Finite state machine (FMS) addressable MEMS microrobots: a new paradigm for controlling large numbers of mems microrobots
Finite state machine (FMS) addressable MEMS microrobots: a new paradigm for controlling large numbers of mems microrobots
复制标题
有限状态机 (FMS) 可寻址 MEMS 微型机器人:控制大量 MEMS 微型机器人的新范例
DOI:
10.1109/marss.2017.8016534
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发表时间:
2017
期刊:
影响因子:
--
通讯作者:
M. Žefran
中科院分区:
文献类型:
--
作者:
I. Paprotny;M. Žefran
Simultaneous control of many MEMS microrobots through a common, global, control signal is one of the grand unsolved challenges of microrobotics. At present, most mobile, aqueous, or aerial microrobots, are actuated and maneuvered using global externally supplied fields. The differentiation of the microrobot motion within a larger swarm is achieved through differences in their design that lead to different responses to these global fields. Such differentiation imposes a limit on the number of independently controllable microrobots due to the finite number of significant different levels (e.g. voltages) of these applied fields (or signals). In this paper, we present a new paradigm for control of large numbers of MEMS microrobots through a global control signal by introducing a mechanism call physical finite state machines (PFSM). PFSM can causes a change in the motion of the robot based on a temporal sequence in the global control and power delivery signal. We show that a PFSM can be implemented using stress-engineered MEMS microrobots, and show that the previously presented sub-linear control voltage bandwidth of O/n is a direct consequence of the application of an on-board two-state PFSM. We further show that the PFSM concept can be extended to on-board multistate FSM, and can, in theory further reduce the control voltage bandwith to O(c), a constant bound.