Monday, February 10, 2014

LUCKY CHARMS TALLY & GRAPHING - PROJECT

COMPLETE:  
  • the Lucky Charms tally count for your cereal
  • design 2 graphs using the graphing software & your tally information
    • pie chart
    • bar graph
  • MAKE sure to add to each graph:
    • title
    • legend
    • X & Y axis (bar graph only)
Screen Shot each GRAPH onto a word document; crop, & size (make sure to only size from the corners or it will distort your picture)
  • you can crop from the sides, because it is like using scissors

  • push "screen shot" button, then Ctrl + C together;
  • go to word document and push Ctrl + V together
Save your graph-word documents on your flash drive.

I added the vid cast for you to watch to clarify how to use the graphing software.





OLYMPIC SCIENCE ADVENTURER - PROJECT


OLYMPIC SCIENCE ADVENTURER


  • You will choose a topic from the site, complete the lesson, & teach/present to your class mates 
  • Choose & sign-up for one of the topics from the 

  • Click the LESSONOPOLY site; 
    • REVIEW the lesson plan; 
    • Watch the video & read the side bar information.  
  • Complete the lesson.
  • You will use appropriate presentation skills (body language, voice tone, eye contact, etc...)
DUE:  2/18



Electricity in Nature - #13

Electricity in Nature

Electricity is not only found in power lines and electronics made by man, but is also found in nature. In fact electricity is all around us. We see it in lighting storms, animals use it as a defense, even our bodies use it to send messages to our muscles. 

Lightning 

One of the most fantastic displays of electricity in nature is lightning. Lighting occurs when large amounts of electrostatic energy builds up inclouds from the energy of storms. When electrically charged regions of clouds discharge their energy, a large flash of electricity can be seen in the sky. Lighting may occur from cloud to cloud or it can occur from cloud to the ground.

Lighting strikes carry huge amounts of energy. A typical lighting strike carries an electric current of over 30,000 amps and delivers 500 megajoules of energy.

Lightning also creates a loud noise called thunder. This is because the air within lighting gets so hot, that it transforms into plasma for a short period of time. When the molecules of air turn from gas to plasma, their expansion causes a shockwave that we hear as thunder. 

Animals 

Some animals use electricity to survive in nature. Many of these animals are found in the ocean where some use electricity to detect objects around them (sort of like seeing) and others use electricity to fend off predators or even hunt for food. 

One of the most famous of the electric animals is the electric eel. The electric eel can produce large amounts of electricity, enough to even kill a human or stun a large horse. The eels typically swim into a school of fish, discharge a large amount of electricity, and then dinner is served! 

Another example of animals using electricity is electroreception. Many fish such as sharks, lampreys, and catfishes have the ability to generate electric fields and then use these fields to detect objects around them. This helps them to "see" in dark areas and to sense hidden prey. 

Human Body 

Not only can we see electricity at work in nature, we are constantly using electricity in our bodies. Every time we move a muscle, it's the result of an electrical signal being sent from our brain to our muscles telling them to move. We actually have a complex system of nerves throughout our bodies that use electric signals to control everything we do. 

Static Electricity 

Lightning isn't the only form of electrostatic energy we see in nature. Static electricity charges build up all around us. You probably have noticed static electricity when you went down a slide at the park and your hair stood up strait. The friction from the slide on your body caused a build up of charge that made your hair stand up. Sometimes you can even build up a charge on your body that will shock someone else when you touch them. This is static electricity. 

The Earth 

Deep inside the Earth huge electric currents are generated from the spin of the Earth's iron core. These electric currents in turn cause a magnetic field that extends well beyond the surface of the Earth and into outer space. 

The Earth's magnetic field is important because it protects the Earth from the solar wind of the Sun. Without the protection of magnetic field, there would likely be no life on Earth. The magnetic field also enables the use of compasses to tell the direction. 

ELECTRICITY - STATIC ELECTRICITY - #12

Static Electricity


Static electricity is the build up of an electrical charge on the surface of an object. It's called "static" because the charges remain in one area for a while rather than moving or "flowing" to another area. 

