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Dive into the research topics where Cassie Witherspoon is active.

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Featured researches published by Cassie Witherspoon.


Nature Materials | 2009

Giant Magnetic-Field-Induced Strains in Polycrystalline Ni–Mn–Ga Foams

Markus Chmielus; X. X. Zhang; Cassie Witherspoon; David C. Dunand; Peter Müllner

The magnetic shape-memory alloy Ni-Mn-Ga shows, in monocrystalline form, a reversible magnetic-field-induced strain (MFIS) up to 10%. This strain, which is produced by twin boundaries moving solely by internal stresses generated by magnetic anisotropy energy, can be used in actuators, sensors and energy-harvesting devices. Compared with monocrystalline Ni-Mn-Ga, fine-grained Ni-Mn-Ga is much easier to process but shows near-zero MFIS because twin boundary motion is inhibited by constraints imposed by grain boundaries. Recently, we showed that partial removal of these constraints, by introducing pores with sizes similar to grains, resulted in MFIS values of 0.12% in polycrystalline Ni-Mn-Ga foams, close to those of the best commercial magnetostrictive materials. Here, we demonstrate that introducing pores smaller than the grain size further reduces constraints and markedly increases MFIS to 2.0-8.7%. These strains, which remain stable over >200,000 cycles, are much larger than those of any polycrystalline, active material.


Journal of Applied Physics | 2010

Magnetic-field-induced recovery strain in polycrystalline Ni-Mn-Ga foam

Markus Chmielus; Cassie Witherspoon; Robert C. Wimpory; Andreas Paulke; André Hilger; X. Zhang; David C. Dunand; Peter Müllner

Recently, we have shown that a polycrystalline Ni–Mn–Ga magnetic shape-memory alloy, when containing two populations of pore sizes, shows very high magnetic-field-induced strain of up to 8.7%. Here, this double-porosity sample is imaged by x-ray microtomography, showing a homogenous distribution of both pore populations. The orientation of six large grains—four with 10M and two with 14M structure—is identified with neutron diffraction. In situ magnetomechanical experiments with a rotating magnetic field demonstrate that strain incompatibilities between misoriented grains are effectively screened by the pores which also stop the propagation of microcracks. During uniaxial compression performed with an orthogonal magnetic bias field, a strain as high as 1% is recovered on unloading by twinning, which is much larger than the elastic value of <0.1% measured without field. At the same time, repeated loading and unloading results in a reduction in the yield stress, which is a training effect similar to that in ...


Materials Science Forum | 2009

Recent Developments in Ni-Mn-Ga Foam Research

Peter Müllner; Xue Xi Zhang; Yuttanant Boonyongmaneerat; Cassie Witherspoon; Markus Chmielus; David C. Dunand

Grain boundaries hinder twin boundary motion in magnetic shape-memory alloys and suppress magnetic-field-induced deformation in randomly textured polycrystalline material. The quest for high-quality single crystals and the associated costs are a major barrier for the commercialization of magnetic shape-memory alloys. Adding porosity to polycrystalline magnetic-shape memory alloys presents solutions for (i) the elimination of grain boundaries via the separation of neighboring grains by pores, and (ii) the reduction of production cost via replacing the directional solidification crystal growth process by conventional casting. Ni-Mn-Ga foams were produced with varying pore architecture and pore fractions. Thermo-magnetic training procedures were applied to improve magnetic-field-induced strain. The cyclic strain was measured in-situ while the sample was heated and cooled through the martensitic transformation. The magnetic field-induced strain amounts to several percent in the martensite phase, decreases continuously during the transformation upon heating, and vanishes in the austenite phase. Upon cooling, cyclic strain appears below the martensite start temperature and reaches a value larger than the initial strain in the martensite phase, thereby confirming a training effect. For Ni-Mn-Ga single crystals, external constraints imposed by gripping the crystal limit lifetime and/or magnetic-field-induced deformation. These constraints are relaxed for foams.


Acta Materialia | 2011

Effects of surface damage on twinning stress and the stability of twin microstructures of magnetic shape memory alloys

Markus Chmielus; Cassie Witherspoon; Kari Ullakko; Peter Müllner; R. Schneider


Journal of Alloys and Compounds | 2013

Superelasticity and Shape Memory Effects in Polycrystalline Ni-Mn-Ga Microwires

Mingfang Qian; Xinjiang Zhang; Cassie Witherspoon; Jingxue Sun; Peter Müllner


Acta Materialia | 2011

Effect of Pore Architecture on Magnetic-Field-Induced Strain in Polycrystalline Ni–Mn–Ga

X. X. Zhang; Cassie Witherspoon; Peter Müllner; David C. Dunand


Acta Materialia | 2013

Texture and training of magnetic shape memory foam

Cassie Witherspoon; Peiqi Zheng; Markus Chmielus; Sven C. Vogel; David C. Dunand; Peter Müllner


Archive | 2010

POLYCRYSTALLINE FOAMS EXHIBITING GIANT MAGNETIC-FIELD-INDUCED DEFORMATION AND METHODS OF MAKING AND USING SAME

Peter Müllner; Markus Chmielus; Cassie Witherspoon; David C. Dunand; X. Zhang; Yuttanant Boonyongmaneerat


Acta Materialia | 2015

Effect of porosity on the magneto-mechanical behavior of polycrystalline magnetic shape-memory Ni–Mn–Ga foams

Cassie Witherspoon; Peiqi Zheng; Markus Chmielus; David C. Dunand; Peter Müllner


Archive | 2010

Development of an Optical Device for Magneto-Mechanical Experiments

Adrian Rothenbuhler; Markus Chmielus; Cassie Witherspoon

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Peiqi Zheng

Northwestern University

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X. X. Zhang

Northwestern University

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X. Zhang

Northwestern University

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Xinjiang Zhang

Harbin Institute of Technology

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Sven C. Vogel

Los Alamos National Laboratory

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Xue Xi Zhang

Northwestern University

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