Objects to test: nickel, wire, chalk, wood, coin, copper, cotton, rubber duck, umbrella, anything you want!
Experiment
Setup the circuit from the last experiment. Connect your 9V battery to wires so that an LED bulb lights up.
Open the circuit so there is a gap.
If you only want to use play dough and copper wire add a third playdough piece. Connect the wire from the battery to this new piece. Now you will have a gap between the wire connecting the battery and the two playdough pieces connecting the LED light.
If you use alligator clips instead, one wire will connect a battery terminal to one LED terminal. Another wire will connect to the other battery terminal and nothing else. The third wire will connect to the other LED terminal and nothing else. You will clip these last two wires to the new objects.
Test each object by placing it in the gap you created in Step 2.
If the light bulb lights up, then your circuit is full of conductors.
If the lightbulb does not light up, then something in your circuit is stopping the flow of electrons. These materials are called insulators because they protect us from electricity.
Record what you see as “Observations”. Use your observation to decide whether the object is a “Conductor” or “Insulator”.
Repeat Step 3 with all your materials while taking good notes of what you observe.
Step by Step Demonstration With Explained Vocabulary: Start
with an LED light. When you touch the plastic part of the LED light to the
playdough nothing will happen. But, if you touch the legs of the LED light
to the playdough, the rest of the LED lights will shine. Why? The legs of the
LED lights are made out of metal. Metal is a good CONDUCTOR of electricity.
Conductors are materials that allow the flow of electrons freely. A good
conductor transfers electrons well. The reason why the plastic part of the LED
light did not cause the others lights to shine, because plastic is an
INSULATOR. Insulators are materials that electrons do not flow freely, but
instead, are fixed in one place. A good insulator does not transfer electrons
well.
You will connect the battery to your copper wire. First, make a small loop around one terminal of your battery with the copper wire.
Put a piece of play dough on the other end of the copper wire.
Wrap the other copper wire around the other terminal.
Put another piece of play dough at the end of the second copper wire.
Create any play dough shapes you want, but make sure there is a gap between the pieces.
Complete the circuit with LED lights:
Put one end of the LED light into one piece of play dough, and put the other LED wire into the other piece of play dough.
The electricity will have to flow through the LED light in order to complete the connection.
Play dough acts as your resistor so you may have to push your LED light further into the play dough so the right amount of electricity passes through your light. (You may also have to pull the LED wires further out of the play dough if it only lights dimly.)
You can control the amount of electricity going into the light by moving the LED around in the play dough.
If your circuit still does not light, check the connection between the battery and the copper wire. Your LED lights will be bright if you give electricity a path to travel.
Shocking Fact: Why is play dough a good conductor of electricity? The amount of salt in the dough allows electrons to move freely within the dough! Salt is an ion that allows the flow of electrical charge.
Important note about resistance:The LED lights and playdough provide resistance in our circuit,
therefore we do not need to buy a resistor separately. A resistor job is to
limit the flow of electrons in a circuit, so the light bulb won’t become
overpowered or burn out quickly. Also, the L.E.D. lights have a certain voltage
of 3.2 volts, the battery is 9 volts, therefore, they have a pretty good amount
of voltage difference. A resistor makes sure that the voltage difference has a
very small impact on the current. Both LEDs and playdough have a built in
resistance that allows the current to flow, despite the voltage
difference.
After you conduct the experiment, watch my experiment to
learn important vocabulary. After you watch my video, you can answer these
questions:
If you want to look at the questions now, you can click here.
Our eyes can see many of these waves,
but not all! For example, the shortest waves that we can see are purple light.
The purple color with the shortest wave is violet. Waves that are a little bit
shorter create “ultra-violet” waves. These waves are too close together for our
eyes to see. The Sun creates radiant energy, which includes ultra-violet waves,
and many other invisible waves. Have you ever been sunburned? You can blame the
ultra-violet light waves!
Waves shorter than ultra-violet waves
can fit into small places. That is why they are used for X-rays. They are also
created by nuclear power plants. Nuclear power plants use reactions between the
smallest particles of matter to create a HUGE amount of energy. Because these
particles are so small, their electromagnetic waves are even smaller than
X-rays.
Heat creates infrared waves! This picture shows how cameras that read infrared waves show information about where heat comes from. The higher the infrared reading, the more heat generated. You can see that this dog’s mouth and eyes release the most heat.
Red is the
visible light wave with the longest waves. Waves that are a little bit longer
are called infrared waves. Your remote control uses infrared waves to
communicate with your TV. Scientists found that heat sources send out infrared
waves, too. Guess what? You are a heat source, and you send out infrared waves!