We see static electricity every day. It can even build up on us. For example, when we rub our feet on the carpet and then zap something when we touch it. That is static electricity that we have built up on the surface of our skin discharging onto another object. We also see it when our hair gets charged and sticks straight up or when our pant legs keep sticking to our legs no matter what we try and do. This is all static electricity that has built up on the surface of an object. 



Lightning is a powerful form of static electricity

What is static electricity? 
In the study of atoms we learned that atoms are made up of neutrons, protons, and electrons. The electrons are spinning around the outside. A static charge is formed when two surfaces touch each other and the electrons move from one object to another. One object will have a positive charge and the other a negative charge. Rubbing the items quickly, like when you rub a balloon fast over something or your feet on the carpet, will build up a large charge. Items with different charges (positive and negative) will attract, while items with similar charges (positive and positive) will push away from each other. Sort of like a magnet. 

Remember when you've gone down a slide and all your hair stands up straight. This is because the friction of sliding has caused a positive charge to be built up on each hair. Since each hair has the same charge, they all try to push away from each other and end up standing up straight. 

Likewise, when your skin is charged with static electricity and you touch something metal, like a door handle, the metal is very conductive and will quickly discharge the static electricity, creating a zap or small spark. 

Does it have any real uses? 
Static electricity has several uses, also called applications, in the real world. One main use is in printers and photocopiers where static electric charges attract the ink, or toner, to the paper. Other uses include paint sprayers, air filters, and dust removal. 

It can damage electronics 
Static electricity can also cause damage. Some electronic chips, like the kind that are in computers, are very sensitive to static electricity. There are special bags to store these in. Also, people that work with these kind of electronics wear special straps that keep them "grounded" so they won't build up charge and ruin the electronic components. 

Fun facts about static electricity

  • A spark of static electricity can measure thousands of volts, but has very little current and lasts for a short period of time. This means it has little power or energy.
  • Lighting is a powerful and dangerous example of static electricity.
  • As dangerous as lighting is, around 70% of people struck by lightning survive.
  • Temperatures in a lightning bolt can hit 50,000 degrees F.
  • Static electricity will be worse on a dry non-humid day.

Thursday, February 6, 2014

ELECTRICITY: ELECTRICAL FIELDS #4

Field Basics

Electrons move towards a positive charge and away from a negative charge. Scientists understood why forces acted the way they did when objects touched. The idea that confused them was forces that acted at a distance without touching. 
Think of examples such as gravitational force, electric force, and magnetic force. To help them explain what was happening, they used the idea of "field". They imagined that there was an area around the object, and anything that entered would feel a force. We say, for example, that the Moon has a gravitational field around it, and if you get close to the Moon, it will pull you down to its surface.

Electric Fields
An electric field describes the funky area near any electrically-charged object. Scientists don’t use the word "funky", but it works. It could also be called an electrostatic field. Any other charge that enters that area will feel a force, and the original object will also feel that force (Newton's Third Law). It's kind of like a spider sitting at the center of a web.

Magentic field lines of repulsion. A normal field is a vector, and is represented by arrows. The Earth's (or any planet's) gravitational field would be drawn as arrows pointing toward the ground. A field vector shows the direction of the effect on an object entering the field. Gravity acts downward.

For an electric field, things are a little more complicated, since there are two kinds of charges, and some combinations attract while others repel. In order to be in agreement with each other, physicists decided that they would always use positive charges to determine the direction of the effect of a field. So, if the central charge was positive, and you put another positive charge near it, that second charge would be repelled outward. So the field vectors for a central positive charge point outward. If the central charge is negative, a positive charge placed nearby would be attracted toward the center charge, so the field vectors for a central negative charge point inward.

Electric fields increase in strength as charged particles move closer to each other. Since fields are directly related to the forces they exert, their strength decreases with distance, and increases with the size of the charge producing the field. When you put charges near one another, their fields interact and change shape. This results in changes in the PE of the objects, and generates forces of repulsion or attraction.

Electric fields can also be created by magnetic fields. Magnetism and electricity are always connected. 


