Prototyping a Disruptive Self-Sustaining Power Plant enabled to overcome Perpetual Motion Machines

Ramón Ferreiro Garcia
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Abstract

This research discusses a strategic methodology for implementing a disruptive Self-Sustaining Power Plant (SSPP) characterized by the cascading coupling of a group of Power Units (PUs). In this configuration, the heat released from each PU due to the cooling of the thermal working fluid (TWF) is efficiently recovered and reused as supply heat for the first PU in the cascade.  Two case studies on the SSPP have been conducted using air and helium as TWFs. The first deals with PUs coupled in cascade operating with closed processes-based Vsp thermal cycles, while the second involves PUs coupled in cascade operating with closed processes-based VsVs thermal cycles.  Following the corresponding analysis of both case studies, significant results were obtained. These results, derived from this preliminary design study, will be applied to the implementation of the disruptive SSPP prototype operating with real gases as working fluids. This allows for a precise and clear understanding of the issue of generating useful work through expansion, contraction, or both.  Moreover, according to the results, the SSPP composed by a group of power units where the efficiency of each power unit operating with air as working fluid only approaches a value of the efficiency of 22%, can exceed 100% of the nominal design power under certain conditions, which supposes a flagrant violation of the principle of conservation of energy due to the fact that such disruptive Self-Sustaining Power Plant is enabled to overcome a Perpetual Motion Machine of second kind.
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为克服永动机而设计的颠覆性自持发电站原型
本研究讨论了实施颠覆性自持发电站(SSPP)的战略方法,其特点是一组动力单元(PU)的级联耦合。在这种配置中,每个动力单元因冷却热工作流体(TWF)而释放的热量都会被有效回收并重新利用,作为级联中第一个动力单元的供热。 我们使用空气和氦气作为热工作流体,对 SSPP 进行了两项案例研究。第一个案例涉及采用基于封闭工艺的 Vsp 热循环的级联耦合 PU,第二个案例涉及采用基于封闭工艺的 VsVs 热循环的级联耦合 PU。 对这两个案例研究进行相应分析后,得出了重要结果。这些从初步设计研究中得出的结果,将应用于以真实气体为工作流体的颠覆性 SSPP 原型的实施。这样就能准确、清晰地理解通过膨胀、收缩或两者产生有用功的问题。 此外,根据研究结果,由一组动力单元组成的自持式发电站,在以空气为工作流体的情况下,每个动力单元的效率仅接近 22% 的效率值,但在某些条件下可超过 100%的额定设计功率,这意味着公然违反了能量守恒原则,因为这种颠覆性的自持式发电站能够克服第二类永动机。
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