Difference between revisions of "Intuitive feel"

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(Bonding energies - Tensile strengths - Stiffnesses: extended section with new super headline = Everything is magnetic =)
(changed headline hierarchy & order)
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__TOC__
 
__TOC__
  
= How big is an atom? =
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= Atoms =
 +
 
 +
== How big is an atom? ==
  
 
'''False claim?''' "Atoms are unimaginably small."<br>
 
'''False claim?''' "Atoms are unimaginably small."<br>
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Here are the details: "[[Magnification theme-park]]". – Judge yourself.
 
Here are the details: "[[Magnification theme-park]]". – Judge yourself.
  
= How does it feel when you grab two atoms and rub them against each other? =
+
== How does it feel when you grab two atoms and rub them against each other? ==
  
 
Moved to: "[[The feel of atoms]]"
 
Moved to: "[[The feel of atoms]]"
  
= How do atoms work and what shape do they have ? =
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== How do atoms work and what shape do they have ? ==
  
 
Moved to: "[[The basics of atoms]]"
 
Moved to: "[[The basics of atoms]]"
  
= At which speeds do Atoms usually move? =
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== At which speeds do Atoms usually move? ==
  
 
Moved to : "[[The speed of atoms]]"
 
Moved to : "[[The speed of atoms]]"
  
= At which speeds will nanorobotics usually operate? =
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= Speeds =
  
Moved to: "[[The speed of nanorobotics]]"
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== At which speeds do Atoms usually move? ==
  
= What happens when you let go of a building block? =
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Moved to : "[[The speed of atoms]]"
  
Main article: "[[The heat-overpowers-gravity size-scale]]"
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== At which speeds will nanorobotics usually operate? ==
  
Let's consider an somewhat unusual fall experiment. A small gripper let go of a building block. Simple? See if you answer right.
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Moved to: "[[The speed of nanorobotics]]"
 
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[[File:Fall-experiment-quiz-en.svg|thumb|center|480px|A fall experiment quiz to illustrate the quite unfamiliar mechanical behavior in the nanoscale.]]
+
 
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= Scaling laws =
+
 
+
They describe what changes when one goes down the scale.
+
E.g. that magnetic motors become weak but electrostatic ones strong.
+
More details can be found at the [[scaling laws|scaling laws main page]].
+
 
+
= The feel of AP Products =
+
 
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AP products though robotic and gemstone like in the nanocosm are not necessarily cold hard and robot like to the human senses.
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[[Emulated elasticity]] can create any form imaginable with gradients from soft to hard. It isn't an easy to attain property but it is an highly desirable one and will emerge at some point.
+
  
 
= Everything is "Magnetic" =  
 
= Everything is "Magnetic" =  
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['''Todo:''' Add table - make it visualizable for covalent bonds and VdW bonds] <br>
 
['''Todo:''' Add table - make it visualizable for covalent bonds and VdW bonds] <br>
 
['''Todo:''' show surface area thats VdW ashesion is energetically equivalent to one covalent bond - related: [[Form locking]]]
 
['''Todo:''' show surface area thats VdW ashesion is energetically equivalent to one covalent bond - related: [[Form locking]]]
 +
 +
= What happens when you let go of a building block? =
 +
 +
Main article: "[[The heat-overpowers-gravity size-scale]]"
 +
 +
Let's consider an somewhat unusual fall experiment. A small gripper let go of a building block. Simple? See if you answer right.
 +
 +
[[File:Fall-experiment-quiz-en.svg|thumb|center|480px|A fall experiment quiz to illustrate the quite unfamiliar mechanical behavior in the nanoscale.]]
 +
 +
= Scaling laws =
 +
 +
They describe what changes when one goes down the scale.
 +
E.g. that magnetic motors become weak but electrostatic ones strong.
 +
More details can be found at the [[scaling laws|scaling laws main page]].
 +
 +
= The feel of AP Products =
 +
 +
AP products though robotic and gemstone like in the nanocosm are not necessarily cold hard and robot like to the human senses.
 +
[[Emulated elasticity]] can create any form imaginable with gradients from soft to hard. It isn't an easy to attain property but it is an highly desirable one and will emerge at some point.
  
 
= Further =
 
= Further =

Revision as of 18:01, 21 August 2018

This is an introduction to the character of robotic work in the nanocosm.
It should deliver some intuitive feeling of how things work down there.

Atoms

How big is an atom?

False claim? "Atoms are unimaginably small."
That's commonly assumed. And whenever some comparison is brought up one usually feels confirmed on hat assumption. Turns out that there is a "best way" to get an inuitive feel for their size that is rarely (or never) used.
Here are the details: "Magnification theme-park". – Judge yourself.

How does it feel when you grab two atoms and rub them against each other?

Moved to: "The feel of atoms"

How do atoms work and what shape do they have ?

Moved to: "The basics of atoms"

At which speeds do Atoms usually move?

Moved to : "The speed of atoms"

Speeds

At which speeds do Atoms usually move?

Moved to : "The speed of atoms"

At which speeds will nanorobotics usually operate?

Moved to: "The speed of nanorobotics"

Everything is "Magnetic"

Well, not really, but this is a real good analogy for getting an intuitive feeling for a novel force only encountered at the nanoscale where it is omnipresent. The Van der Waals force (VdW). Instead of everything is "magnetic" one could say everything is "vanderwaalic".

From a phenomenological perspective (not from the origins of course, those are very different) the VdW force is like a strange kind of magnetism that:

  • too drops off very quickly with distance / is short range (more short range even than magnetism - to verify)
  • has no polarity
  • is always attractive

The VdW force is extremely useful for putting and holding stuff together at the nanoscale (and maybe microscale). Connection method#Van der Waals locking

Bonding energies - Tensile strengths - Stiffnesses

To get a better feel it can be helpful to compare energy strength and stiffness of VdW bonds to the strength of material that is solidly covalently "welded" together. This way it becomes clear that while VdW bonds are considered weak in comparison to they are still very strong in an intuitive sense.

(TODO: Add the same info table as on VdW force page)
[Todo: Add table - make it visualizable for covalent bonds and VdW bonds]
[Todo: show surface area thats VdW ashesion is energetically equivalent to one covalent bond - related: Form locking]

What happens when you let go of a building block?

Main article: "The heat-overpowers-gravity size-scale"

Let's consider an somewhat unusual fall experiment. A small gripper let go of a building block. Simple? See if you answer right.

A fall experiment quiz to illustrate the quite unfamiliar mechanical behavior in the nanoscale.

Scaling laws

They describe what changes when one goes down the scale. E.g. that magnetic motors become weak but electrostatic ones strong. More details can be found at the scaling laws main page.

The feel of AP Products

AP products though robotic and gemstone like in the nanocosm are not necessarily cold hard and robot like to the human senses. Emulated elasticity can create any form imaginable with gradients from soft to hard. It isn't an easy to attain property but it is an highly desirable one and will emerge at some point.

Further