Claims
- 1. A liquid chromatographic system having multiple channels comprising:
at least two syringe pumps; at least two sources of liquid; at least one time-proportioning electronically controllable liquid gradient switching valve; said switching valve being connected to switch liquid flow from one or the other of said at least two sources of liquid to an inlet of at least one of said at least two syringe pumps; one of said at least two syringe pumps being used for each one of the multiple channels; each of the said pumps having a displacement of at least five milliliters; said one of said syringe pumps having a discharge outlet connected to a sample injection device and thence to a chromatographic column; and an over-pressure system for compensating for pressures in the liquid above a preset pressure.
- 2. A liquid chromatographic system according to claim 1 wherein the over-pressure system reduces the rate of flow of the channel having the pressure above the preset pressure.
- 3. A liquid chromatographic system according to claim 1 wherein the over-pressure system includes a subsystem that tests for a flow rate at which the pressure is less than a predetermined pressure.
- 4. A liquid chromatographic system according to claim 3 in which said at least two syringe pumps are driven by at least one pump motor and the over-pressure system includes a subsystem that shuts the at least one motor off when the subsystem that tests for a flow rate does not select a flow rate at which said pressure is below the preset pressure.
- 5. A liquid chromatographic system according to claim 1 in which the over-pressure system includes a subsystem that completes a pump cycle at a lower pumping rate until detecting a pressure above a preset pressure and then restores the flow rate to its original rate.
- 6. A liquid chromatographic system according to claim 1 wherein said one of said at least two syringe pumps has a piston and a cylinder; said pump having a refill flow rate at least 3 times faster than its delivery flow.
- 7. A liquid chromatographic system in accordance with claim 2 in which said at least one time-proportioning electronically controllable liquid gradient switching valve is arranged to produce consecutive pulses of liquid from at least one of said at least two sources of liquid to a refill inlet at a fluid velocity high enough to induce turbulent mixing in a space between a head of a piston and that part of a cylinder not occluded by the piston.
- 8. A liquid chromatographic system in accordance with claim 7 further including means for synchronizing the at least one time-proportioning electronically controllable liquid gradient switching valve with refill movement of said piston so that one charge of each desired fluid at a desired volume proportion is deposited in each pump and mixed to form at least one part of a step of a stepped gradient.
- 9. A liquid chromatographic system in accordance with claim 8 wherein at least two equal charges of each of two fluids are alternately delivered to an inlet of at least one of said at least two syringe pumps; said two fluids being proportioned in the at least one time-proportioning electronically controllable liquid gradient switching valve during a refill stroke of said piston and then delivered as a single step of a step gradient to the rest of said system in the order of sample injection device, chromatographic column, and fraction collector, said refill stroke being sufficiently rapid to cause mixing in a cylinder of the pump.
- 10. A liquid chromatographic system in accordance with claim 9 wherein said order includes an absorbance detector between said chromatographic column and fraction collector.
- 11. A liquid chromatographic system in accordance with claim 9 having N channels wherein for the N channels there are one of N time-proportioning electronically controllable liquid gradient switching valves and N syringe pumps, all of which have their pistons cycling together in synchronism and producing N stepped gradients with one stroke of each pump corresponding to the single step of each gradient.
- 12. A liquid chromatographic system in accordance with claim 10 wherein more than one consecutive, entire, synchronous piston cycle correspond to a single step of the gradient.
- 13. A liquid chromatographic system in accordance with claim 8 wherein the stepped gradient is defined by the steps of the gradient taken consecutively.
- 14. A liquid chromatographic system in accordance with claim 13 wherein each of said at least two syringe pumps includes a piston and a cylinder; said multiple channel liquid chromatographic system including a parallel moving frame attached to at least two pistons, wherein movement of each of the pistons with respect to a corresponding cylinder is carried out by the parallel moving frame.
- 15. A liquid chromatographic system in accordance with claim 14 further including:
a data system; a sample concentration detector having an electrical output; said data system including a recorder having an electrical recording output connection; a fraction collector having a plurality of containers and a timing cycle for depositing liquid in the containers; and the data system being electrically connected to the electrical output of said sample concentration detector and to the electrical recording output connection wherein a container charge timing cycle of the fraction collector is stopped during pump refill and restarted and run during liquid delivery of the at least one of said at least two syringe pumps.
