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Revision 1 as of 2016-06-14 23:01:58
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Deletions are marked like this. Additions are marked like this.
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||<:30%>[[PiraScheme#Optics| Table of Optics Demonstration]]||<:30%>[[OPEquipmentList| List of Optics Equipment & Supplies]]||<:30%>[[Demonstrations|Lecture Demonstrations]]|| ||<30%  style="text-align:center">[[PiraScheme#Optics|Table of Optics Demonstration]] ||<30%  style="text-align:center">[[OPEquipmentList|List of Optics Equipment & Supplies]] ||<30%  style="text-align:center">[[Demonstrations|Lecture Demonstrations]] ||
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'''Topic and Concept:'''
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'''Topic and Concept:'''
 
Geometrical Optics, [[GeometricalOptics#Rainbow| 6A46. Rainbow]]
 . Geometrical Optics, [[GeometricalOptics#Rainbow|6A46. Rainbow]]
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 * '''Cabinet:''' [[MechanicsCabinet|Mechanic (ME)]]
 * '''Bay:''' [[MechanicsCabinetBayA1|(A1)]]
 * '''Shelf:''' #1,2,3..
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attachment: mainPhoto  * '''Cabinet:''' [[OpticsCabinet|Optics (OP)]]
 * '''Bay:''' [[OpticsCabinetBayA2|(A2)]]
 * '''Shelf:''' #1

{{attachment:RainbowDust.jpg}}
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Insert succinct description of demonstration.

||<:style="width: 60%" :40%>'''Equipment'''||<:30%>'''Location'''||<:25%>'''ID Number'''||
A sample of glass (or possibly polymeric) spheres collected from University Ave. outside Chamberlin Hall following the painting of the crosswalks. Typical sphere diameter 400 microns.
||<40% style="text-align:center">'''Equipment''' ||<30% style="text-align:center">'''Location''' ||<25% style="text-align:center">'''ID Number''' ||
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||apparatus||[[MechanicsCabinetBayB1| ME, Bay B1, Shelf #2]]|| ||
||all other parts||[[MechanicsCabinetBayB1| ME, Bay B1, Shelf #2]]|| ||
||...||[[MechanicsCabinetBayA5| ME, Bay A5, Shelf #2]]|| ||
||Rainbow Dust ||[[OpticsCabinetBayA2|OP, Bay A2, Shelf #1]] || ||
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'''''Important Setup Notes:'''''
 * ''''' '''''
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'''Setup and Procedure:'''  '''Setup and Procedure:'''
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 1. List steps for setup then procedure.
 1. ...
Darken room except for single spotlight.
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'''Cautions, Warnings, or Safety Concerns:'''
 *
Place large sheet of white paper below spotlight, empty spheres on paper, and spread them out so that paper is more or less evenly covered.
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Stand so that shadow of head falls in center of paper.
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'''Discussion:''' Observe colored halo surrounding head.
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Discuss the physics behind the demonstration, explaining some of the various steps of the demonstration when appropriate. {{attachment:Halo.jpg||font-size="1em"}}
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||attachment: photo||attachment: photo||attachment: photo||attachment: photo|| '''Discussion:'''

Small spheres are excellent retroreflectors--that's why transportation engineers embed them in paint used to mark roads.

The exact size of "small" depends on the index of refraction.

This is an example of Mie scattering.

One way to motivate an interest in Mie scattering (which is an advanced topic): when sunlight illuminates falling spherical raindrops, the result is a rainbow.

However, clouds are made of more or less spherical droplets of water. Why do we not see a rainbow every time there is a cloud?

The answer turns out to be that there is a significant difference between the scattering of light by drops of about 300
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 * List any references
 * From the transportation engineer's point of view: http://www.dot.state.fl.us/construction/Engineers/MOT/Presents/PavementMarkingTraining.pdf

Table of Optics Demonstration

List of Optics Equipment & Supplies

Lecture Demonstrations

Rainbow Dust, 6A46.16

Topic and Concept:

Location:

RainbowDust.jpg

Abstract:

A sample of glass (or possibly polymeric) spheres collected from University Ave. outside Chamberlin Hall following the painting of the crosswalks. Typical sphere diameter 400 microns.

Equipment

Location

ID Number

Rainbow Dust

OP, Bay A2, Shelf #1

Setup and Procedure:

Darken room except for single spotlight.

Place large sheet of white paper below spotlight, empty spheres on paper, and spread them out so that paper is more or less evenly covered.

Stand so that shadow of head falls in center of paper.

Observe colored halo surrounding head.

Halo.jpg

Discussion:

Small spheres are excellent retroreflectors--that's why transportation engineers embed them in paint used to mark roads.

The exact size of "small" depends on the index of refraction.

This is an example of Mie scattering.

One way to motivate an interest in Mie scattering (which is an advanced topic): when sunlight illuminates falling spherical raindrops, the result is a rainbow.

However, clouds are made of more or less spherical droplets of water. Why do we not see a rainbow every time there is a cloud?

The answer turns out to be that there is a significant difference between the scattering of light by drops of about 300

Videos:

References:

Home

fw: RainbowDust (last edited 2016-06-14 23:32:53 by JamesReardon)