By measuring infrared waves, we can know how hot something is.
Waves
longer than infrared waves are useful for running cell phones, radios, and
satellites.
Waves shorter than ultra-violet waves are useful for investigating small things. Each wavelength has its own special uses!
But, how fast are these waves? You know that the speed of light is super fast. It’s actually 670,616,629 miles per hour! All electromagnetic waves travel at the same speed. Remember, light is an electromagnetic wave. All electromagnetic waves travel at the speed of light! So, a radio tower and an X-ray machine create waves that travel at 670,616,629 miles per hour!
If you want to look at the questions now, you can click here.
This reading is about the relationship
between electromagnetic waves, light and color.
Shocking Fact: Your eye can see around seven million different colors.
Electromagnetic waves create one of the most important forms of energy for a human’s survival, light! You might be wondering, what does light have to do with electricity? Or even color? Read on to learn more about light. Electromagnetic waves create one of the most important forms of energy for human survival, light! Light is actually an electromagnetic wave. This wave is made out of a photon. A tiny particle that moves through space. This means that light is a form of energy. If you have ever felt the sunlight on a summer day, you already know that energy from light can make heat!
A Burning Flame: Light is made of moving electric and magnetic fields. Light also moves in waves. Therefore, light is an electromagnetic wave.
So, now that we have a basic understanding of how
electricity is related to light…Have you ever thought about how your favorite
colors are created? What makes a color blue? Or yellow? When we look at an
object, we are really seeing reflected light. When we see a grumpy cat, the
photons of light are reflected off the grumpy cat and into our eyes. When waves
of light hit an object, some waves are absorbed by the object and some are
reflected.
The reflected waves are what you see. Different wavelengths of reflected light create different colors! For example, when you see your favorite red shirt, the shirt is absorbing all the colors of light except for the color red. The frequency of light that we see as red is being reflected, and we see that shirt as red.
Beauty in the Sky: A rainbow’s colors are always ordered in the same way: Red, Orange, Yellow, Green, Blue, Indigo, and Violet! You can remember this by the letters: ROYGBIV (you can say it like a name, Roy G. Biv).
The only colors that are different are white and black. White is a combination of all colors, so when we see white, the object is reflecting all the colors of light the same. Black is the opposite. When we see a black object that means almost all the colors of light are being absorbed. When you look at a black poster, the poster is absorbing all types of light. And, when you wear white shorts, they are reflecting all the light waves (but still get grass stains!).
If you want to look at the questions now, you can click here.
In the 1800s scientist began to better understand how
electricity and magnetism were connected. At this time, travelers used a compass
which pointed to the north pole. Scientists began to see that their electrical
circuits would change where a compass pointed. A surprising discovery! This observation was important but it did not
show the theory that connected
electricity and magnetism.
Electricity flowing through a wire creates magnetic fields.
These fields can attract other objects. As electricity flowed, then the wire
would become magnetic. These magnetic fields may be hard to imagine, but if you
let metal settle over time you can see the fields. The experiment described
below shows the fields created by a rare earth magnet.
Now, scientist talk about electricity and magnetism
together, so they study “electromagnetism.” You have been studying
electromagnetism this whole time!
Electromagnetism is the big idea behind observations about
electric currents and magnetic forces. A changing electric field creates
magnetism. And, changing magnetic fields will create an electric field. These
fields move creating waves of electromagnetism. It’s impossible to separate
electricity from magnetism!
Waves
of energy have very different sizes!
Electromagnetic waves are different than ocean waves or
sound waves. Waves that you can see and hear need to move water or air to
travel. These waves need to be in something. Electromagnetic waves can be
anywhere, even space (which is big and empty)! These waves have a photon. There
is no matter in a photon, just energy. These little packets of energy move in
waves across the universe, and even across your eyeball right now!
These waves can be as small as 1 millionth of a millimeter (0.0000000001 millimeters!). We use small waves like these to take X-rays. Other waves can be 100 meters long. We use long waves like these to send AM radio over long distances. Your FM radio uses waves that are between 1 and 10 meters long. The length of a wave makes it useful for different things.
These NASA pictures of the same spiral galaxy show how different cameras capture different electromagnetic waves. The cameras can capture infrared, visible light, and x-ray waves.