- 16. A liquid chromatographic system in accordance with claim 15 further including a first mixing means and a second mixing means wherein the first mixing means resides in a fluid flow path between the said at least one time-proportioning electronically controllable liquid gradient switching valve and said at least one of said at least two syringe pumps inlet and the second mixing means resides in the cylinder of the at least one of said at least two syringe pumps downstream of an inlet of the at least one time-proportioning electronically controllable liquid gradient switching valve.
- 17. A liquid chromatographic system in accordance with claim 16 wherein the fluid flow path between the at least one time-proportioning electronically controllable liquid gradient switching valve and the at least one of said at least two syringe pumps inlet is a flow passageway sized to produce mixing in the passageway, which in combination with mixing in the pump cylinder makes each step of the gradient sufficiently flat and reproducible for a desired set of chromatographic separation processes.
- 18. A liquid chromatographic system in accordance with claim 17 wherein the flow passageway has a volume less than one-tenth that of a single charge, wherein the flow passageway has a diameter of less than one-half the diameter of the pump cylinder; said flow producing good axial mixing and poor transverse mixing on a small scale charge and an outlet of said flow passageway injecting into the pump cylinder where the flow becomes turbulent flow thus enhancing transverse mixing and axial mixing on a large scale.
- 19. A liquid chromatographic system in accordance with claim 18 wherein the flow passageway has a volume of at least one-tenth that of a single charge; said flow producing good axial mixing on a small scale and an outlet of said flow passageway injecting into the pump cylinder where the flow undergoes enhanced transverse mixing.
- 20. A liquid chromatographic system in accordance with claim 19 wherein the flow passageway has a volume of at least one-tenth that of a single charge wherein the distance required for further transverse mixing is small; said flow producing good axial mixing and an outlet of said flow passageway injecting into the larger diameter pump cylinder where the flow becomes turbulent and undergoes transverse mixing and axial mixing.
- 21. A liquid chromatographic system in accordance with claim 1 in which said at least one time-proportioning electronically controllable liquid gradient switching valve is arranged to produce consecutive pulses of liquid from at least one of said at least two sources of liquid to a refill inlet at a fluid velocity high enough to induce turbulent mixing in a space between a head of a piston and that part of a cylinder not occluded by the piston.
- 22. A liquid chromatographic system in accordance with claim 21 further including means for synchronizing the at least one time-proportioning electronically controllable liquid gradient switching valve with refill movement of said piston so that one charge of each desired fluid at a desired volume proportion is deposited in each pump and mixed to form at least one part of a step of a stepped gradient.
- 23. A liquid chromatographic system in accordance with claim 22 further including:
first means for shutting off fluid flow between the pump and said at least one time-proportioning electronically controllable liquid gradient switching valve during delivery; second means for synchronizing the at least one time-proportioning electronically controllable liquid gradient switching valve with refill movement of said piston so that one charge of each desired fluid at a desired volume proportion is deposited in each pump and mixed to form at least one part of a step of a stepped gradient; and control means for repeating the said first and second means at consecutively different or same fluid proportions to produce an entire stepped gradient.
- 24. A liquid chromatographic system in accordance with claim 23 wherein at least two equal charges of each of two fluids are alternately delivered to an inlet of at least one of said at least two syringe pumps; said two fluids being mixed in the at least one time-proportioning electronically controllable liquid gradient switching valve during a rapid, energetic refill, and then delivered as a single step of a step gradient to the rest of said system in the order of sample injection device, chromatographic column, and fraction collector.
- 25. A liquid chromatographic system in accordance with claim 24 wherein said order includes an absorbance detector between said chromatographic column and fraction collector.
- 26. A liquid chromatographic system in accordance with claim 25 having N channels wherein for the N channels there are one of N time-proportioning electronically controllable liquid gradient switching valves and N syringe pumps, all of which have their pistons cycling together in synchronism and producing N stepped gradients with one stroke of each pump corresponding to the single step of each gradient.
