利用距离、延时混沌和科里奥利原理从静态环境势能中提取大量自由能

J. B. Surjaatmadja
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引用次数: 0

摘要

长期以来,提取自由能源一直是科学的目标,但大多被认为是不可能实现的。具有独立运动的自然过程,如河流和风,经常被使用,但提供不同的效果。然而,静态加压环境中的协调不稳定性可以用来提取环境势能的很大一部分。该方法在两个相邻点之间创建两条路径,一条是混沌或科里奥利旋转路径,另一条是直接路径,从而在两个相邻点之间产生压力差,可以收集以减少执行该过程所需的动能输入。虽然有些人将提议的好处称为“永动机”,但有必要了解55%至80%的所需动能仍将由机械产生;因此,它们可以被更好地称为“协调混沌”或“科里奥利能量提取器”,以节省能源。本文研究直接回收-直接从静态(非动态)环境能量中提取能量。虽然在深水或地下应用(如油气井)的正常活动中,这样的回报可能并不大,但它们可能是显著的,通常相当于减少20-45%的燃料使用或污染物产生。在使用20,000马力的作业中,这可以节省4,000马力或10,000,000 Btu/hr,并且没有相关的财务成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extracting Substantial Free Energy From Static Ambient Potential Energy Using Distance, Time-Lapse Chaos, and Coriolis Principles
Extracting free energy has long been a goal of science but is mostly considered impossible to achieve. Natural processes having independent movement, such as rivers and wind, are often used but provide varied effectiveness. However, coordinated instability within a statically pressurized ambience can be used to extract a significant percentage of the ambient potential energy. This method creates two pathways between two adjacent points, one being a chaotic or Coriolis swirling path and the other being a direct path, thereby creating a pressure difference between the two adjacent points, which can be harvested to reduce the kinetic energy input required to perform the process. While some refer to the proposed benefits as “perpetual motion,” it is necessary to understand that 55 to 80% of the required kinetic energy would still be mechanically generated; therefore, they could be better referred to as “coordinated chaos” or a “Coriolis energy extractor” to save energy [1]. This paper studies direct returns—extracting energy directly from a static (not dynamic) ambient energy. While such returns might not be substantial in normal activities, in deepwater or underground applications (e.g., oil or gas wells), they can be significant, often equating to a 20–45% reduction in fuel use or pollutant generation. In operations that use 20,000 horsepower, this could represent a savings of 4,000 horsepower or 10,000,000 Btu/hr with no associated financial costs.
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