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I can't think it through, even though we are lot smarter in regards to
real world observations that all this rides on. Zero momentum, local frames of references, motion of objects, carrying momentum, zero slowing, but once weight "energy" is withdrawn, object slows. There is always more energy that can be withdrawn from the weight of an object in motion. But weight comes with it's momentum. Where is the trick (for dark matter)? The trick is in distribution and field theory. There are conditions where one dimension has no limits and can outreach in infinity the limited conditions of closed particles and mass, Einstein's world. How fields are not bound to limits. Here is the example, one narrowing a dimension to near zero, but never reach it, however bypassing simple physical limitations. Einstein's world. Mastery of dimensions, bypassing limits of through this first example on separating mass and momentum: 1. The first experiment: Take a thing that we step on and it turns our weight into mechanical energy. The thing that we stand on is pressed 1 cm down, other than that it may also tell us our weight, but not necessary, only that it is set to move down slowly as we step on it, initiating a mechanical process that makes energy, in say 1 second overall time. It was calculated that a man's weight this way can produce 7 watts of electricity from the weight of a man in 1 second, but this 7 watts is a rough estimate, but let's use it. Every second we step with our whole weight and produce a continuous 7 watts as long as a man with an average weight keeps stepping on two of these mechanical weight steppers, one foot, then the other, one second apart. The theory is that this little stepper thing, say one foot by one foot in dimension, a tile can stretch out, say like skis but remain one foot wide. So by adding surface area to what we step on and a hard structure, we can make that 1 centimeter that is pressed down be reduced to 1 millimeter in vertical pressure by increasing the stepper's size. The pressure is like a block, equal in all areas vertically of the stepper, not flexible and the foot presses down in it's center, and as it is not flexible the weight distributes below these tight 'skis'. So a very important element here is distribution and minimalization, in this case of work that the feet need to perform while we are still producing 7 watts and this is theoretically possible. The weight can be mechanically extracted through a small space pressed down a longer distance or a sturdy large area pressed down a little distance, the mechanical energy of the weight can be extracted. 2. The second experiment: The second experiment demonstrates that weight energy can be extracted by three men pushing a car behind the car, energy extracted from the car's weight, from below the rolling car by minimizing to near zero the effect on it's momentum (effect in the speed of the car's momentum). Physicists assume generally that if energy is extracted from a moving car, that must result in the car's slowing. Based on the first experiment by expanding the area that is pressed down out wide, the area that sinks can become so small in obtaining a certain amount of mechanical weight energy, that the car would slow based on it's heavy weight and momentum very minimally, i.e. encountering 1 millimeter bumps only between each weight step. If the three men are running as they are pushing the car, each weight step for the car can last one second (as an example). 3. Proposition: Since effect on speed and momentum can be minimized in a two dimensional field to near zero while weight can be extracted, then with the free motion and momentum of an object weight must arise. This means that weight energy can be extracted from a moving body with inertia (theoretically), and this also explains dark matter in the vicinity of spiral galaxies. A natural distribution. |
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