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These TPSs are made of flexible high temperature resistant fabrics, folded at launch and deployed in space for de-orbit and re-entry operations.
These systems are made of flexible, high temperature resistant fabrics, folded at launch and deployed in space for de-orbit and re-entry operations.
In a 1 3 connectivity piezocomposite for high temperature use (200 400 °C), lithium niobate pillars are embedded in a matrix of flexible high temperature sealant or high temperature cement.
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We confirm that flexible residues at high temperature in unstable regions can be promising targets to improve thermostability of enzymes.
This flexible operation, in high temperature power plant components, could lead to a combination of creep and fatigue crack growth failure.
The primary enhancement over existing models is in relation to strain-rate independence of parameters, for accurate interpolation and extrapolation across a range of strain-rates and stress regimes, as relevant to flexible operation of high temperature power generation plant.
These finely tuned hybrid films are promising candidate for flexible transparent substrate especially for high temperature (>400 °C) electronic and optoelectronic manufacturing processes.
In this work, flexible graphite films, fabricated by high temperature thermal treatment of polymer precursor and subsequence compression rolling, are designed and explored to create dipole antennas for radio frequency applications.
Tremendous efforts have been devoted to fabricate high performance YBCO thin films on flexible metal tapes as promising high temperature superconductor (HTS) wires for power application or high field magnets [2, 3].
It is incompatible with flexible plastic substrates which cannot withstand high temperature, and hence limits the applications of Ag NWs films in flexible optoelectronic devices.
The flexible loop regions were modeled using high temperature simulated annealing and constrained molecular dynamic simulations.
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