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Energy-efficient control in injection molding.

机译:注塑中的节能控制。

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摘要

As an energy-intensive process, in injection molding, energy cost is one of the major cost components. The energy expenditure during molding can be divided into two forms: thermal and mechanical energy, although both are initially transferred from electrical energy. The former is mainly the energy consumed for heating the barrel, while the latter can be further partitioned as energy related to mechanical motions such as injection and mold clamping, and thermal relevant mechanical energy such as plastication. The energy saving problem has been addressed by many researchers from the equipment modification angle, for example, improving pump and motor efficiency. Different from that, this dissertation, from a system operation viewpoint, attempts to develop an energy-efficient control system. Energy over-consumption is mainly related to the overheating of melt, therefore the thermal related variables, including barrel temperatures, screw rotation speed and back pressure, are major variables concerned in this design. Proper controls and settings of these machine variables is the key to energy-efficient operation. In the previous research, the control and setting of these variables are usually considered separately, despite strong interactions existing among them. In this thesis, the energy problem is analyzed systematically first, and then control methods for these variables are developed. Afterwards, melt temperature, a key process variable, is studied to develop a faster process stabilization control strategy. Finally, an integrated setting approach for these key variables is proposed leading to an energy-efficient operation of the process.
机译:作为高能耗工艺,在注塑成型中,能源成本是主要的成本组成部分之一。模制过程中的能量消耗可以分为两种形式:热能和机械能,尽管它们最初都是从电能中转移过来的。前者主要是加热机筒所消耗的能量,而后者可以进一步划分为与机械运动(如注塑和合模)以及与热相关的机械能(如塑化)相关的能量。许多研究人员从设备改造的角度解决了节能问题,例如,提高了泵和电动机的效率。与此不同的是,本论文从系统运行的角度,试图开发一种节能控制系统。能量的过度消耗主要与熔体的过热有关,因此与热相关的变量(包括料筒温度,螺杆转速和背压)是此设计中涉及的主要变量。正确控制和设置这些机器变量是节能运行的关键。在先前的研究中,尽管这些变量的控制和设置通常相互独立,但它们之间却存在着强大的相互作用。本文首先对能源问题进行了系统的分析,然后提出了这些变量的控制方法。此后,研究了关键工艺变量熔体温度,以开发更快的工艺稳定控制策略。最后,提出了针对这些关键变量的集成设置方法,从而实现了过程的节能运行。

著录项

  • 作者

    Yao, Ke.;

  • 作者单位

    Hong Kong University of Science and Technology (Hong Kong).;

  • 授予单位 Hong Kong University of Science and Technology (Hong Kong).;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 227 p.
  • 总页数 227
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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