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Shape memory materials are among several smart materials being investigated for a wide range of applications, including "self-healing" tribological surfaces.
Then the different strategies employed for the self-healing of cementitious materials, i.e. the use of hollow fibers, microencapsulation, expansive agents and mineral admixtures, bacteria and shape memory materials, are reviewed and summarized.
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Finding the right kind of memory material is critical.
A novel supramolecular shape memory material was prepared based on partial α-CD PEG inclusion complex, which contains α-CD PEG inclusion complexlites as a fixing phase and naked PEG crystallites as a reversible phase.
A three-dimensional crystal-mechanics based model for the thermo-mechanically coupled superelastic response of initially-textured polycrystalline shape-memory materials is used to simulate the response of Ti-Ni shape-memory alloy in sheet form.
This chapter discusses that shape memory materials have been developed principally for biomedical and engineering applications.
While in most stimulus-responsive materials, the result is limited to a change in their certain physical/chemical properties, stimulus-responsive shape memory materials (SMMs) are able to recover their original shape, after being quasi-plastically distorted.
After being severely and quasi-plastically distorted, shape memory materials (SMMs) are able to recover their original shape at the presence of the right stimulus.
Shape-memory materials have been proposed in biomedical device design due to their ability to facilitate minimally invasive surgery and recover to a predetermined shape in vivo.
Shape memory materials (SMM) are smart materials that can remember and recover substantial programmed deformation upon activation and exposing to an external stimulus such as chemicals, temperature, pH, light, a magnetic field, etc. Shape memory materials have been used in many areas and textile application of this technology has covered a wide usage recently.
Shape memory materials have also been designed that utilize control at a molecular level.
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