Static Electricity Box: Difference between revisions

From Science Theatre
Jump to navigation Jump to search
imported>Stwikiadmin
No edit summary
imported>Stwikiadmin
 
(3 intermediate revisions by the same user not shown)
Line 19: Line 19:
** Small clear plastic dome with base (Such as a cookie platter tray)
** Small clear plastic dome with base (Such as a cookie platter tray)
** Small cardboard boxes, cardboard strips, or similar
** Small cardboard boxes, cardboard strips, or similar
* Piece of paper towel or cloth
* Piece of paper towel, cloth, or fur


== Safety Precautions ==
== Safety Precautions ==
Line 30: Line 30:
# Rinse out the plastic platter tray and dry. Stack the small cardboard boxes, strips, or similar until they nearly touch the lid of the tray when inside. Tape them together.
# Rinse out the plastic platter tray and dry. Stack the small cardboard boxes, strips, or similar until they nearly touch the lid of the tray when inside. Tape them together.
# Line the top cardboard box (or cover the top of the stack) with an aluminum foil sheet. Cut two additional sheets to then fold and stack on top, pressing them in and leaving the edge elevated.
# Line the top cardboard box (or cover the top of the stack) with an aluminum foil sheet. Cut two additional sheets to then fold and stack on top, pressing them in and leaving the edge elevated.
# Place the Aluminum-wrapped styrofoam balls inside the aluminum lined box. Close the lid on top, ensuring it is a snug but sturdy fit.
# Place some of the Aluminum-wrapped styrofoam balls inside the aluminum lined box. Close the lid on top, ensuring it is a snug but sturdy fit.


;Presentation:
;Presentation:
'''''In the Works''''' <!--
Style A:
Using this set up, you can perform 2 different actions:
# Rub the plastic lid with your cloth (a circular motion work best). Some of the balls inside the box should begin bouncing around and floating. It is also possible to get a couple to stick against the bottom of the lid.  
# Place the Styrofoam balls wrapped with aluminum foil inside the box, then place the blast shield on top of the box
# Put your finger tip close to touching the outside of the lid, above where the Styrofoam ball is sticking. The ball will move around!
#* If this is done, rub the blast shield with a piece of paper towel (a circular motion seems to work best). While sometimes the Styrofoam balls can be reluctant, at some point some of them should begin bouncing around and floating inside the box. If you are careful enough, it is also possible to get one or a couple to stick against the bottom of the blast shield. If this occurs, you can put your finger tip close to touching the outside of the blast shield (where the Styrofoam ball is touching on the other side). The ball should move around when this occurs.
Style B:
#* The shorter of the 2 boxes works better with this. If using the shorter box, you can also make the Styrofoam balls jump around by rubbing the tip of your finger on the outside of the blast shield.
# Rub the plastic lid with your cloth (A circular motion works best), then place the extra Styrofoam balls wrapped with aluminum foil on top. They will shift around a bit, then stick into place.
# Place the Styrofoam balls wrapped with aluminum foil on top of the blast shield, which is resting on top of the box
# Once the Styrofoam balls are in place, bring your finger tip close to one of the balls (or just barely touching it) and the ball should roll and jump around the top of the lid!
#* If this is done, prior to placing the Styrofoam balls on the surface of the blast shield, rub the top of the blast shield with a paper towel. Once the Styrofoam balls are placed on top of the blast shield, an instructor or student can bring their finger tip in very close proximity to a Styrofoam ball (or just barely touching it) and the ball should roll around the top of the blast shield. /-->


== Why This Works ==
== Why This Works ==


===Short Explanation===
'''''Static electricity''''' is when charges ('''+''' and '''-''') are separated from one another. This separation is often due to materials which are '''''insulators''''', meaning materials that are good at preventing charges from moving, rub against each other. While this happens, the charges are separated onto the surfaces, and are "stuck in place" (i.e. the charges cannot be dispersed). A major property of charges is that opposite charges attract each other, and like charges repel each other. That is, '''-''' attracts '''+''', but '''-''' repels '''-'''. However, anything that has a neutral charge will be attracted to '''''either - or +'''''.


In static electricity, charges (+ and -) are separated from one another. Due to the properties of the materials these charges are separated onto, some of these charges are not able to disperse, and are "stuck in place" (i.e. if the surface is a nonconductor). One property of charges is that opposite charges attract each other and like charges repel each other. In the case of this demonstration, rubbing cloth on the plastic (made out of polycarbonate, a nonconductor) makes parts of the blast shield - charged. The aluminum foil-wrapped Styrofoam balls are attracted to the charged surface, and will jump to it!
In this demonstration, rubbing cloth on the plastic, an insulator, makes the lid '''-''' charged. The aluminum foil-wrapped Styrofoam balls are attracted to the charged surface, and will jump to it! The styrofoam balls are neutral charge, and are attracted to the '''-''' charge on the surface. The aluminum foil is a '''''conductor''''', or a material that is good at letting charges move through it, so the - charge of the surface never reaches the styrofoam ball. Instead, the charge stays on the aluminum surrounding it!