- 27. The liquid chromatographic system in accordance with claim 26 wherein more than one consecutive, entire, synchronous piston cycle correspond to a single step of the gradient.
- 28. A liquid chromatographic system in accordance with claim 27 wherein each step of the gradient taken consecutively define the stepped gradient.
- 29. A liquid chromatographic system in accordance with claim 1 wherein each of said at least two syringe pumps includes a piston and a cylinder; said multiple channel liquid chromatographic system including a parallel moving frame attached to at least two pistons, wherein movement of each of the pistons with respect to a corresponding cylinder is carried out by the parallel moving frame.
- 30. A liquid chromatographic system in accordance with claim 29 further including:
a data system; a sample concentration detector; a recorder; a fraction collector; said fraction collector including a plurality of containers wherein the data system is connected to an electrical output of said sample of said at least two syringe pumps.
- 31. A liquid chromatographic system in accordance with claim 30 further including a first mixing means and a second mixing means wherein the first mixing means resides in a fluid flow path between the at least one time-proportioning electronically controllable liquid gradient switching valve and the at least one of said at least two syringe pumps inlet and the second mixing means resides in the cylinder of the at least one of said at least two syringe pumps downstream of an inlet of the at least one time-proportioning electronically controllable liquid gradient switching valve.
- 32. A liquid chromatographic system in accordance with claim 31 wherein the fluid flow path between the at least one time-proportioning electronically controllable liquid gradient switching valve and the at least one of said at least two syringe pumps inlet is a tube or passage sized to produce flow in the said fluid connection, and of length or volume enough to make each step of the gradient sufficiently flat and reproducible for a desired set of chromatographic separation processes.
- 33. A liquid chromatographic system in accordance with claim 32 wherein the flow passage has a volume of at least one-tenth that of a single charge; said flow producing good axial mixing and poor transverse mixing and an outlet of the flow passage injects liquid into the pump cylinder where it undergoes enhanced transverse mixing and axial mixing.
- 34. A method of performing liquid chromatography comprising:
drawing at least first and second fluids into a plurality of pumps from at least a corresponding first and second source of fluid; pumping said fluid from said plurality of pumps; measuring fluid pressure of said fluid; detecting when said fluid pressure exceeds a predetermined pressure and compensating for the pressure over said predetermined pressure; said step of pumping said fluid including the step of mixing said at least first and second fluids in said pumps whereby a gradient is formed; said step of mixing including the step of mixing said at least first and second fluids prior to pumping said at least first and second fluids from said pumps; said step of mixing further including the step of drawing said first and second fluids through at least one flow path, wherein the flow path is shaped to produce good axial mixing and poor transverse mixing; and injecting said fluids into a pump cylinder where it undergoes enhanced transverse mixing and axial mixing.
- 35. A method of performing liquid chromatography, according to claim 34 wherein the over-pressure system reduces a rate of flow of a channel having a pressure above the preset pressure.
- 36. A method of performing liquid chromatography according to claim 35 wherein the over-pressure system includes a subsystem that tests for a flow rate at which the pressure is less than a predetermined pressure.
- 37. A method of performing liquid chromatography according to claim 36 further comprising the steps of driving said at least two syringe pumps by at least one pump motor shutting the at least one motor off when the tests for a flow rate does not select a flow rate at which said pressure is below the preset pressure.
- 38. A method of performing liquid chromatography according to claim 1 in which the step of compensating includes the substeps of reducing the flow rate and completing a pump cycle at a lower pumping rate by slowing the syringe pumps upon detecting a pressure above a preset pressure and then restoring the flow rate to its original rate at the start of the next cycle.
- 39. The method of claim 38 wherein the enhanced mixing occurs because the axially-mixed liquid entering the pump facilitates further mixing because the distance required for further transverse mixing is small.
- 40. A method according to claim 38 wherein the enhanced mixing occurs because the tendency of some pairs of liquids not to mix at their interfaces decreases because this interface is already degraded at or before an outlet of flow means.
