Difference between revisions of "Reciprocative friction in gem-gum technology"

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One may also want to call this more fancily '''"reciprocative energy dissipation"'''. <br>
 
One may also want to call this more fancily '''"reciprocative energy dissipation"'''. <br>
 
This applies to any reciprocative motion both linear reciprocative and rotative reciprocative. <br>
 
This applies to any reciprocative motion both linear reciprocative and rotative reciprocative. <br>
 
Essence is back and forth motion that requires accelerations and jerk. <br>
 
Essence is back and forth motion that requires accelerations and jerk. <br>
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Note that: <br>
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– in factory style there is much less reciprocative motion than in more general purpose kind of robotics akin to 3D printers. <br>
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– at least one more highly relevant thing …
  
 
{{wikitodo|Add explanation of physics, math, and reasonable example values (last one hardest).}} <br>
 
{{wikitodo|Add explanation of physics, math, and reasonable example values (last one hardest).}} <br>
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{{wikitodo}}
 
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=== Maths & Examples ===
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=== Symbolic math ===
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{{wikitodo}}
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=== Qunatitative example numbers ===
 
{{wikitodo}}
 
{{wikitodo}}
  
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{{wikitodo}}
 
{{wikitodo}}
  
=== Maths & Examples ===
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=== Symbolic math ===
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{{wikitodo}}
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=== Qunatitative example numbers ===
 
{{wikitodo}}
 
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== Accidental heatpump ==
 
== Accidental heatpump ==
  
=== Physics ===
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See page: [[Accidental heatpump]]
  
– Shifting a thick stiff plunger-shaft in a tight thin walled sleeve <br>
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=== Symbolic math ===
the sleeves walls can't wobble around so much anymore and thus <br>
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{{wikitodo}}
thermal motion degrees of freedom get "squeezed out" and things get hot. <br>
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Reversible computing analogy: This basically equates to setting a random bit to a known state (pushed outwards). <br>
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Push spacial entropy in the system out into thermal entropy out of the system. <br>
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– Pulling a thick stiff plunger-shaft out of the sleeve <br>
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thermal motion degrees of freedom get opened up again and <br>
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suck in heat from the environment, making things get cold. <br>
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Reversible computing analogy: This basically equates to deleting a known bit (pushed outwards) by rando data from thermal noise. <br>
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Fill spacial order with entropy into the system tapping it from thermal entropy of the environment. <br>
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If the thermal energy gradient is not immediately recuperated  <br>
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(nigh impossible due to: high at the nanoscale surface to volume ratio & high heat conductivity of diamond) <br>
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that energy is immediately dissipated and made permanently unrecoverable.
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Possible counter-strategies: <br>
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=== Qunatitative example numbers ===
– stiffer sleeves <br>
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– less tight fitting sleeves <br>
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=== Maths & Examples ===
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{{wikitodo}}
 
{{wikitodo}}
  
 
=== Scaling & limits of model ===
 
=== Scaling & limits of model ===
{{wikitodo}}
 
  
 
It seems this should scale linearly over a very very wide range of speeds. Including proposed ~1mm/s scale.<br>
 
It seems this should scale linearly over a very very wide range of speeds. Including proposed ~1mm/s scale.<br>
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* [[Friction in gem-gum technology]]
 
* [[Friction in gem-gum technology]]
 
* [[Friction]]
 
* [[Friction]]
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* [[Accidental heatpump]]
 
* <small>[[Accidentally suggestive]]</small>
 
* <small>[[Accidentally suggestive]]</small>

Latest revision as of 21:24, 4 July 2024

This article is a stub. It needs to be expanded.

One may also want to call this more fancily "reciprocative energy dissipation".
This applies to any reciprocative motion both linear reciprocative and rotative reciprocative.
Essence is back and forth motion that requires accelerations and jerk.

Note that:
– in factory style there is much less reciprocative motion than in more general purpose kind of robotics akin to 3D printers.
– at least one more highly relevant thing …

(wiki-TODO: Add explanation of physics, math, and reasonable example values (last one hardest).)
(wiki-TODO: How does it scale and how far is that scaling reliable. Within or out of quantized regime and such.)

Mechanisms

Akhiezer damping

Physics

(wiki-TODO: {{{1}}})

Symbolic math

(wiki-TODO: {{{1}}})

Qunatitative example numbers

(wiki-TODO: {{{1}}})

Scaling & limits of model

Specifics to diamond (compared to metals or doped silicon).
It seems as if the the absence of dense electronic states in undoped diamond should reduce electron-phonon-coupling significantly. If so then by how much?
Having large amplitudes corresponds to many phonons bosonically overlapping in a few closeby modes.
Multi phonon processes may start to matter. (wiki-TODO: {{{1}}})

Non recuperated phase shift

In some but not all cases this could be partially recuperated.

Physics

(wiki-TODO: {{{1}}})

Symbolic math

(wiki-TODO: {{{1}}})

Qunatitative example numbers

(wiki-TODO: {{{1}}})

Scaling & limits of model

(wiki-TODO: {{{1}}})

Accidental heatpump

See page: Accidental heatpump

Symbolic math

(wiki-TODO: {{{1}}})

Qunatitative example numbers

(wiki-TODO: {{{1}}})

Scaling & limits of model

It seems this should scale linearly over a very very wide range of speeds. Including proposed ~1mm/s scale.
Nontrivial things might happen near absolute zero where phonon modes freeze out.
Especially for diamond.

Related