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Parallel Simulation of Population Balance Model-Based Particulate Processes Using Multicore CPUs and GPUs

机译:使用多核CPU和GPU的基于人口平衡模型的微粒过程的并行仿真

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摘要

Computer-aided modeling and simulation are a crucial step in developing, integrating, and optimizing unit operations and subsequently the entire processes in the chemical/pharmaceutical industry. This study details two methods of reducing the computational time to solve complex process models, namely, the population balance model which given the source terms can be very computationally intensive. Population balance models are also widely used to describe the time evolutions and distributions of many particulate processes, and its efficient and quick simulation would be very beneficial. The first method illustrates utilization of MATLAB's Parallel Computing Toolbox (PCT) and the second method makes use of another toolbox, JACKET, to speed up computations on the CPU and GPU, respectively. Results indicate significant reduction in computational time for the same accuracy using multicore CPUs. Many-core platforms such as GPUs are also promising towards computational time reduction for larger problems despite the limitations of lower clock speed and device memory. This lends credence to the use of highfidelity models (in place of reduced order models) for control and optimization of particulate processes.
机译:计算机辅助建模和仿真是开发,集成和优化单元操作以及随后的化学/制药行业整个过程的关键步骤。这项研究详细介绍了两种减少计算时间来解决复杂过程模型的方法,即人口平衡模型,该模型给出了源项,因此计算量很大。人口平衡模型也被广泛用于描述许多微粒过程的时间演变和分布,其高效而快速的模拟将非常有益。第一种方法说明了利用MATLAB的并行计算工具箱(PCT)的方法,第二种方法利用了另一个工具箱JACKET来分别加快CPU和GPU的计算速度。结果表明,使用多核CPU在相同精度下的计算时间显着减少。尽管时钟速度和设备内存较低,但诸如GPU之类的许多核心平台也有望减少大型问题的计算时间。这使人们可以使用高保真模型(代替降阶模型)来控制和优化颗粒过程。

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  • 来源
    《Modelling and simulation in engineering》 |2013年第2013期|475478.1-475478.16|共16页
  • 作者单位

    Department of Chemical and Biochemical Engineering, Rutgers, The State University of New Jersey,Piscataway, NJ 08854, USA;

    Department of Chemical and Biochemical Engineering, Rutgers, The State University of New Jersey,Piscataway, NJ 08854, USA;

    Department of Chemical and Biochemical Engineering, Rutgers, The State University of New Jersey,Piscataway, NJ 08854, USA;

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