When the balls are on the blast shield, students can see that they move if they try to poke them. This is because, when they touch the plastic, they remove the - charge on the surface. The balls will then fall back down, or they will slide around the blast shield trying to find another spot that is charged.
When you try to poke the balls, you can see that they move away. This is because, when your hand touches the plastic, it removes the '''-''' charge on the surface. With the charge gone, there is nothing attracting the balls to that spot anymore, so the balls will either fall back down, or slide around the lid to another spot that is charged.
<!--
===Full Explanation===


/-->
== Tips and Tricks ==
== Tips and Tricks ==
*Try to make the blast shield as flat across the top of the box as possible
* Be sure to discharge the surface completely after use. Otherwise, the balls can pick up a '''-''' charge, and then they will no longer be attracted to the charged spots.
*This demonstration goes well with Van de Graaff generator and other static electricity demonstrations
* This demonstration goes well with the [http://sciencetheatre.org/mediawiki-1.16.5/index.php/VanDeGraaff_Generator Van de Graaff generator] and other static electricity demonstrations.

Latest revision as of 16:21, 1 June 2018

Physics: Electricity
Grade Range: Middle School, High School
Format: Hands-on

The static electricity box is a small box covered in plastic and contains aluminum foil balls. This quirky box displays some surprising and fun properties of static electricity up close that students can play with.

Materials

  • Static electricity box:
    • Aluminum foil
    • 1 cm diameter Styrofoam balls, wrapped with aluminum foil
    • Small clear plastic dome with base (Such as a cookie platter tray)
    • Small cardboard boxes, cardboard strips, or similar
  • Piece of paper towel, cloth, or fur

Safety Precautions

  • Please see the Demonstration Safety Page for General Safety Precautions

Demonstration

Preparation
Assemble the Static Electricity Box
  1. Rinse out the plastic platter tray and dry. Stack the small cardboard boxes, strips, or similar until they nearly touch the lid of the tray when inside. Tape them together.
  2. Line the top cardboard box (or cover the top of the stack) with an aluminum foil sheet. Cut two additional sheets to then fold and stack on top, pressing them in and leaving the edge elevated.
  3. Place some of the Aluminum-wrapped styrofoam balls inside the aluminum lined box. Close the lid on top, ensuring it is a snug but sturdy fit.
Presentation

Style A:

  1. Rub the plastic lid with your cloth (a circular motion work best). Some of the balls inside the box should begin bouncing around and floating. It is also possible to get a couple to stick against the bottom of the lid.
  2. Put your finger tip close to touching the outside of the lid, above where the Styrofoam ball is sticking. The ball will move around!

Style B:

  1. Rub the plastic lid with your cloth (A circular motion works best), then place the extra Styrofoam balls wrapped with aluminum foil on top. They will shift around a bit, then stick into place.
  2. Once the Styrofoam balls are in place, bring your finger tip close to one of the balls (or just barely touching it) and the ball should roll and jump around the top of the lid!

Why This Works

Static electricity is when charges (+ and -) are separated from one another. This separation is often due to materials which are insulators, meaning materials that are good at preventing charges from moving, rub against each other. While this happens, the charges are separated onto the surfaces, and are "stuck in place" (i.e. the charges cannot be dispersed). A major property of charges is that opposite charges attract each other, and like charges repel each other. That is, - attracts +, but - repels -. However, anything that has a neutral charge will be attracted to either - or +.

In this demonstration, rubbing cloth on the plastic, an insulator, makes the lid - charged. The aluminum foil-wrapped Styrofoam balls are attracted to the charged surface, and will jump to it! The styrofoam balls are neutral charge, and are attracted to the - charge on the surface. The aluminum foil is a conductor, or a material that is good at letting charges move through it, so the - charge of the surface never reaches the styrofoam ball. Instead, the charge stays on the aluminum surrounding it!

When you try to poke the balls, you can see that they move away. This is because, when your hand touches the plastic, it removes the - charge on the surface. With the charge gone, there is nothing attracting the balls to that spot anymore, so the balls will either fall back down, or slide around the lid to another spot that is charged.

Tips and Tricks

  • Be sure to discharge the surface completely after use. Otherwise, the balls can pick up a - charge, and then they will no longer be attracted to the charged spots.
  • This demonstration goes well with the Van de Graaff generator and other static electricity demonstrations.