ELECTRICITY - POWERPOINT - GO to - 

  • ELECTRICAL CHARGES & CURRENTS, CHAPTER 12




ELECTRICITY: CONDUCTORS & CONDUCTIVITY #3

Conductors and Conductivity

The smoother top path shows a good conductor. The bottom shows a poor conductor. There are many materials that allow charges to move easily. They are called conductors. Conductors have the quality of conductivity. I guess that's not a lot of help for you. The reality is that you just need to understand the difference between those two words. The conductor is the object that allows charge to flow. Conductivity is a quality related to the conductor. A material that is a good conductor gives very little resistance to the flow of charge. This flow of charge is called an electric current. A good conductor has high conductivity.


An insulating material, such as plastic, covers a bundle of conducting materials, such as copper, in a wire.
Different Types of ELECTRICAL Conductors
Electrical conductors are materials that allow electricity to flow through them easily. Most metals are good conductors.
Electrical insulators are materials that do not allow electricity to flow through them. Most plastic and ceramic materials are insulators.
In the diagram of an electrical insulator, the insulating material (plastic) surrounds the conducting material (copper wires).
(1) Metals are traditional conducting materials. You see them around the house all of the time. It's a metal wire or one of the metal prongs in an electric plug. There are a lot of free electrons in metallic conductors. Free electrons are electrons that are not being held in atoms, and so, can move easily. 

  • Some of the best metallic conductors are copper (Cu), silver (Ag), and gold (Au). 

Charges easily move along conductive wires to reach positive regions. (2) There are some conductors that are not metals. Carbon is the best example.

(3) You've probably seen ionic conductors in a lab or in an experiment. When you think about ionic conductors, think about solutions and molten conductors. 


  • A solution such as saltwater has a lot of free ions floating around. Those ions (charged atoms) can flow easily, and ionic solutions are very good conductors. 
    • One of the reasons you need to get out of the water if there is lightning around, is that water normally contains dissolved ions, and if lightning hits the liquid (solution), it might conduct electricity long distances and electrocute you. 

(4) Semi-conductors are the conductors that make your computer possible. If it weren't for semi-conductors, most electronic doodads couldn't be made. Semiconductors have free electrons, but not as many as conductors, and they are not as easy to get moving. Semiconductors have low conductivities. 


  • SEMI CONDUCTORS have both conducting and insulating properties and they are used to make electronic components. The way in which a semi-conducting material is connected to a power supply determines whether it will conduct an electrical current or prevent it from flowing.
  • Examples are elements like silicon (Si) and germanium (Ge). 

Conductors and Insulators

Conductors are made of materials that electricity can flow through easily.
These materials are made up of atoms whose electrons can move away freely.
Some examples of conductors are:
  • Copper
  • Aluminum
  • Platinum
  • Gold
  • Silver
  • Water
  • People and Animals
  • Trees

Insulators are materials opposite of conductors. The atoms are not easily freed and are stable, preventing or blocking the flow of electricity.
Some examples of insulators are:
  • Glass
  • Porcelain
  • Plastic
  • Rubber
Electricity will always take the shortest path to the ground. Your body is 60% water and that makes you a good conductor of electricity. If a power line has fallen on a tree and you touch the tree you become the path or conductor to the ground and could get electrocuted.
The rubber or plastic on an electrical cord provides an insulator for the wires. By covering the wires, the electricity cannot go through the rubber and is forced to follow the path on the aluminum or copper wires.



Let Them Move

Positive and negative charges are attracted to each other while two similar charges are repulsed. So what happens if you have separated charges and you connect them with conducting material? Providing a path for charges to move, and making that path out of materials that allow easy movement, results in a flow of charge (electrons) called a current. The electrons will flow from a location that is negative to one that is positive. This can happen quickly and then stop, as with a spark. Or, in the case of a battery connected to a conducting loop (called a circuit. ), it continues to happen until the battery runs out of energy. 

  •  If the current goes in one direction all the time, it is called DC, or direct current. 
  •  In your home, however, the same charges move back and forth, so this is called AC, or alternating current. 

