Fabric drape profile simulation based on deformable mesh

被引:0
|
作者
Cao, Jingzhe [1 ]
Tao, Chen [1 ]
Bai, Linlin [1 ]
机构
[1] College of Textile and Garment, Shaoxing University, Zhejiang, Shaoxing,312000, China
来源
关键词
Attenuation factors - Constraint factor - Deformable mesh - Drape coefficients - Drape unevenness - Fabric drape - Fabric simulation - Mesh modeling - Projection area - Virtual fabrics;
D O I
10.13475/j.fzxb.20230103501
中图分类号
学科分类号
摘要
Objective In allusion to the stitch of constrained fabric simulation, this paper proposes a deformable mesh for reproducing the drape profile of fabric. Aiming to represent the dynamic process rather than static form of the fabric drape, the mesh model is featured with kinetic parameters and an evolution process to enable shape change over time. Method In the mesh model, the constraints inside the fabric were built up through a constraint factor as well as an attenuation factor, and the contact between the fabric flexible body and the rigid plane was performed with a Touch-Counteract mechanism. The forces on the particles in the mesh, which were calculated with mesh deformation, were then used to generate the further displacement of the mesh. The evolution of the mesh was brought up by step-by-step iteration to introduce draping kinetics of the virtual fabric. Results The drape profile of virtual fabric is achieved as the evolution processs meets its steady state. The drape coefficient is then worked out through identifying and quantifying the projection area of the mesh. The impact of the constraint factor and the attenuation factor on the drape coefficient are investigated, which has revealed the features and range of the model parameters capability. With lower attenuation factor (e = 0.6), larger drape coefficient can be brought about while the range of the drape is narrow, and the drape is mainly affected by the attenuation factor and the effect from the constraint factor is relatively minor. When the attenuation factor grows (e=1.2 or e = 2.4), smaller drape can be achieved while the range of the drape gets broader, and the constraint factor becomes more influential. When the attenuation factor goes up to 3.6 plus, the range of the drape turns to shrink, and the influence from the constraint factor recedes again. The upper limit of the range for the drape approximates 1.0 when the attenuation factor gets close to zero, and the lower limit of the range approaches 0 when the attenuation factor grows. Therefore, the theoretical range (0,1) of the drape coefficient gets fully covered with the mesh. Concerning the unevenness ripples, the reason for real fabric is discussed and reduced into the mechanical anisotropy. By emulating anisotropy through the differentiated constraint factors, the uneven appearance along the draping surface is manipulated and manifested. Finally, the precise of the model is boosted with respect to the mesh scale as well as the evolution algorithm, and a sensible mesh scale value 57 has been figured out for balancing between the simulation effect and the resource consumption. By employing the third-order Tylor expansion, the computational error is minished and the precision of the evolution algorithm is raised up to 0 (At). Conclusion It has turned out in the simulation experiments this mesh to be a simple, fast and precise model for expressing fabric draping. In the mesh model, the constraint factor and the attenuation factor together have been testified to be a compact approach to expressing the mutual effects between different parts of the real fabric. By recognizing and quantifying the projection area, the drape coefficient of the virtual fabric well meet the theoretic range of it. The drape coefficient has been found positively related to the constraint factor, and negatively related to the attenuation factor, and the latter has comparatively more impact on the drape coefficient. There are two kinds of precision involved in this model, i. e., the mesh precision and the algorithm precision. The former is determined by the mesh scale, and an appropriate scale has proved to be a trade-off between precision and efficiency considering the rapid growth of computational resource demand along the scale. While the algorithm precision can be improved significantly with the third-order Tylor expansion. © 2024 China Textile Engineering Society. All rights reserved.
引用
收藏
页码:59 / 67
相关论文
共 50 条
  • [31] A study of fabric-drape behaviour with image analysis - Part II: The effects of fabric structure and mechanical properties on fabric drape
    Jeong, YJ
    Phillips, DG
    JOURNAL OF THE TEXTILE INSTITUTE, 1998, 89 (01) : 70 - 79
  • [32] Drape simulation using solid-shell elements and adaptive mesh subdivision
    Xie, Q.
    Sze, K. Y.
    Zhou, Y. X.
    FINITE ELEMENTS IN ANALYSIS AND DESIGN, 2015, 106 : 85 - 102
  • [33] Cotton type fabric drape prediction
    Sarac, Tatjana
    Stepanovic, Jovan
    Petrovic, Vasijlije
    Demboski, Goran
    INDUSTRIA TEXTILA, 2017, 68 (01): : 3 - 8
  • [34] Deformable mesh simulation for virtual laparoscopic cholecystectomy training
    Youngjun Kim
    Laehyun Kim
    Deukhee Lee
    Sangkyun Shin
    Hyunchul Cho
    Frédérick Roy
    Sehyung Park
    The Visual Computer, 2015, 31 : 485 - 495
  • [35] Effect of pressure decatizing on fabric drape
    Jeong, YJ
    Phillips, DG
    TEXTILE RESEARCH JOURNAL, 2001, 71 (05) : 415 - 419
  • [36] Effect of fabric mechanical properties on drape
    Hu, JL
    Chan, YF
    TEXTILE RESEARCH JOURNAL, 1998, 68 (01) : 57 - 64
  • [37] Unidirectional Fabric Drape Testing Method
    Mei, Zaihuan
    Shen, Wei
    Wang, Yan
    Yang, Jingzhi
    Zhou, Ting
    Zhou, Hua
    PLOS ONE, 2015, 10 (11):
  • [38] Deformable mesh simulation for virtual laparoscopic cholecystectomy training
    Kim, Youngjun
    Kim, Laehyun
    Lee, Deukhee
    Shin, Sangkyun
    Cho, Hyunchul
    Roy, Frederick
    Park, Sehyung
    VISUAL COMPUTER, 2015, 31 (04): : 485 - 495
  • [39] A new method in fabric drape measurement and analysis of the drape formation process
    Al-Gaadi, Bidour
    Goktepe, Fatma
    Halasz, Marianna
    TEXTILE RESEARCH JOURNAL, 2012, 82 (05) : 502 - 512
  • [40] Simulation of Fabric in 2D Virtual Scene Based on Mesh Model
    Fan, Xiaona
    Zhang, Senlin
    Fan, Zhen
    Chen, Zhaoqi
    PROCEEDINGS OF 2013 INTERNATIONAL CONFERENCE ON INFORMATION SCIENCE AND CLOUD COMPUTING COMPANION (ISCC-C), 2014, : 704 - 709