Two-stroke engine with constant crank angular velocity

A. Zotov, Artem Tokarev, Anvar Valeev, Gulnaz Fatkullina
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Abstract

The work is devoted to the dynamics of a two-stroke engine. The engine used in sea vessels is considered. A new scheme of the crank mechanism of a two-stroke engine is proposed. An elastic hinge with a given angular characteristic (dependence of the restoring moment on the angle of rotation of the crank) is supposed to be installed between the strut and the crank. The work shows that with certain parameters of the hinge it is possible to obtain a constant angular velocity of the crank for any angle of rotation of the crank. Currently, flywheel inertia can account for up to 80 percent of all moving parts in an engine. Since the mass of engines is large, eliminating the flywheel from the engine design or reducing its mass may be a promising direction in the production of two-stroke engines. The proposed hinge is a structure in which an elastic element (spring or air spring) moves between circular guides of a calculated shape, resulting in a given hinge characteristic. In this work, an air spring was chosen as the elastic element of the hinge, since in this case it becomes possible to change the characteristics of the hinge by changing the pressure in the air spring. The shape of the guides is such that when adding the characteristic of an elastic hinge to the existing characteristic of the engine, an “ideal” characteristic of the considered engine with an elastic hinge is obtained, at which the angular velocity of the crank will be constant. When the angular velocity of the crank changes, a different characteristic of the hinge is required. In progress it is supposed to change the characteristics of the elastic hinge by changing the pressure in the air spring, which is the elastic element of the hinge. It turned out that by changing the initial excess pressure in the air spring it is possible to compensate for the change in the characteristics of the hinge required for the angular velocity of the crank to remain constant at any angle of rotation when its value changes. The results of these studies can be used both in the production of two-stroke engines and for any two-stroke engines.
曲柄角速度恒定的二冲程发动机
这项工作专门研究二冲程发动机的动力学。研究考虑了用于海船的发动机。提出了二冲程发动机曲柄机构的新方案。假定在支柱和曲柄之间安装一个具有给定角度特性(恢复力矩与曲柄旋转角度的关系)的弹性铰链。研究表明,在铰链参数一定的情况下,曲柄可以在任何旋转角度下获得恒定的角速度。目前,飞轮惯性可占发动机所有运动部件的 80%。由于发动机的质量较大,因此在发动机设计中取消飞轮或减轻其质量可能是生产二冲程发动机的一个有前途的方向。拟议的铰链是一种结构,其中的弹性元件(弹簧或空气弹簧)在计算形状的圆形导轨之间移动,从而产生给定的铰链特性。在这项工作中,选择空气弹簧作为铰链的弹性元件,因为在这种情况下,可以通过改变空气弹簧的压力来改变铰链的特性。导轨的形状是这样的:将弹性铰链的特性与发动机的现有特性相加,就会得到带有弹性铰链的发动机的 "理想 "特性,此时曲柄的角速度将保持不变。当曲柄的角速度发生变化时,则需要不同的铰链特性。在研究过程中,应该通过改变空气弹簧(铰链的弹性元件)的压力来改变弹性铰链的特性。结果发现,通过改变空气弹簧中的初始过剩压力,可以补偿铰链特性的变化,从而使曲柄的角速度在其值发生变化时在任何旋转角度都保持恒定。这些研究结果既可用于二冲程发动机的生产,也可用于任何二冲程发动机。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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