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Dynamic modeling of plasticating and purging processes in reciprocating screw injection molding machines.

机译:往复式螺杆注塑机中塑化和吹扫过程的动态建模。

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摘要

The screw changes its length to diameter ratio (LID ratio) during plastication in a reciprocating screw injection molding machine. Due to the time varying effective working length of the screw, the amount of re-circulating backflow changes with time. This causes a time varying oscillation in concentration of the screw output if a tracer is used. The time dependent variation of the output concentration is a measure of the residence time distribution of the resin in the screw, barrel and nozzle. From the residence time distribution one can also calculate the temperature and shear history of the resin.;The residence time distribution, temperature and shear history that the melt experienced during plastication can be modeled as a higher order system since the screw has the three functional sections as well as the dependent variables cannot be measured until the melt comes out of the nozzle during the melt injection or purging. To model the plasticating and purging processes, the plasticating and purging process was illustrated as a block diagram in which a series of blocks represented the appropriate transfer functions based on the results from the purging experiment. The dynamic model developed for this study consists of three different transfer functions: a dead time transfer function, an interacting second order transfer function and a non-interacting first order transfer function.;To determine the system's behavior and response of the dependent variable as a function of time; the model was excited with a rectangular pulse input where the magnitude of the rectangular pulse indicates the plasticating capacity and the duration of the pulse input is the plastication time when the melt flows as the screw rotates. During purging/melt injection, the melt flows through the nozzle, and is modeled as a first order system. Screw plastication occurs at a constant screw speed where the screw goes from zero rpm to its preset speed which is maintained during plastication and then in the same fraction of a second in time goes back to zero. This makes it a natural choice to use a concentration square pulse to excite the system. Alternatively one can use a step change when a tracer input goes from zero concentration to its maximum value at the feed throat at time = 0, as the screw rotates for a series of shots.;The results of this study showed the interacting second order system representing the transition and metering sections of the screw can model the oscillation due to the time varying effective working length of the screw, but the dynamic model does not account for the oscillation of the tracer concentration due to repetitive backflow by the remaining tracer with each plasticating shot. It takes 1 to 30 shots to clean out a tracer or color.
机译:在往复式螺杆注射成型机中塑化期间,螺杆会改变其长径比(LID比)。由于螺杆的有效工作时间会随时间变化,因此回流的回流量会随时间变化。如果使用示踪剂,这会导致螺杆输出浓度的时变振荡。输出浓度随时间的变化是树脂在螺杆,机筒和喷嘴中停留时间分布的量度。从停留时间分布中,还可以计算出树脂的温度和剪切历史。;由于螺杆具有三个功能部分,因此在塑化过程中经历的熔体的停留时间分布,温度和剪切历史可以建模为高阶系统。在熔体注入或吹扫过程中,直到熔体从喷嘴中出来,才能测量因变量以及因变量。为了对塑化和吹扫过程进行建模,将塑化和吹扫过程作为方框图进行了说明,其中一系列方框基于吹扫实验的结果表示适当的传递函数。为该研究开发的动力学模型包括三个不同的传递函数:死区时间传递函数,相互作用的二阶传递函数和非相互作用的一阶传递函数。确定系统的行为和因变量的响应为时间的函数;用矩形脉冲输入激励模型,其中矩形脉冲的大小表示塑化能力,脉冲输入的持续时间是当螺杆旋转时熔体流动时的塑化时间。在吹扫/熔体注入期间,熔体流经喷嘴,并被建模为一阶系统。螺杆塑化以恒定的螺杆速度进行,螺杆从零rpm旋转到预设速度,该速度在塑化过程中保持不变,然后在相同的几分之一秒内恢复为零。这自然是使用浓度平方脉冲来激发系统的选择。另外,当示踪剂输入从零浓度变为零时在进料口处的浓度达到最大值时,可以使用步进更改,因为螺杆旋转了一系列镜头。该研究的结果表明了相互作用的二阶系统表示螺杆的过渡段和计量段的模型可以模拟随时间变化的螺杆有效工作长度而引起的振荡,但是动态模型不能解释示踪剂浓度的波动,这是由于剩余的示踪剂在每次塑化过程中反复回流造成的射击。清除示踪剂或颜色需要1到30张照片。

著录项

  • 作者

    Jeong, Jaewook.;

  • 作者单位

    University of Massachusetts Lowell.;

  • 授予单位 University of Massachusetts Lowell.;
  • 学科 Engineering Chemical.;Plastics Technology.
  • 学位 Ph.D.
  • 年度 2012
  • 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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