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Titlebook: Generative Manufacturing of Optical, Thermal and Structural Components (GROTESK); Roland Lachmayer,Dietmar Kracht,Henning Ahlers Conferenc

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https://doi.org/10.1007/978-1-4842-8042-3s and polymers. In order to map the processes and adapt them to the different materials, appropriate system technology is required, which places special demands on the laser beam sources and guidance used as well as the handling of the deposition materials.
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Additively Manufactured Polymer Optomechanics and Their Application in Laser Systems,ponding components based on the Fused Filament Fabrication (FFF) process, we examine potentials and limitations to create complex, function-integrated optomechanical systems. For this purpose, the mounting of individual optics, their integration in ., as well as the mounting and cooling of active op
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Additive Manufacturing of Optics and Optomechatronics: Multiphysics Simulation Environments for Pro In the preliminary planning and further development of components and processes, simulation serves as the basis for investigating thermal, optical and mechanical effects within complex processes. In this work, multiphysics simulation environments are designed for the process and material developmen
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Molybdenum Copper MMC for Additive Manufacturing of Thermal and Structural Components,tallic alloys due to the extensive incompatibility of the fundamentally different groups of materials. The focus is on both the appropriate coupling of YAG and alloy, and the adjustment of thermal properties such as melting point and thermal expansion coefficient to prevent damage to the crystalline
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Additive Manufacturing of Optical, Thermal and Structural Components by Laser Metal Deposition,ng on the state of the art of laser metal deposition, this chapter describes the special challenges involved in processing copper-phosphor-molybdenum materials for additive manufacturing. Using custom experiment designs, process parameters are developed which are combined with intelligent process co
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