- 41. A liquid chromatographic system comprising:
a plurality of pumps each having a corresponding one of a plurality of pistons and a corresponding one of a plurality of cylinders; at least one motor; means connected to said at least one motor for driving at least some of said plurality of pistons, wherein said at least one motor includes one motor driving at least two pistons; at least some of said plurality of cylinders being adapted to communicate with a source of solvent, whereby at least some of said plurality of pumps simultaneously pump a solvent driven by one motor; at least one column; at least some of said plurality of pumps communicating with said at least one column, whereby solvent may be applied to said at least one column from at least some of said plurality of pumps; at least one flow detector communicating with said at least one column, whereby effluent from said column may be detected; a controller communicating with said detector, whereby effluent may be channeled to predetermined locations; and an over-pressure system for compensating for pressures in a fluid above a preset pressure.
- 42. A liquid chromatographic system according to claim 41 wherein the over-pressure system reduces the rate of flow of a channel having the pressure above the preset pressure.
- 43. A liquid chromatographic system according to claim 41 wherein the over-pressure system includes a subsystem that tests for a flow rate at which the pressure is less than a predetermined pressure.
- 44. A liquid chromatographic system according to claim 43 in which said at least two pumps are driven by at least one pump motor and the over-pressure system includes a subsystem that shuts the at least one pump motor off when the subsystem that tests for a flow rate does not select a flow rate at which said pressure is below the preset pressure.
- 45. A liquid chromatographic system according to claim 41 in which the over-pressure system includes a subsystem that completes a pump cycle at a lower pumping rate by slowing the pumps upon detecting a pressure above a preset pressure and then restores the flow rate to its original rate.
- 46. A system according to claim 45 wherein:
said at least one column is a plurality of columns; different ones of said pumps communicating with corresponding ones of said columns, whereby solvent may be applied to said columns; said at least one flow detector is a plurality of flow detectors each communicating with a different one of said columns, whereby effluent from said columns may be detected; and said controller communicating with said detectors, whereby effluent may be channeled to predetermined locations.
- 47. A liquid chromatographic system comprising:
a motor; a plurality of pumps; said pumps being adapted to be connected to a two-way valve; said two-way valve being adapted to be connected alternately to a first solvent reservoir and a second solvent reservoir, whereby the amount of time said valve is in a first position controls the amount of solvent drawn from said first reservoir into said pumps and the amount of time in a second position controls the amount of solvent drawn from said second reservoir into said pumps; means for injecting said solvent into said pumps, whereby said solvent is further mixed in said pumps; a plurality of columns; a plurality of detectors; each of said pumps communicating with a different column and a different detector; each of said detectors communicating with a controller, whereby said controller received signals indicating peaks; an over-pressure system for compensating for pressures in a fluid above a preset pressure.
- 48. A liquid chromatographic system according to claim 47 wherein the over-pressure system reduces the rate of flow of a channel having the pressure above the preset pressure.
- 49. A liquid chromatographic system according to claim 48 wherein the over-pressure system includes a subsystem that tests for a flow rate at which the pressure is less than a predetermined pressure.
- 50. A liquid chromatographic system according to claim 49 in which said at least two pumps are driven by at least one pump motor and the over-pressure system includes a subsystem that shuts the at least one pump motor off when the subsystem that tests for a flow rate does not select a flow rate at which said pressure is below the preset pressure.
- 51. A liquid chromatographic system according to claim 50 in which the over-pressure system includes a subsystem that completes a pump cycle at a lower pumping rate by slowing the pumps upon detecting a pressure above a preset pressure and then restores the flow rate to its original rate.
- 52. A liquid chromatographic system in accordance with claim 51 wherein said plurality of pumps and said motor comprise a first pumping system adapted to communicate with a first solvent;
said chromatographic system including a second pumping system having a different plurality of pumps and different motor; said second pumping system being adapted to communicate with a second solvent; said first and second pumping systems communicating with a common point, whereby a gradient may be formed of said first and second solvents.
- 53. A liquid chromatographic system in accordance with claim 51 further including a fraction collector; said fraction collector being connected to receive effluent from said columns.
