conducting reactions in the wells, passaging in the head adapted to communicate with the head when the head is assembled with the reactor block, and gaps in the monolithic body of the reactor block extending between the wells to thermally isolate the wells from one another.
- 2. A system as set forth in claim 1 further comprising a stirring assembly on the head comprising a plurality of stirrers adapted to extend into the wells when the reactor block is assembled with the head, and a drive mechanism for moving said stirrers, said reactor block having a temperature controlled section containing at least portions of said wells, and an area of reduced cross section in at least one of the reactor block and the head at a location between the temperature controlled section of the reactor block and said drive mechanism to thermally isolate the temperature controlled section of the reactor block from said drive mechanism.
- 3. A system as set forth in claim 2 wherein said area of reduced cross section is in said reactor block at a location between opposite ends of at least one of said wells.
- 4. A system as set forth in claim 2 wherein said area of reduced cross section is in the head.
- 5. A system as set forth in claim 1 wherein said head is adapted for assembly with the reactor block to define reaction chambers extending down into the reactor block at locations corresponding to said wells, said reaction chambers having reaction zones in which chemical reactions are conducted, and an area of reduced cross section in at least one of the reactor blocks and the head at a location above at least one reaction zone to thermally isolate the reaction zone from portions of the system above said area of reduced cross section.
- 6. A system as set forth in claim 5 wherein said area of reduced cross section is in the reactor block.
- 7. A system as set forth in claim 5 wherein said area of reduced cross section is in the head.
- 8. A system as set forth in claim 5 wherein the reactor block is recessed to reduce the thickness of the block at locations between opposite ends of each well.
- 9. A system as set forth in claim 8 wherein the reactor block has an upper section, a lower section, and a relatively narrow intermediate section connecting the upper and lower sections for reducing the transfer of heat therebetween, the wells extending down through the upper and intermediate sections into the lower sections, and the gaps between the wells dividing the lower section into a plurality of individual well sections thermally isolated from one another by the gaps.
- 10. A system as set forth in claim 1 wherein said head is adapted for assembly with the reactor block to define reaction chambers, said head having a section adjacent the reactor block and a remote section away from the reactor block, said reactor block having a temperature controlled section and an area of reduced cross section in at least one of the reactor block and the head at a location between the temperature controlled section of the reactor block and the remote section of the head to thermally isolate the temperature controlled section from the remote section of the head.
- 11. A system as set forth in claim 10 wherein said area of reduced cross section is in the reactor block.
- 12. A system as set forth in claim 10 wherein said area of reduced cross section is in the head.
- 13. A system as set forth in claim 1 wherein the reactor block has an upper section, a lower section, and a relatively narrow intermediate section connecting the upper and lower sections for reducing the transfer of heat therebetween, the wells extending down through the upper and intermediate sections into the lower sections, and the gaps between the wells dividing the lower section into a plurality of individual well sections thermally isolated from one another by the gaps.
- 14. A system as set forth in claim 1 wherein said monolithic body is essentially devoid of fluid transport passaging.
- 15. A system as set forth in claim 14 wherein said monolithic body is essentially devoid of passaging for instrumentation.
- 16. A system as set forth in claim 1 further comprising a temperature control unit defining a cavity for receiving the lower section of the reactor block therein, said temperature control unit being operable to control the temperatures of the reaction mixtures in respective wells independently of one another.
- 17. A system as set forth in claim 16 wherein said temperature control unit comprises a plurality of heat transfer plates defining said cavity.
- 18. A system as set forth in claim 17 further comprising a mechanism operable to press the reactor block against said heat transfer plates when the reactor block is in said cavity.
- 19. A system as set forth in claim 17 further comprising layers of thermal insulation between said heat transfer plates.
- 20. A system as set forth in claim 17 wherein said heat transfer plates are spring biased into contact with said reactor body.
- 21. A system as set forth in claim 16 wherein said temperature control unit comprises a plurality of heat transfer plates, each being spring biased into contact with said reactor block when the reactor block in received in said cavity.
- 22. A system as set forth in claim 21 further comprising layers of thermal insulation between said heat transfer plates.
- 23. A system as set forth in claim 16 wherein said temperature control unit is configured for cradling said reactor block therein.
- 24. A system as set forth in claim 16 wherein the reactor block and temperature control unit have cooperating tapered surfaces adapted for face to face contact with one another.
- 25. A system as set forth in claim 24 further comprising a mechanism operable to press the tapered surfaces of the reactor block against the tapered surfaces of the temperature control unit when the reactor block is in said cavity.