Radios are a good example of how electricity and magnetism are examples of electromagnetic waves. The radio waves are electromagnetic waves. These waves are created by electricity flowing into a transmitter antenna which makes electrons vibrate up and down it, producing radio waves. Then, the radio waves move electrons in your radio’s antenna. (Yes, your car has a radio antenna, even if you can’t see it!). Your radio uses these moving electrons to understand the sounds sent by the radio tower. This is how your radio creates music!
If you want to look at the questions now, you can click here.
Tesla’s makes an electric car called the Model S. This car
works because of its incredible battery. Tesla’s battery pack is made of thousands of little batteries. Each little
battery is filled with lithium ions. So, the designers say the battery pack is
full of thousands of lithium ion cells. Lithium ion cells are also used to
power your laptop for hours and hours. These types of batteries are extremely
powerful because the chemicals inside can store a lot of electricity.
Breaking The Record: A Tesla Model S parked outside a house. Did you know that Tesla’s most fastest car is the Model S?
The battery’s power depends on the number of cells, so a
Tesla’s battery weighs over one thousand pounds (a laptop weighs slightly
less!). The batteries also come with a heating system, so Tesla car owners can
start their car during cold weather.
Just like a cell phone runs out of battery, a car could run
out of battery if it is not recharged. A Tesla’s battery pack is recharged by
electricity. It’s easy to recharge the battery. There are charging
stations at rest stops and malls, and it’s easy to put one in your home too! So
neat!
The electricity from the battery is used to power a small
motor, which is the size of a watermelon. This tiny, mighty engine converts
electrical energy into mechanical work!
The induction motor uses alternating currents (A.C.) of
electricity. However, we know batteries supply direct current (D.C.) power.
That means engineers need to convert D.C. into A.C.. These engineers used a
component called an inverter. The
D.C. is always flowing. So, an inverter simply changes which side of the
circuit receives the initial flow of electrons. This way the motor gets
electricity from one direction, and then the other. It alternates which direction
the power comes from so it creates A.C. power.
The A.C. induction motor uses this electricity to produce a
magnetic field, causing the rotator inside the engine to move. The rotator is
connected to gears. The rotator and the gears rotate in the same direction. The
gears are attached to the tires by an axle. The car speeds up when more
electricity is sent to the motor which causes the rotator to spin faster which
makes the tires rotate faster. So the speed of a Tesla is controlled by the
software sending electricity to the A.C. induction motor. All these parts
allow this electric car to go from stopped to 60 miles per hour in just 3.2
seconds! Count one, two, three, could you imagine going 60 miles per hour
already?
Citizen Scientists You may know that cell phone batteries hold less charge as they get older. All batteries become less effective as they are used. Tesla owners were curious. Do their Model S batteries get much worse over time? In 2017, Tesla owners across the world added data to a Google Sheet about their battery. This data is “crowdsourced”, which means lots of people added little bits of data. Crowdsourced data is not as good as scientifically discovered data, but it is useful in this case. Tesla drivers almost all reported that their battery was more than 90% effective. Even drivers that charged their car over 500 times!
So, there’s plenty of other electric cars out there, why focus on the Tesla brand? Tesla employees works hard every day to make these cars better and better looking. These cars are fast and look great. So many people want one that you have to order it and then wait for it. People are attracted to buying cars that look nice, are super fast, popular, and help out the planet, too! However, this does not mean there are no other electric car companies! Companies like: BMW, Nissan, Chevrolet, Kia are all successfully building electric cars for families like yours!
One vision, Many inventions The Tesla Company invents sustainable, electrical solutions for more than just cars! Tesla also sells solar panels and solar roofs that help people create their own energy using the Sun. Their solar roofing tiles are guaranteed for as long as your house is standing “or infinity, whichever comes first.” A guarantee means they promise it will work or they will come fix it. Most roofs are guaranteed for less than 10 years. Tesla guarantees them forever! If you want to learn more, you can go to their website:
If you want to look at the questions now, you can click here.
Who doesn’t love a summer road trip to the beach? Well,
being jam packed in a car being forced to listen to your parent’s boring music,
is a bit annoying. But, there is another reason why you should feel annoyed! Almost
all these cars you see burn large amounts of gas which creates pollution.
Pollution is chemicals and waste humans create and add to the water or air!
Most cars use fossil fuels to power the engine. Fossil fuels
have energy from dead plants and animals that were alive millions of years ago.
When people burn fossil fuels to power vehicles, they release chemicals that are
harmful to the planet. For example, when a car drives past you, you see a trail
of smoke. The fire from burning fossil fuels in the engine creates this smoke.
These chemicals from one car will not hurt you. But, there are over
1,000,000,000 cars today! That’s more than a billion!
