The Experts below are selected from a list of 9 Experts worldwide ranked by ideXlab platform

Bruce P. Burns - One of the best experts on this subject based on the ideXlab platform.

  • A design environment for laminated fiber-reinforced thick Composite Materials
    Engineering with Computers, 1993
    Co-Authors: William J. Rasdorf, Lisa K. Spainhour, Edward M. Patton, Bruce P. Burns
    Abstract:

    The research described herein concerns the integration of several components of engineering software using a relational database. More specifically, a conceptual finite element material preprocessing system for laminated fiber-reinforced thick Composite Materials is studied. In this computer-aided analysis (CAA) system, a Materials database is integrated with several software components, including commercially available finite element analysis (FEA) programs and preprocessors, and tools for the design of laminated Composite Materials. The system focuses on assembling, manipulating and using Composite Materials data, resulting in the transfer of 2-D and 3-D Composite Materials Property data into a finite element analysis program. The system is life-cycle in nature, supporting a Composite through testing, analysis and design. it offers great versatility in its ability to use raw ply data from any source, design layups, and generate laminate properties and FEA Materials data files. Despite the fact that such integrated systems are not new in many domains, they have not been successfully introduced to the redlm of Composite Materials analysis and design. This outcome is due largely to the nature of the Materials themselves and the overhead they bring to the development of a successful life-cycle model.

Tang Yin-qiao - One of the best experts on this subject based on the ideXlab platform.

  • Design and Optimization of Composite Materials Property Examination
    Journal of Agricultural Mechanization Research, 2005
    Co-Authors: Tang Yin-qiao
    Abstract:

    The usually used methods for examination design and optimization are described in this paper. These methods include single factor rotates, orthogonal design, orthogonal polynomial regression, hom ogeneous desi- gn, simplex and artificial neural networks etc. The optima ization results are evaluated synthetically and the select principles of experiment design method are introduced.

William J. Rasdorf - One of the best experts on this subject based on the ideXlab platform.

  • A design environment for laminated fiber-reinforced thick Composite Materials
    Engineering with Computers, 1993
    Co-Authors: William J. Rasdorf, Lisa K. Spainhour, Edward M. Patton, Bruce P. Burns
    Abstract:

    The research described herein concerns the integration of several components of engineering software using a relational database. More specifically, a conceptual finite element material preprocessing system for laminated fiber-reinforced thick Composite Materials is studied. In this computer-aided analysis (CAA) system, a Materials database is integrated with several software components, including commercially available finite element analysis (FEA) programs and preprocessors, and tools for the design of laminated Composite Materials. The system focuses on assembling, manipulating and using Composite Materials data, resulting in the transfer of 2-D and 3-D Composite Materials Property data into a finite element analysis program. The system is life-cycle in nature, supporting a Composite through testing, analysis and design. it offers great versatility in its ability to use raw ply data from any source, design layups, and generate laminate properties and FEA Materials data files. Despite the fact that such integrated systems are not new in many domains, they have not been successfully introduced to the redlm of Composite Materials analysis and design. This outcome is due largely to the nature of the Materials themselves and the overhead they bring to the development of a successful life-cycle model.

Gulzhahan Islam - One of the best experts on this subject based on the ideXlab platform.

  • Composite Materials Property Determination by Rule of Mixture and Monte Carlo Simulation
    2018 IEEE International Conference on Advanced Manufacturing (ICAM), 2018
    Co-Authors: Gaziz Yerbolat, Shynggys Amangeldi, Hazrat Ali, Nazym Badanova, Asset Ashirbeok, Gulzhahan Islam
    Abstract:

    This research highlights the novelty of using Monte Carlo Simulation Method (MCSM) for material prediction in 3D printing. In the recent years, the production processes pay particular attention to optimize the use of Materials. optimizing the product for a certain percentage positively affects the saving of resources, and this fact motivates the development of industries concerning the use of Materials. The promising potential of solving this problem has great influence in Additive Manufacturing (AM), especially in 3D printing. In recent years, this technology has received a tremendous developmental jump by introducing the idea of using several Materials simultaneously in one production process. Furthermore, a new concept of 3D printers is being introduced to implement this idea both in Fused Deposition Modeling (FDM) and Selective Laser Sintering (SLS) printing. There are still many factors to be considered, and one of them is the mechanical properties of potential multi-material products, especially the determination of these properties and the automation of this process. Therefore, this paper proposes one of the possible methods to solve this problem by introducing Rule of Mixture based on MCSM.

Lisa K. Spainhour - One of the best experts on this subject based on the ideXlab platform.

  • A design environment for laminated fiber-reinforced thick Composite Materials
    Engineering with Computers, 1993
    Co-Authors: William J. Rasdorf, Lisa K. Spainhour, Edward M. Patton, Bruce P. Burns
    Abstract:

    The research described herein concerns the integration of several components of engineering software using a relational database. More specifically, a conceptual finite element material preprocessing system for laminated fiber-reinforced thick Composite Materials is studied. In this computer-aided analysis (CAA) system, a Materials database is integrated with several software components, including commercially available finite element analysis (FEA) programs and preprocessors, and tools for the design of laminated Composite Materials. The system focuses on assembling, manipulating and using Composite Materials data, resulting in the transfer of 2-D and 3-D Composite Materials Property data into a finite element analysis program. The system is life-cycle in nature, supporting a Composite through testing, analysis and design. it offers great versatility in its ability to use raw ply data from any source, design layups, and generate laminate properties and FEA Materials data files. Despite the fact that such integrated systems are not new in many domains, they have not been successfully introduced to the redlm of Composite Materials analysis and design. This outcome is due largely to the nature of the Materials themselves and the overhead they bring to the development of a successful life-cycle model.