- 54. A liquid chromatographic system in accordance with claim 51 further including a recorder; said recorder having a plurality of channels adapted to record peaks from said plurality of detectors.
- 55. A liquid chromatographic system in accordance with claim 51 in which each of a plurality of pistons includes means for preventing damage as said motor operates in the event of a jam.
- 56. A liquid chromatographic system in accordance with claim 55 further including:
a drive plate; each of said pistons including a corresponding one of a plurality of piston rods; a plurality of release mechanisms; and a different one of each of said release mechanisms being actuatable by a corresponding one of said plurality of piston rods, wherein said release mechanisms release fluid pressure under a predetermined load.
- 57. A liquid chromatographic system including:
at least one pumping system; said pumping system supplying solvent to at least one detector; a light source; said light source applying light to said at least one detector; a first light guide receiving light from said light source and transmitting it to said at least one detector; a second light guide positioned to receive light from said first light guide and transmit it to the at least one detector; said first and second light guides having their ends positioned within a flow cell adjacent to each other so that light passes from an end of said first light guide through solute in said flow cell and into an end of the second light guide, whereby light is diminished within said flow cell by absorbance by said solute; and an over-pressure system for compensating for pressures in a fluid above a preset pressure.
- 58. A liquid chromatographic system according to claim 57 wherein the over-pressure system reduces the rate of flow of a channel having the pressure above the preset pressure.
- 59. A liquid chromatographic system according to claim 57 wherein the over-pressure system includes a subsystem that tests for a flow rate at which the pressure is less than a predetermined pressure.
- 60. A liquid chromatographic system according to claim 59 in which said at least two pumps are driven by at least one pump motor and the over-pressure system includes a subsystem that shuts the at least one pump motor off when the subsystem that tests for a flow rate does not select a flow rate at which said pressure is below the preset pressure.
- 61. A liquid chromatographic system according to claim 57 in which the over-pressure system includes a subsystem that completes a pump cycle at a lower pumping rate by slowing the pumps upon detecting a pressure above a preset pressure and then restores the flow rate to its original rate.
- 62. A liquid chromatographic system according to claim 61 in which said ends of said first and second light guides are spaced in the region of 0.02 to 5 millimeters apart.
- 63. A liquid chromatographic system according to claim 61 in which said light source includes:
at least one lamp; means for focusing light from said at least one lamp onto a diffraction grating; means for focusing light from the diffraction grating onto an opening; and at least some of a plurality of light guides having an end in said opening whereby said at least some of said plurality of light guides receive light from said diffraction grating.
- 64. A liquid chromatographic system in accordance with claim 61 including at least one column wherein:
said at least one pumping system comprises a plurality of pumps; said at least one column comprising a plurality of columns, each of said plurality of columns communicating with a different one of said plurality of pumps; said at least one detector comprising a plurality of detectors, each of said plurality of detectors communicating with a different one of said plurality of columns, whereby each of said detectors detects a signal; and said plurality of detectors including a photodiode positioned against one end of said second light guide.
- 65. A liquid chromatographic system in accordance with claim 61 in which each of said light guides is in intimate contact with a different photodiode.
- 66. A method of performing liquid chromatography comprising the steps of:
driving a plurality of pump pistons each being part of a corresponding plurality of pumps with a single motor, wherein said plurality of pumps pump solvent simultaneously and fill with solvent simultaneously into at least one column; detecting solute in an effluent from said at least one column; and channeling the solute into at least one container; and compensating for pressures in a fluid above a preset pressure.
- 67. A method of performing liquid chromatograpy according to claim 66 wherein the rate of flow in at least a channel having the pressure above the preset pressure is reduced.
- 68. A method of performing liquid chromatography according to claim 66 further comprising the step of testing for a flow rate at which the pressure is less than a predetermined pressure.
- 69. A method according to claim 68 in which said at least two pumps are driven by at least one pump motor and the at least one pump motor is shut off when a subsystem that tests for a flow rate does not select a flow rate at which said pressure is below the preset pressure.
- 70. A method according to claim 66 in further including the steps of completing a pump cycle at a lower pumping rate by slowing the pumps upon detecting a pressure above a preset pressure and then restoring the flow rate to its original rate.
