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Titlebook: Active Origami; Modeling, Design, an Edwin A. Peraza Hernandez,Darren J. Hartl,Dimitris Book 2019 Springer International Publishing AG, par

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發(fā)表于 2025-3-21 19:42:03 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
期刊全稱Active Origami
期刊簡(jiǎn)稱Modeling, Design, an
影響因子2023Edwin A. Peraza Hernandez,Darren J. Hartl,Dimitris
視頻videohttp://file.papertrans.cn/145/144250/144250.mp4
發(fā)行地址A comprehensive review of state of the art origami with active materials is provided;.The kinematics, design, and structural mechanics of origami with conventional creased folds and with active smooth
圖書封面Titlebook: Active Origami; Modeling, Design, an Edwin A. Peraza Hernandez,Darren J. Hartl,Dimitris Book 2019 Springer International Publishing AG, par
影響因子.Origami structures have the ability to be easily fabricated from planar forms, enable the deployment of large structures from small volumes, and are potentially reconfigurable. These characteristics have led to an increased interest in theoretical and computational origami among engineers from across the world. In this book, the principles of origami, active materials, and solid mechanics are combined to present a full theory for origami structures. The focus is on origami structures morphed via active material actuation and formed from sheets of finite thickness. The detailed theoretical derivations and examples make this an ideal book for engineers and advanced students who aim to use origami principles to develop new applications in their field...
Pindex Book 2019
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978-3-030-06315-3Springer International Publishing AG, part of Springer Nature 2019
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Anne Olivia Boyer,Robert S. Boyerethod applicable to a much wider spectrum of three-dimensional goal shapes. This chapter presents the . to solve the following origami design problem: given a goal shape represented as a polygonal mesh (termed as the goal mesh), find the shape and fold pattern of a planar sheet that can be folded to
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Hans J. Bremermann,Russell W. Andersonases. However, such previous models are not intended for origami structures having non-negligible fold thickness or maximum fold curvature constraints based on material or structural limitations. In this chapter, we develop a model that captures the kinematic response of sheets having realistic fold
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Formalizing the Face Lattice of Polyhedrae kinematics model for origami with smooth folds developed in Chap. . and existing plate theories to obtain a structural representation for folds of non-zero thickness. The implementation of the model in a computational environment is also addressed. We provide examples including origami structures
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