Automated clinical analyzer system and method
An analyzer system for in vitro diagnostics includes a sample handler module having a robot arm that delivers samples from drawers into carriers on a linear synchronous motor automation track. Samples are delivered via the automation track to individual track sections associated with individual analyzer modules. Analyzer modules aspirate sample portions directly from the sample carriers and perform analysis thereon.
1 . An analyzer system for use in an in vitro diagnostics (IVD) environment comprising:
a plurality of modules including:
a sample handler module configured to accept a plurality of trays holding a plurality of patient sample tubes via one or more drawers; and
one or more analyzer modules configured to aspirate a portion of a patient sample from each of the plurality of patient samples and perform a clinical analysis of that patient sample;
a plurality of sample carriers configured to accept at least one of the plurality of patient samples and transport the patient sample between the plurality of modules, each carrier having one or more magnets in the base thereof;
an automation track comprising a plurality of track sections forming a plurality of branches, each track section having a surface that includes a set of magnetic coils that propel the plurality of sample carriers along the plurality of track sections;
a plurality of local control boards, each providing synchronous control signals to the set of magnetic coils of one of the plurality of track sections;
a node controller configured to make routing decisions for the plurality of sample carriers and to control the plurality of local control boards to move the sample carriers; and
a plurality of networking switches that are daisy-chained and configured to provide network communication between the node controller and the plurality of local control boards and to each provide power to one of the plurality of track sections from a first one of the plurality of modules during normal operation and automatically from an adjacent second one of the plurality of modules if power is unavailable from the first one.
2 . The analyzer system of claim 1 , wherein the plurality of networking switches comprise gigabit Ethernet switches.
3 . The analyzer system of claim 1 , wherein each track section further includes a plurality of Hall effect sensors that detect the presence and location of each of the plurality of sample carriers.
4 . The analyzer system of claim 3 , wherein each of the local control boards receive Hall effect sensor information and use it to control the set of magnetic coils for one of the plurality of track sections.
5 . The analyzer system of claim 1 , wherein each of the plurality of networking switches receives primary power from one of the one or more analyzer modules.
6 . The analyzer system of claim 1 , wherein each track section further comprises a plurality of circuit boards that each include a subset of the magnetic coils and a plurality of amplifiers that energize each coil responsive to the synchronous control signals of the plurality of local control boards.
7 . An automation system for an analyzer system for use in an in vitro diagnostics (IVD) environment comprising:
a plurality of sample carriers configured to accept at least one of the plurality of patient samples and transport the patient sample between a plurality of analyzer modules, each carrier having one or more magnets in the base thereof;
an automation track comprising a plurality of track sections forming a plurality of branches, each track section having a surface that includes a set of magnetic coils that propel the plurality of sample carriers along the plurality of track sections;
a plurality of local control boards, each providing synchronous control signals to the set of magnetic coils of one of the plurality of track sections;
a node controller configured to make routing decisions for the plurality of sample carriers and to control the plurality of local control boards to move the sample carriers; and
a plurality of networking switches that are daisy-chained and configured to provide network communication between the node controller and the plurality of local control boards and to each provide power to one of the plurality of track sections from a first one of the plurality of modules during normal operation and automatically from an adjacent second one of the plurality of modules if power is unavailable from the first one.
8 . The automation system of claim 7 , wherein the plurality of networking switches comprise gigabit Ethernet switches.
9 . The automation system of claim 7 , wherein each track section further includes a plurality of Hall effect sensors that detect the presence and location of each of the plurality of sample carriers.
10 . The automation system of claim 9 , wherein each of the local control boards receive Hall effect sensor information and use it to control the set of magnetic coils for one of the plurality of track sections.
11 . The automation system of claim 9 , wherein each of the plurality of networking switches receives primary power from one of the one or more analyzer modules.
12 . The automation system of claim 9 , wherein each track section further comprises a plurality of circuit boards that each include a subset of the magnetic coils and a plurality of amplifiers that energize each coil responsive to the synchronous control signals of the plurality of local control boards.
13 . A method of automating an analyzer system for use in an in vitro diagnostics (IVD) environment comprising:
utilizing a plurality of sample carriers configured to accept at least one of the plurality of patient samples to transport the patient sample between a plurality of analyzer modules, each carrier having one or more magnets in the base thereof;
operating an automation track comprising a plurality of track sections forming a plurality of branches, each track section having a surface that includes a set of magnetic coils that propel the plurality of sample carriers along the plurality of track sections;
providing synchronous control signals to the set of magnetic coils of one of the plurality of track sections via each of a plurality of local control boards;
making routing decisions for the plurality of sample carriers and to control the plurality of local control boards to move the sample carriers using a node controller;
providing network communication between the node controller and the plurality of local control boards and providing power to one of the plurality of track sections using a plurality of daisy-chained networking; and
providing power to one of the plurality of track sections from a first one of the plurality of modules during normal operation and automatically from an adjacent second one of the plurality of modules if power is unavailable from the first one via the plurality of daisy-chained networking switches.
14 . The method of claim 13 , wherein the plurality of networking switches comprise gigabit Ethernet switches.
15 . The method of claim 13 , wherein each track section further includes a plurality of Hall effect sensors that detect the presence and location of each of the plurality of sample carriers.
16 . The method of claim 15 , further comprising receiving, at each of the local control boards, Hall effect sensor information and controlling the set of magnetic coils for one of the plurality of track sections based on the Hall effect sensor information.
17 . The method of claim 13 , further comprising receiving, at each of the plurality of networking switches, primary power from one of the one or more analyzer modules.
18 . The method of claim 13 , wherein each track section further comprises a plurality of circuit boards that each include a subset of the magnetic coils and a plurality of amplifiers that energize each coil responsive to the synchronous control signals of the plurality of local control boards.