Force of Charges

Electric force increases as the distance between two charges decreases. Scientists discovered that opposite charges attract, and like charges repel. So positive-positive and negative-negative would repel, while positive-negative would attract. Physicists use the term electric force to describe these attractions and repulsions. The electric forces are much stronger when negative charges are closer to positive charges. The further apart two charges are, the weaker the electric force. Also, the greater the charges, the greater the electric force will be.

ELECTRICITY: SEPARATING CHARGES #2

Separating Charges

The belt of a van de graff generator deposits positive charges. Atoms start out with the same number of negative charges (electrons), and positive charges (protons). Under certain conditions, electrons can be removed from, or added to atoms. Removing electrons would leave the atom with more positives than negatives, and we call this a positive ion (An ion is a charged atom). Conversely, adding electrons to an atom would result in a negative ion. If you do this enough times, you can make an object positive or negative.

Friction is one of the ways to separate charge. Have you ever had a science lab where you rub fur on glass rods, or try to make static cling? When you do that rubbing, you are actually rubbing electrons off one object and onto another. When you scuff your feet on the rug, especially in the winter, you can often charge yourself. Clothes tumbling in the dryer often cling together and crackle when you separate them. Lightning is produced, in part, because of air blowing over land. You can also use batteries to separate charge.


Static Charges

Charges build but do not move in a world of static electricity. Electrons can move more easily in some objects than in others. If you put a charge on things like glass, plastic, rubber, and wood, that charge stays where you put it. We say the charges are static, and we call this static electricity

Materials like glass and plastic are called insulators, or nonconductors. Static electricity can happen on a dry winter day when you walk across a carpet. You are actually building up loads of electrons on your skin. Charges don't "want" to stay separated, however. There is always a tendency for charges to return to their original locations, and all that is needed is a pathway for charges (electrons) to use. 

  • When you touch a metal doorknob, for example, electrons can jump and give you a shock. Static charges build up on clouds until they can hold no more. At that point, lightning can occur. The study of electricity where the charges are not moving is called electrostatics.

Beware
 of Conductors!

If you scuff your feet on your living room rug, you pick up extra electrons and have a negative charge. Electrons move moreeasily through certain materials like metal, which scientists call conductors. When you touch a doorknob (or something else made of metal), which has a positive charge with few electrons,the extra electrons want to jump from you to t  the knob.
Did You Know?

ELECTRICITY - MOVING ELECTRONS & CHARGES #1 ....

Moving Electrons and Charges

In electricity, negative charges build and then move to the positive region. Electricity is related to charges, and both electrons and protons carry a charge. The amount of the charge is the same for each particle, but opposite in sign. 
Electrons carry a negative charge while protons carry positive charge. The objects around us contain billions and billions of atoms, and each atom contains many protons and electrons. 

The protons are located in the center of the atom, concentrated in a small area called the nucleus

The electrons are in motion outside of the nucleus in orbitals. 

The protons are basically trapped inside the nucleus and can't escape the nucleus. As a result, it is moving electrons that are primarily responsible for electricity.

There aren't a lot of places that you can see electricity. The most commonly- observed form of electricity is probably lightning


  •  Lightning is a big spark that occurs when lots of electrons move from one place to another very quickly. 
  • There are three basic forms of lightning:
      •  cloud to cloud
      • cloud to surface
      • surface to cloud. 
    • All are created when there is an unequal distribution of electrons. You can also see smaller sparks of electricity in science labs that contain Van de Graff generators, and can see even smaller arcs of electrons at home when you scuff your feet and then touch something like a metal doorknob (static electricity). 
Electricity Around You
It's easy to see the uses of electricity around you. In fact, there are charges around your computer, your house, and your city. 

  • Electricity is constantly flowing through all of the wires in your town. There is also electricity in your flash light. That kind of electricity created by batteries is called direct current. The other major type is found in the outlets of your house. That household form of electricity is called alternating current.


Tuesday, February 4, 2014

FIELD DAY


HELP!

WOULD LIKE YOUR THOUGHTS 
ON FIELD DAY!

ELECTRICITY - HANDOUT

ELECTRICITY BASICS

  • Read carefully
  • take notes as needed
  • you can increase font on the page by click hand glass lower right on your screen