Ni–Mn–Ga is a Magnetic Shape Memory (MSM) alloy that changes shape in response to a variable magnetic field. We can intentionally manipulate the shape of the material to function as an actuator, and the material can thus replace complicated small electromechanical systems. In previous work, a very simple and precise solid-state micropump was developed, but a mechanical rotation was required to translate the position of the magnetic field. This mechanical rotation defeats the purpose of the motionless solid-state device. Here we present a solid-state electromagnetic driver to linearly progress the position of the applied magnetic field and the associated shrinkage. The generated magnetic field was focused at either of two pole pieces, provid...
The paper investigates an innovative actuator combination based on the magnetic shape memory technol...
The magnetic shape memory technology may replace electromagnetic solutions in applications requiring...
International audienceIn the field of micromechatronics, microrobotics and specially microfactories,...
Ni–Mn–Ga is a Magnetic Shape Memory (MSM) alloy that changes shape in response to a variable magneti...
Ni-Mn-Ga is a Magnetic Shape Memory (MSM) alloy, which shape changes when either a mechanical stress...
The local actuation of a magnetic shape memory (MSM) element as used in an MSM micropump is consider...
Magnetic shape memory alloy actuators offer great potential for a new generation of actuators. We di...
Magnetic shape memory alloys (MSMA) deform under a magnetic field. For example, a MSMA bar contracts...
We built a solid-state electronic circuit that controls the flow of current to a series of electroma...
Current commercial microfluidic pumps consist of complicated mechanical parts such as microvalves, p...
For magnetic shape memory (MSM) alloys, a magnetic field stimulates a shape change. We use the shape...
Solid-state micropumps have constituted a promising market for point of care diagnostics, biomedical...
Shape memory alloys undergo reversible plastic deformation through twin boundary motion under a stre...
This research characterizes ferromagnetic shape memory elements for use as mechanical actuators. A s...
The paper investigates an innovative actuator combination based on the magnetic shape memory technol...
The magnetic shape memory technology may replace electromagnetic solutions in applications requiring...
International audienceIn the field of micromechatronics, microrobotics and specially microfactories,...
Ni–Mn–Ga is a Magnetic Shape Memory (MSM) alloy that changes shape in response to a variable magneti...
Ni-Mn-Ga is a Magnetic Shape Memory (MSM) alloy, which shape changes when either a mechanical stress...
The local actuation of a magnetic shape memory (MSM) element as used in an MSM micropump is consider...
Magnetic shape memory alloy actuators offer great potential for a new generation of actuators. We di...
Magnetic shape memory alloys (MSMA) deform under a magnetic field. For example, a MSMA bar contracts...
We built a solid-state electronic circuit that controls the flow of current to a series of electroma...
Current commercial microfluidic pumps consist of complicated mechanical parts such as microvalves, p...
For magnetic shape memory (MSM) alloys, a magnetic field stimulates a shape change. We use the shape...
Solid-state micropumps have constituted a promising market for point of care diagnostics, biomedical...
Shape memory alloys undergo reversible plastic deformation through twin boundary motion under a stre...
This research characterizes ferromagnetic shape memory elements for use as mechanical actuators. A s...
The paper investigates an innovative actuator combination based on the magnetic shape memory technol...
The magnetic shape memory technology may replace electromagnetic solutions in applications requiring...
International audienceIn the field of micromechatronics, microrobotics and specially microfactories,...