This problem led many people to think about ways on how we can design cars to produce much less pollution. This is where electric cars come in! Over the last decade or so, electric cars have become very popular. Perhaps it is the design and the sleek interior that have people amazed. Or, the lack of pollution might be the big attraction. Either way, electric cars are incredibly fast, reliable, and “earth-friendly”. People use “earth-friendly” to describe things that produce very little or no pollution. So, what’s the story about these electric cars? Fasten your seatbelts, and we will *drive* right in with the next chapter!
If you want to look at the questions now, you can click here.
A Genius Mind: A picture of Nikola Tesla. He was an important scientist who discovered AC current, including the AC induction motor, which is used in modern-day Tesla cars.
Nikola Tesla was another outstanding physicist and scientist.
He was “ahead of his time” because he saw things that would happen later.
Did you know Tesla was one of Thomas Edison’s close
employees? In fact, many scientists argue Tesla had better ideas than Thomas
Edison. How can this be? Let’s dive deeper into Tesla’s past and his
groundbreaking inventions. In the end, you can decide for yourself, who had the
bigger impact on how we use electricity.
Nikola Tesla was born in Smiljan, Croatia in 1856. Croatia
is a small Eastern Europe country that borders the Adriatic Sea, which is part
of the massive Mediterranean Sea. Like Edison, Tesla was intelligent in school
and questioned everything. He did so well in math tests that teachers accused
him of cheating!
Tesla studied Math and Physics at the University of Prague.
He worked extremely hard. He studied from 3 am to 11 pm every day. He never
took off during the weekend or even on holidays. That’s dedication! In 1884,
Tesla immigrated from Croatia to New York. He was hired as an engineer for
Thomas Edison.
Edison vs. Tesla
Edison and his employees were extremely impressed with
Tesla’s hard work and what he learned in Croatia. One day, Edison said he would
give Tesla $50,000 if he could improve the designs for one of his electric
generators. Tesla immediately went to work. Later, Tesla showed Edison his
solution for a new DC generator. Edison didn’t think Tesla would take him
seriously and made fun of him. It was all a joke to Edison! This made Tesla
very upset and he quit working for Edison soon after.
Tesla opened his own company called the Tesla Electric
Company. He opened his own laboratory in New York, and created an alternating current motor.
“Alternating” means taking turns or switching directions. Before now, we have
been discussing direct current
because it flows in one direction. The electrons are pushed by a force called
voltage. Now, we are discussing alternating currents which switch directions.
Important note: electrons must always be moving to produce an electrical
current.
Which one is better, you might ask? Running a city on AC is cheaper than DC. And, it is easier to make devices that use AC. So, power plants create alternating currents instead of Edison’s favorite direct currents. Things that run on batteries use direct current. So, a laptop uses DC power, and charges the battery with AC power. Tesla’s motor uses alternating current in to make the motor turn A ring of magnets called the stator creates a magnetic field. The magnets are created by putting electricity through metals in a specific way. This makes the inside spin, which rotates gears that rotate the tires. Magnets created by electricity power the car! See experiment 3 for a demonstration.
If you want to look at the questions now, you can click here.
Thomas Edison’s light bulbs are the simplest types of light
bulbs. They have 3 basic parts: a glass globe, a filament, and a screw base. These
light bulbs are called incandescent light bulbs because “incandescent” means creating
light by being heated.
Powerful Light: Modern-day incandescent light bulbs can last 750-2,000 hours. That might sound like a lot, but LED light bulbs can last 40,000-50,000 hours.
The glass globe, filament, and screw base combine to create
an incandescent light bulb. The glass globe wraps all the parts of the bulb and
provides a covering so that nothing can catch fire from the heat from the
filament. A gas is put inside the glass globe that helps the filament create
light for a long time.
The filament is the small metal coil that at the center of
the bulb. The filament uses the electrical current to create light. The
filament is made to resist the flow of electricity. As it begins to heat up,
the filament creates light.
The incandescent light bulb was becoming popular, but Thomas Edison wanted to make it better and more efficient. So, Edison invented a carbon filament lamp by putting carbon on a piece of thread. This metal covered thread was called a filament. This created a light bulb that would be able to provide light for 13 hours. Eventually, Edison used threads from bamboo to create a stronger light bulb. It could illuminate up to a couple hundred hours! (Today, light bulbs can last thousands of hours!!)
The base’s most important job is to connect the electrical
current to the light bulb. The base also protects the parts of the bulb, like
the contact wires. These contact wires cannot be damaged because they allow a
constant flow of electricity to the filament of the bulb.