MODULAR COMPUTER-CONTROLLED MULTISTEP CHEMICAL PROCESSING SYSTEM FOR USE IN LABORATORY AUTOMATION OR CHEMICAL PRODUCTION
A modular laboratory-style computer-controlled system for multistep chemical processing for use in laboratory automation or chemical production is disclosed. The system comprised a plurality of interconnectable electrically-powered controllable chemical process modules having chemical input and output ports and at least one communications interface. Interconnections among the chemical process modules include both chemical flow interconnections for the transport of chemical materials and network interconnections for the transport of communications signals. The controllable chemical process modules have distinct network addresses and are controlled by an algorithm executed by the data processor. In some implementations chemical flow interconnections are software controllable. In some implementations the system further comprises feedback control. In some implementations some chemical process modules comprise sensors responsive to sense physical quantities.
1 . A modular system for multistep chemical processing for use in laboratory automation or chemical production, the system comprising:
a plurality of electrically-powered controllable chemical reaction modules, the chemical reaction modules being of laboratory lattice-scale, each chemical reaction module for implementing at least one chemical reaction and comprising:
at least one chemical flow input port, at least one chemical flow output port;
a chemical flow interconnection, where the chemical flow interconnection comprises a chemical flow path to connect a chemical flow output port of a first chemical reaction module with a chemical input port of a second chemical reaction module;
at least one electrically controllable element responsive to communication signals; and
at least one communications interface, wherein each chemical reaction module is configured to be addressed via the at least one communications interface, the communications interface operatively coupled to the at least one electrically controllable element, at least a second communication interface of the second chemical reaction module, wherein the first and the second chemical reaction modules are electrically interconnected with a sequential daisy-chain topology, and a data processor, wherein the data processor is to execute at least one algorithm to:
control the at least one electrically controllable element of the chemical reaction modules; and
perform, via the chemical flow interconnections, more than one type of multistep chemical process between the first chemical reaction module and at least the second chemical reaction module, wherein at least one of the plurality of chemical reaction module is configured to permit customizations in view of the type of multistep chemical process.
2 . The system of claim 1 wherein at least one of the plurality of chemical reaction module is configured to be mounted on standard laboratory stands.
3 . The system of claim 1 wherein at least one of the plurality of chemical reaction module is configured to be mounted on standard laboratory lattices.
4 . The system of claim 1 wherein at least one chemical flow input port of the first of the plurality of controllable chemical reaction modules supports fluid flow.
5 . The system of claim 1 wherein at least one chemical flow input port of the first of the plurality of controllable chemical reaction modules supports gas flow.
6 . The system of claim 1 wherein at least one chemical flow input port of the first of the plurality of controllable chemical reaction modules supports mixed-media flow.
7 . The system of claim 1 wherein at least one chemical flow input port of the first of the plurality of controllable chemical reaction modules supports vapor flow.
8 . The system of claim 1 wherein the communications protocol comprises self-clocking bidirectional serial communications.
9 . The system of claim 1 wherein the communications protocol operates on a parallel communications bus.
10 . The system of claim 1 wherein at least the first chemical reaction module of the plurality of controllable chemical reaction modules is configured for clearing and cleaning processes, and wherein the data processor is to select a type of clearing and cleaning process via the at least one communications interface.
11 . The system of claim 1 wherein the system further comprises feedback control.
12 . The system of claim 1 wherein the chemical flow interconnections are software controllable.
13 . The system of claim 1 wherein at least the first chemical reaction module of the plurality of controllable chemical reaction modules includes at least one LED configured to show valve flow status.
14 . The system of claim 1 wherein the first chemical reaction module and the second chemical reaction module comprise separated physical mounting arrangements.
15 . The system of claim 1 wherein at least the first electrically-powered controllable chemical reaction module plurality of controllable chemical reaction modules comprises a motorized fluidic mixer.
16 . The system of claim 1 wherein at least first electrically-powered controllable chemical reaction module plurality of controllable chemical reaction modules comprises an electrically-operated pump.
17 . The system of claim 1 wherein at least first electrically-powered controllable chemical reaction module plurality of controllable chemical reaction modules comprises an electrically-operated valve.
18 . The system of claim 1 wherein at least first electrically-powered controllable chemical reaction module plurality of controllable chemical reaction modules comprises a reaction chamber.
19 . A modular system for multistep chemical processing for use in laboratory automation or chemical production, the system comprising:
a plurality of electrically-powered controllable chemical reaction modules, the chemical reaction modules being of laboratory lattice-scale, each chemical reaction module for implementing at least one chemical reaction and comprising:
at least one chemical flow input port, at least one chemical flow output port;
a topological chemical flow interconnection, where the chemical flow interconnection comprises a chemical flow path to connect a chemical flow output port of a first chemical reaction module with a chemical input port of a second chemical reaction module;
at least one electrically controllable element, coupled to the chemical flow interconnection and responsive to communication signals; and
at least one communications interface, wherein each chemical reaction module is configured to be addressed via the at least one communications interface, the communications interface operatively coupled to the at least one electrically controllable element, at least a second communication interface of the second chemical reaction module, and a data processor, wherein the data processor is to execute at least one algorithm to:
control the at least one electrically controllable element of the chemical reaction modules to reconfigure the topological chemical flow interconnections; and
perform, via the reconfigured topological chemical flow interconnections, more than one type of multistep chemical process between the first chemical reaction module and at least the second chemical reaction module, wherein at least one of the plurality of chemical reaction module is configured to be customized in view of the type of multistep chemical process.
20 . The system of claim 19 , wherein the data processor reconfigures the topological chemical flow interconnections among the plurality of chemical reaction module based on a candidate application, wherein the candidate application is associated with controllable element attributes and controllable routing design instructions.