- 71. A method in accordance with claim 70 wherein the step of:
driving a plurality of pump pistons includes the step of causing solvent to flow from each of said plurality of pumps into corresponding ones of a plurality of columns, wherein different ones of said pumps communicate with corresponding ones of said columns; said step of detecting solute including the step of detecting solute in the effluent from said plurality of columns wherein solute may be channeled to predetermined locations.
- 72. A method of performing liquid chromatography in accordance with claim 70 comprising:
drawing solvent into said plurality of pumps and a corresponding plurality of two-way valves wherein each of said two-way valves is connected alternately to a first solvent reservoir and a second solvent reservoir, whereby the amount of time said valve is in a first position controls the amount of solvent drawn from said first solvent reservoir into said pumps and the amount of time in a second position controls the amount of solvent drawn from said second solvent reservoir into said pumps; mixing said solvent in said pumps whereby a gradient is formed.
- 73. A method in accordance with claim 72 wherein said plurality of pumps and said motor comprise a first pumping system which communicates with a first solvent and;
a second pumping system having a different plurality of pumps and a different motor communicates with a second solvent wherein; said first and second pumping systems pump solvent to a common point to form a gradient of said first and second solvents.
- 74. A method in accordance with claim 72 further including the step of collecting solute from at least one of said columns.
- 75. A method in accordance with claim 72 in which the step of detecting includes the step of recording peaks from a plurality of detectors.
- 76. A method in accordance with claim 70 wherein any of said pistons is released from said motor if subjected to a load beyond a predetermined load.
- 77. A method in accordance with claim 70 wherein a plurality of piston rods is connected to a drive plate wherein pressure is released under a predetermined load.
- 78. A method of performing chromatography comprising the steps of:
pumping solvent through at least one detector; transmitting light through said at least one detector from a first light guide; receiving light passing through solute from said first light guide to a second light guide; and transmitting light received by said second light guide to a detector wherein said first and second light guides have their ends positioned within a flow cell adjacent to each other so that light passes from an end of the first light guide through solute in said flow cell and into an end of the second light guide, whereby light is diminished within said flow cell by absorbance by said solute; and compensating for pressures in a fluid above a preset pressure.
- 79. A method according to claim 78 wherein an over-pressure system reduces the rate of flow of the channel having the pressure above the preset pressure.
- 80. A method according to claim 79 further including the step of testing for a flow rate at which the pressure is less than a predetermined pressure.
- 81. A method according to claim 80 in which at least two syringe pumps are driven by at least one pump motor and at least one motor is shut off when the tests for a flow rate does not select a flow rate at which said pressure is below the preset pressure.
- 82. A method according to claim 79 wherein a pump cycle is completed at a lower pumping rate by slowing the syringe pumps upon detecting a pressure above a preset pressure and then the original flow rate is restored.
- 83. A method according to claim 82 in which said step of transmitting light includes the substeps of:
transmitting light from at least one lamp; focusing light from said at least one lamp onto a diffraction grating; and focusing light from the diffraction grating onto an opening wherein at least some of a plurality of light guides each have a different end in said opening whereby said at least some of said plurality of light guides receive light from said diffraction grating.
- 84. A method in accordance with claim 83 further including the step of detecting light with photodiodes positioned against one end of said second light guide.
- 85. A pumping system comprising:
at least one pump having a cylinder, a piston and a pump head with an outlet; at least one inlet tube having first and second ends communicating with the cylinder at one end and adapted to communicate with at least two sources of fluid at the other end; said at least one inlet tube having a diameter and length shaped for flow; and drive means for driving said piston with sufficient speed to cause turbulent mixing in said cylinder, wherein fluid from said at least two sources of fluid are mixed before being pumped from said outlet; an over-pressure system for compensating for pressures in the fluid above a preset pressure.
- 86. A pumping system according to claim 85 wherein the over-pressure system reduces the rate of flow of a channel having the pressure above the preset pressure.
- 87. A pumping system according to claim 85 wherein the over-pressure system includes a subsystem that tests for a flow rate at which the pressure is less than a predetermined pressure.
