김남훈 교수
Namhun Kim
UNIST 기계공학과 · 공학
연구실 소개
김남훈 교수의 연구실은 4D 프린팅과 스마트 소재를 중심으로, 형태 기억 고분자를 활용한 다기능성 구조물의 설계 및 제작에 주력하고 있습니다. 특히 빛에 의한 원거리 제어가 가능한 다색 4D 프린팅 기술과 이중 안정성(이중 안정성)을 가진 3D 프린팅 구조물을 통해 재구성 가능한 기계적 동작을 실현하고자 합니다. 또한 적층 제조 공정의 최적화 및 복합 생산 시스템의 복잡도 분석을 통해 스마트 제조 시스템의 효율성과 신뢰성을 제고하고 있습니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15Four-dimensional (4D) printing can add active and responsive functions to three-dimensional (3D) printed objects in response to various external stimuli. Light, among others, has a unique advantage of remotely controlling structural changes to obtain predesigned shapes. In this study, we demonstrate multicolor 4D printing of shape-memory polymers (SMPs). Using color-dependent selective light absorption and heating in multicolor SMP composites, we realize remote actuation with light illumination.
Additive manufacturing (AM) became widespread through several organizations due to its benefits in providing design freedom, inventory improvement, cost reduction, and supply chain design. Process planning in AM involving various AM technologies is also complicated and scarce. Thus, this study proposed a decision-support tool that integrates production and distribution planning in AM involving material extrusion (ME), stereolithography (SLA), and selective laser sintering (SLS). A multi-objectiv
Abstract 3D printing of smart materials, called “four‐dimensional” (4D) printing, adds active, responsive functions to 3D‐printed structures. Shape memory polymers (SMPs) can be employed as an active material in 4D printing, and this could be useful for a wide range of potential applications. New design for 4D printing is presented here by introducing SMPs into rotational multistable structures. Two different digital SMPs are employed to enable large‐angle, thermal actuation in a controlled mann
Three-dimensional (3D) printing is ideal for the fabrication of various customized 3D components with fine details and material-design complexities. However, most components fabricated so far have been static structures with fixed shapes and functions. Here we introduce bistability to 3D printing to realize highly-controlled, reconfigurable structures. Particularly, we demonstrate 3D printing of twisting and rotational bistable structures. To this end, we have introduced special joints to constr
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