Claims
- 1) A distributed valve simulated moving bed comprising:
a) a series of sequential SMB columns; and b) a series of sequential junctions interposed between said SMB columns; wherein: c) said sequential junctions comprise one or more zone bypass lines plumbed to deliver a process stream to a succeeding column without interruption; d) said sequential junctions further comprise one or more open or closed input/output lines plumbed to receive a process stream from a preceding column and to deliver a modified process stream to a succeeding column; e) one but only one of said zone bypass lines and input/output lines is active during a particular step in each of the junctions; and f) the zone bypass line or input/output line that is active in a selected junction corresponds to the location of the junction in the SMB during a particular step.
- 2) The simulated moving bed of claim 1 wherein one or more open and/or closed input/output lines are plumbed:
a) to receive desorbent, feed, regenerant, or bypass; and/or b) to withdraw raffinate, extract, waste, or bypass;
- 3) The simulated moving bed of claim 1 wherein:
a) the number of zone bypass lines in each junction corresponds to the number of inter-zone junctions in the SMB; and b) the number of input/output lines in each junction corresponds to the number of zones in the SMB.
- 4) The simulated moving bed of claim 1 wherein said zone bypass lines and input/output lines are ordered, in a manner corresponding to the sequence of functions observed by the junctions in the SMB.
- 5) The simulated moving bed of claim 1 wherein:
a) each of said junctions comprises two opposing SD rotary valves joined by said zone bypass lines and input/output lines; and b) the SD rotary valves are aligned and controlled to provide sequential activation of zone bypass lines and input/output lines with each switch observed by the SMB.
- 6) The simulated moving bed of claim 1 wherein:
a) each of said junctions comprises one ST rotary valve; b) said ST rotary valve comprises process lines corresponding to said zone bypass lines and input/output lines; and c) said zone bypass lines and input/output lines are ordered, in a manner corresponding to the sequence of functions observed by the junctions in the SMB.
- 7) The simulated moving bed of claim 1 further comprising:
a) a feed distribution manifold; b) a desorbent distribution manifold; c) a raffinate consolidation manifold; and d) an extract consolidation manifold.
- 8) The simulated moving bed of claim 1 wherein one or more of said input/output lines are open lines.
- 9) The simulated moving bed of claim 1 comprising four separation zones in a closed loop, wherein:
a) each junction comprises a desorbent input/output line, an extract input/output line, a feed input/output line, and a raffinate input/output line; b) said desorbent and feed input/output lines comprise an external constant speed input pump; and c) said raffinate and extract input/output lines comprise an internal constant speed recirculation pump.
- 10) The simulated moving bed of claim 1 in the form of an open loop wherein:
a) one of the input/output lines is plumbed to deliver a modified process stream consisting entirely of eluent to a succeeding column; and b) one of the input/output lines is plumbed to withdraw the entire process stream from the preceding column and to return a modified process stream consisting of nothing to the succeeding column.
- 11) The simulated moving bed of claim 10 further comprising an introduction junction immediately before the first column, and a withdrawal junction immediately after the last column, wherein the introduction junction is not plumbed to receive process stream from a preceding column, and the withdrawal junction is not plumbed to deliver process stream to a succeeding column.
- 12) The simulated moving bed of claim 1 further composing a decoupled regeneration zone.
- 13) The simulated moving bed of claim 1 wherein the zone length varies during operation.
- 14) A method of separating components in a multi-component mixture comprising:
a) providing:
i) a series of sequential SMB columns; and ii) a series of sequential junctions interposed between said SMB columns; wherein:
(1) said sequential junctions comprise one or more zone bypass lines plumbed to deliver a process stream to a succeeding column without interruption; (2) said sequential junctions further comprise one or more open or closed input/output lines plumbed to receive a process stream from a preceding column and to deliver a modified process stream to a succeeding column; b) operating said SMB so that:
i) one but only one of said zone bypass lines and input/output lines is active during a particular step in each of the junctions; and ii) the zone bypass line or input/output line that is active in a selected junction corresponds to the location of the junction in the SMB during a particular step.
- 15) The method of claim 14 wherein said zone bypass lines and input/output lines are ordered in a manner corresponding to the sequence of functions observed by the junctions in the SMB, further comprising sequentially advancing the active line in each junction with each switch of the SMB.
- 16) A simulated moving bed comprising a series of separation zones and a regeneration zone, wherein said regeneration zone is on-line and decoupled from said separation zones.
- 17) The simulated moving bed of claim 16 wherein said regeneration zone alternates columns every second or greater step.
- 18) The simulated moving bed of claim 16 comprising:
a) a series of sequential SMB columns; and b) a series of sequential junctions interposed between said SMB columns; wherein: c) said junctions comprise:
i) extract, raffinate, feed, and desorbent input/output lines; ii) regenerant and waste input/output lines; and iii) bypass outlet and bypass inlet lines; d) in the junction immediately preceding the regeneration zone, the bypass outlet and regenerant input/output lines are active; and e) in the junction immediately succeeding the regeneration zone, the bypass inlet and waste input/output lines are active.
- 19) The simulated moving bed of claim 16 wherein said junction comprises first and second subjunctions wherein:
a) said first subjunction comprises a first pair of opposed SD rotary valves; and b) said second subjunction comprises a second pair of opposed SD rotary valves.
- 20) The simulated moving bed of claim 16 wherein said junction comprises first and second subjunctions wherein:
a) said first subjunction comprises a first ST rotary valve; and b) said second subjunction comprises a second ST rotary valve.
- 21) The simulated moving bed of claim 16 further comprising:
a) two or more regenerant supplies; and b) a SD rotary valve interposed between said regenerant supplies and said regenerant input/output line.
- 22) The simulated moving bed of claim 16 wherein each of said junctions comprises one ST rotary valve, further comprising one ST rotary valve per regeneration zone.
- 23) The simulated moving bed of claim 16 wherein each of said junctions comprises eleven two-way valves.
- 24) The simulated moving bed of claim 16 wherein each of said junctions comprises first and second ST rotary valves in parallel.
- 25) A method of separating components in a multi-component mixture in a SMB comprising:
a) providing a series of continuously on-line sequential SMB columns comprising one or more separation zones and a decoupled regeneration zone; b) resolving the components in the one or more separation zones during a plurality of step intervals; c) regenerating a column in the regeneration zone at a regeneration interval; d) moving said column in the regeneration zone to a separation zones at the end of a step interval; and e) moving a column from a separation zone to a regeneration zone at the end of a step interval.
- 26) The method of claim 25 further comprising:
a) providing a series of sequential junctions interposed between said SMB columns; wherein:
i) said junctions comprise:
(1) extract, raffinate, feed, and desorbent input/output lines; (2) regenerant and waste input/output lines; and (3) bypass outlet and bypass inlet lines; ii) in the junction immediately preceding the regeneration zone, the bypass outlet and regenerant input/output lines are active; and iii) in the junction immediately succeeding the regeneration zone, the bypass inlet and waste input/output lines are active, further comprising: b) operating said SMB so that the zone bypass line, input/output line, bypass outlet line, and/or bypass inlet line that is active in a selected junction corresponds to the location of the junction in the SMB during a particular step.
- 27) A simulated moving bed comprising one or more inter-column ST rotary valves.
REFERENCE TO PRIOR APPLICATIONS
[0001] This application claims priority to U.S. Provisional Patent Application No. 60/325,688, filed Sep. 27, 2001, and U.S. Provisional Patent Application No. 60/333,725, filed Nov. 27, 2001.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US02/30786 |
9/27/2002 |
WO |
|