- 88. A pumping system according to claim 87 in which said at least two syringe pumps are driven by at least one pump motor and the over-pressure system includes a subsystem that shuts the at least one pump motor off when the subsystem that tests for a flow rate does not select a flow rate at which said pressure is below the preset pressure.
- 89. A pumping system according to claim 85 in which the over-pressure system includes a subsystem that completes a pump cycle at a lower pumping rate by slowing the pumps upon detecting a pressure above a preset pressure and then restores the flow rate to its original rate.
- 90. A pumping system in accordance with claim 89 further including an electronically controlled valve having an outlet and at least two inlets communicating at said outlet with said second end of said tube and at a first of said at least two inlets with one source of fluid and at a second of said at least two inlets with a second source of fluid whereby said at least one pump may pump a mixture of fluids.
- 91. A pumping system in accordance with claim 90 further including control means for switching said valve outlet from one of said at least two inlets to the second of said at least two inlets at least once during a refill stroke of said at least one pump.
- 92. A pumping system in accordance with claim 91 further including at least one syringe pump wherein said at least one syringe pump has a piston and a cylinder; said pump having a refill flow rate at least 3 times faster than its delivery flow.
- 93. A pumping system in accordance with claim 92 in which at least one time-proportioning electronically controllable liquid gradient switching valve is arranged to produce consecutive pulses of liquid from at least one of said sources of fluid to a refill inlet at a fluid velocity high enough to induce turbulent mixing in a space between a head of the piston and that part of the cylinder not occluded by the piston.
- 94. A pumping system in accordance with claim 93 wherein said at least one pump includes a plurality of pumps, said pumping system further including means for synchronizing the at least one time-proportioning electronically controllable liquid gradient switching valve with refill movement of the said piston so that one charge of each desired fluid at a desired volume proportion is deposited in each pump and mixed to form at least one part of a step of a stepped gradient.
- 95. A pumping system in accordance with claim 94 further including:
first means for shutting off fluid flow between said pump and the at least one time-proportioning electronically controllable liquid gradient switching valve during delivery; second means for synchronizing the at least one time-proportioning electronically-controllable liquid gradient switching valve with refill movement of said piston so that one charge of each desired fluid at a desired volume proportion is deposited in each pump and mixed to form at least one part of a step of a stepped gradient; and means for repeating the said first and second means at consecutively different or same fluid proportions to produce an entire stepped gradient.
- 96. A pumping system in accordance with claim 95 wherein at least two equal charges of each of two fluids are alternately delivered to an inlet of said at least one syringe pump; said two fluids being mixed in the at least one time-proportioning electronically controllable liquid gradient switching valve during a refill stroke of said piston, and then delivered as a single step of a step gradient, said refill stroke being sufficiently rapid to cause mixing in the cylinder of the pump.
- 97. A pumping system in accordance with claim 96 wherein more than one consecutive, entire, synchronous piston cycle corresponds to a single step of the gradient.
- 98. A pumping system in accordance with claim 97 wherein the stepped gradient is defined by the steps of the gradient taken consecutively.
- 99. A pumping system in accordance with claim 98 wherein said plurality of pumps comprises a multiple channel liquid chromatographic system having a parallel moving frame attached to a corresponding plurality of pistons for said plurality of pumps, wherein the motion of each of the pistons with respect to a corresponding cylinder is carried out by the parallel moving frame.
- 100. A pumping system in accordance with claim 99 further including:
a data system; a sample concentration detector having an electrical output; said data system including a recorder having an electrical recording output connection; a fraction collector having a plurality of containers and a timing cycle for depositing liquid in the containers; and the data system being electrically connected to the electrical output of said sample concentration detector and to the electrical recording output connection wherein a container charge timing cycle of the fraction collector is stopped during pump refill and restarted and run during liquid delivery of the at least one syringe pump.
- 101. A pumping system in accordance with claim 100 further including a first mixing means and second mixing means wherein the first mixing means resides in a fluid flow path between said at least one time-proportioning electronically controllable liquid gradient switching valve and said at least one syringe pump inlet and the second mixing means resides in the cylinder of said at least one syringe pump downstream of an inlet of the at least one time-proportioning electronically controllable liquid gradient switching valve.