- 26. A combinatorial chemistry reactor system for the parallel processing of reaction mixtures, comprising
a reactor block comprising a body of thermally conductive material having a first face, a plurality of wells extending from said first face into the body for containing reaction mixtures, a head adapted for assembly with the reactor block to define reaction chambers, each reaction chamber being defined at least in part by a respective well and having a bottom end toward the bottom of the well and a head end toward the head, and at least one of the reactor block and the head having an area of reduced cross section at a location spaced above the bottom end of at least one reaction chamber to thermally isolate portions of the reaction chamber below said area from portions of the system above said area.
- 27. A system as set forth in claim 26 further comprising passaging in the head adapted to communicate with the wells when the head is assembled with the reactor block.
- 28. A system as set forth in claim 27 wherein said body is a monolithic body essentially devoid of fluid transport passaging.
- 29. A system as set forth in claim 28 wherein said monolithic body is essentially devoid of passaging for instrumentation.
- 30. A system as set forth in claim 26 wherein the reactor block has gaps between the wells to thermally isolate the wells from one another.
- 31. A system as set forth in claim 26 wherein said area of reduced cross section is in said reactor block at a location between opposite ends of at least one of said wells.
- 32. A system as set forth in claim 31 wherein the reactor block has an upper section, a lower section constituting a temperature controlled section, and a relatively narrow intermediate section connecting the upper and lower sections and including said area of reduced cross section, the wells extending down through the upper and intermediate sections into the lower sections, and gaps between the wells dividing the lower section into a plurality of individual well sections thermally isolated from one another by the gaps.
- 33. A system as set forth in claim 26 wherein said area of reduced cross section is in the head.
- 34. A system as set forth in claim 26 wherein said reaction chambers have reaction zones in which chemical reactions are conducted, and wherein said area of reduced cross section is at a location above at least one reaction zone to thermally isolate the reaction zone from said portions of the system above said area of reduced cross section.
- 35. A system as set forth in claim 34 wherein said area of reduced cross section is in the reactor block.
- 36. A system as set forth in claim 34 wherein said area of reduced cross section is in the head.
- 37. A system as set forth in claim 26 wherein said head has a section adjacent the reactor block and a remote section away from the reactor block, said reactor block having a temperature controlled section containing at least portions of said wells, said area of reduced cross section being a location between the temperature controlled section of the reactor block and the remote section of the head to thermally isolate the temperature controlled section from the remote section of the head.
- 38. A system as set forth in claim 37 wherein said area of reduced cross section is in the reactor block.
- 39. A system as set forth in claim 37 wherein said area of reduced cross section is in the head.
- 40. A system as set forth in claim 26 wherein the reactor body has an upper section, a lower section, and a relatively narrow intermediate section connecting the upper and lower sections and corresponding to said area of reduced cross section, the wells extending down through the upper and intermediate sections into the lower sections.
- 41. A system as set forth in claim 40 further comprising air gaps extending between the wells and dividing the lower section of the reactor body into a plurality of individual well sections thermally isolated from one another by the gaps.
- 42. A system as set forth in claim 40 further comprising a temperature control unit defining a cavity for receiving the reactor block therein, said temperature control unit being operable to control the temperature of said individual well sections.
- 43. A system as set forth in claim 42 wherein said temperature control unit comprises a plurality of heat transfer plates defining said cavity.
- 44. A system as set forth in claim 43 further comprising a mechanism operable to press the reactor block against said heat transfer plates when the reactor block is in said cavity.
- 45. A system as set forth in claim 43 further comprising layers of thermal insulation between said heat transfer plates.
- 46. A system as set forth in claim 43 wherein said heat transfer plates are spring biased into contact with said reactor body.
- 47. A combinatorial chemistry reactor system for the parallel processing of reaction mixtures, comprising
a reactor block comprising a monolithic body of thermally conductive material essentially devoid of fluid transport passaging and passaging for instrumentation, said body having an upper section, a lower section, and a relatively narrow intermediate section connecting the upper and lower sections for reducing the transfer of heat therebetween, said upper section having an upper face, a plurality of wells in the body for containing reaction mixtures, each well extending from said first face down through the upper and intermediate sections into the lower section, gaps extending between the wells dividing the lower section of the rector body into a plurality of individual well sections thermally isolated from one another by the gaps, recesses in the body to reduce the thickness of the body at locations between opposite ends of each well to reduce the transfer of heat toward the first face of the block, and a head adapted for assembly with said reactor block for conducting reactions in the wells.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation-in-part of pending application Ser. No. 09/826,606, filed Apr. 5, 2001, entitled “Parallel Reactor for Sampling and Conducting In Situ Flow-Through Reactions and Method of Using Same”, assigned to Symyx Technologies, Inc., and incorporated herein by reference for all purposes.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09826606 |
Apr 2001 |
US |
Child |
10116861 |
Apr 2002 |
US |