Hayoung Chung
Ulsan National Institute of Science and Technology · 工学
研究室紹介
Professor Hayoung Chung's research lab specializes in the multiscale mechanics and design of smart functional materials, with a focus on liquid crystal networks (LCNs) and cellular structures. The lab develops advanced computational frameworks—such as multiscale modeling, finite element analysis, and level-set topology optimization—to understand and predict photomechanical and thermoelastic behaviors in these materials. Key research directions include the design of multi-material, manufacturable cellular architectures and the integration of nonlinear material responses into structural optimization for applications in soft robotics, adaptive structures, and additive manufacturing. The lab emphasizes the synergy between material microstructure, macroscopic performance, and manufacturability through physics-based modeling and simulation.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15A liquid crystal network whose chromophores are functionalized by photochromic dye exhibits light-induced mechanical behaviour. As a result, the micro-scaled thermotropic traits of the network and the macroscopic phase behaviour are both influenced as light alternates the shape of the dyes. In this paper, we present an analysis of this photomechanical behaviour based on the proposed multiscale framework, which incorporates the molecular details of microstate evolution into a continuum-based unde
As a polymeric system incorporating rigid molecules within its structure, the liquid-crystal network (LCN) has been envisaged as a novel heterogeneous material. Under the influence of external stimuli, the orientational order of the liquid-crystalline phase becomes dilute and overall anisotropy is hence decreased; the actinic light absorbed by photochromic molecules, for example, induces the geometric isomerization and subsequently yields internal stress within the local network. In this study w
Abstract Owing to their tailorable physical properties, periodic cellular structures are considered promising materials for use in various engineering applications. To fully leverage the potential of such structures, it will be necessary to develop a design method that is capable of producing material layouts that are not only intricate but at the same time, readily manufacturable. This paper presents a topology optimization framework for designing well-connected and exact-sized multi-material c
This work aims to provide a comprehensive review of the continuum models of the phase behaviors of liquid crystal networks (LCNs), novel materials with various engineering applications thanks to their unique composition of polymer and liquid crystal. Two distinct behaviors are primarily considered: soft elasticity and spontaneous deformation found in the material. First, we revisit these characteristic phase behaviors, followed by an introduction of various constitutive models with diverse techn
Topology optimization is one of the widely known branches among the structural optimization, and it distinguishes itself being able to generate extremely lightweight structures. Recently it has drawn particular interest from both industry and academia because of its natural applicability to additive manufacturing. However, its implementation is often a daunting task for engineers in practice. In particular there can potentially be a large programming effort required to modify the method, even fr