- 102. A pumping system in accordance with claim 101 wherein the fluid flow path between the said at least one time-proportioning electronically controllable liquid gradient switching valve and said at least one syringe pump inlet is a flow passageway sized to produce mixing in the said fluid flow path, and of length or volume enough to make each step of the gradient sufficiently flat and reproducible for a desired set of chromatographic separation processes.
- 103. A pumping system in accordance with claim 102 wherein the flow passageway has a volume of at least one-tenth that of a single charge, said flow producing good axial mixing and poor transverse mixing and an outlet of said flow passageway injecting into the pump cylinder where the flow undergoes enhanced transverse mixing and axial mixing.
- 104. A pumping system in accordance with claim 101 wherein said at least one pump includes at least two syringe pumps and at least two equal charges of each of two fluids are alternately delivered to an inlet of at least one of said at least two syringe pumps; said two fluids being mixed in the at least one time-proportioning electronically controllable liquid gradient switching valve during a refill stroke of said piston, and then delivered as a single step of a step gradient, said refill stroke being sufficiently rapid to cause mixing in a cylinder of the pump.
- 105. The pumping system of claim 104 wherein more than one consecutive, entire, synchronous piston cycle correspond to a single step of the gradient.
- 106. A pumping system in accordance with claim 105 wherein the stepped gradient is defined by the steps of the gradient taken consecutively.
- 107. A pumping system in accordance with claim 106 wherein each of said at least two syringe pumps includes a piston and a cylinder, said pumping system including a parallel moving frame attached to at least two pistons, wherein movement of each of the pistons with respect to a corresponding cylinder is carried out by the parallel moving frame.
- 108. A method of performing liquid chromatography comprising the steps of:
pumping solvent into at least one column; detecting solute in an effluent from said at least one column; channeling the solute into at least one container; compensating for pressures in the fluid above a preset pressure; and reducing the rate of flow of the solvent.
- 109. A method according to claim 108 further including the step of testing for a flow rate at which the pressure is less than a predetermined pressure.
- 110. A method according to claim 109 further including the steps of driving at least two syringe pumps by at least one pump motor and shutting the at least one pump motor off when a subsystem that tests for a flow rate does not select a flow rate at which said pressure is below the preset pressure.
- 111. A method according to claim 108 further including the step of completing a pump cycle at a lower pumping rate by emptying syringe pumps upon detecting a pressure above a preset pressure and then restores the flow rate to its original rate.
- 112. Apparatus for performing liquid chromatography comprising:
at least one motor; at least one pump connected to the at least one motor to be driven by the at least one motor; at least one column connected to the at least one pump to receive fluid from the at least one pump; a detector connected to detecting solute in an effluent from said at least one column; a collector positioned to receive the solute and deposit the solute into at least one container; and an over-pressure system that compensates for pressures in the fluid above a preset pressure.
- 113. Apparatus according to claim 112 wherein the over-pressure system reduces the rate of flow of a channel having a pressure above the preset pressure.
- 114. Apparatus according to claim 112 wherein the over-pressure system includes a subsystem that tests for a flow rate at which a pressure is less than a predetermined pressure.
- 115. Apparatus according to claim 114 in which said at least two pumps are driven by at least one pump motor and the over-pressure system includes a subsystem that shuts the at least one pump motor off when the subsystem that tests for a flow rate does not select a flow rate at which said pressure is below the preset pressure.
- 116. Apparatus according to claim 112 in which the over-pressure system includes a subsystem that completes a pump cycle at a lower pumping rate by slowing the at least one pump upon detecting a pressure above a preset pressure and then restores the flow rate to its original rate.
RELATED CASES
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 09/794,772 filed Feb. 27, 2001, entitled LIQUID CHROMATOGRAPHIC METHOD AND SYSTEM by Dale A. Davison and Scott L. Blakley and assigned to the same assignee as this application.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09794772 |
Feb 2001 |
US |
Child |
09883968 |
Jun 2001 |
US |