Cost of running light bulb for 8 hours at 22¢ kw/hr
Wednesday, February 26, 2014
Thursday, February 13, 2014
IPad Batteries
http://electronics.howstuffworks.com/everyday-tech/lithium-ion-battery1.htm
What was included in the article?
This article talked about how the lithium ion battery works. In explaining the parts of tha battery, it said there was a voltage converter and regulator circuit, which relates to class. This is used to maintain safe levels of voltage. It also explained that there is a postive electrode, a negative electrode, and a separator. When the battery charges, ions of lithium move through the separator from the positive electrode to the negative,and attach to the carbon. These lithium ions move at a very high voltage.
What did I learn in class that helped me to understand?
Our discussions on voltage helped a lot in understanding this article. It was helpful to know that energy is stored when a charge is placed at a voltage. A voltage being a buildup of charge. It was also helpful to know that in a normal battery electrons are given electric potential energy from the voltage of the battery. This energy is then converted into other forms. The iPad battery also uses a similar process as the iPad will also take the electric potential energy of the electrons and convert it.
Monday, February 10, 2014
Charge Transfer and Interaction
Most everything starts off neutral. When I rub the balloon on my hair, my hair sends electrons to the balloon. The balloon gains electrons and becomes negative while my hair loses electrons and becomes positively charged.
How does the balloon attract neutral water?
The hydrogen atoms are positive while the oxygen atoms are negative in a water molecule. The water molecules realign themselves to put the positive towards the negatively charged ballon. The molecules are now polarized, or separated. The stream of water alters it path closer to the balloon as it is attracted to it due to opposite charges.
Wednesday, January 29, 2014
Projectile Motion lab
In order to demonstrate rpoject motion, we threw a basketball in the air. We videotaped this motion using video physics, and we plotted points along the flight path of the basketball. We were then able to creat graphs with which we examined the projectile motion of the basketball.
Graph of x velocity
Mh linear fit equation was y= -1.740 x+ 3.424. Since the slope is relatively close to 0, it is a horizontal line. Since the slope is 0, the acceleration is 0 in the x direction. The object is moving to the left because the velocity is negative. There is no horizontal force, so it is traveling at a constant speed horizontally. The equation is Vx(t)= Vxi.
Graph of y velocity:
My linear fit equations was y= -11.336x + 5.245. When the velocity is postive, it is slowing down and moving upward. At Vy= 0, it turns around, and speeds up moving downward due to the negative velocity. The velocity of y is constantly changing with time. The slope is the acceleration due to velocity.
The equation is Vy(t)= -10m/s2t + Vyi. These graphs always have a slope of -10m/s2 and are never curved.
Graph of x:
My linear fit equation was y= 2.746x + .089. The slope of x vs t is Vx. The object is moving in the t direction and rightward. The equation is x(t)= Vxt+ Xi. These graphs are never curved because velocity is constant.
Monday, January 20, 2014
Forces in Two Dimensions
- How do we analyze forces in 2-Dimensions? We can analyze forces in two dimensions by analyzing each dimension separately. We use the x or horizontal dimension and the y or vertical dimension. In order to analyze the dimensions separately, we can use trigonometry. We use fx= F cos theta and fy= f sin theta. You get the net force for each dimension when you add the vertical and hortizontal components separately.
- How do forces cause objects to move in a circle? Centripetal force is any force that causes and object to move in a circular motion. The centripetal force is a center-pointing net force, which causes the object to move in a circle. The object can move at constant speed, but it is constantly changing direction.
- What does it mean to be in orbit? How do satellites orbit planets? How do planets orbit the sun? To be in orbit means that one object is on a continuous elliptical path around another object in space. Satellites orbit planets because an object will stay in motion unless and unbalance force acts on it. The force of gravity pulls the satellite towards the earth. The satellite is actually falling around the earth because as the earth curves, the satellite curves. It must be in orbital velocity. Planets orbit the sun because of the centripetal force of gravity that comes from the sun. There is no other force in the solar system to keep them from orbiting. The earth orbits at a constant speed, but it is accelerating because the direction of it's velocity is constantly changing.
Thursday, December 12, 2013
King of the Hill
After we thought our first car was done and we tested it out, we realized we were going to have to do a lot more experimenting in order to get it to work. Our first car didn't move at all, so we decided to change a lot of things. This experiment taught us that the body of our car was probably too heavy and that was part of why it wasn't moving. We realized that our wheels needed more mobility for the car to be successful. We added straws over our wooden skewers to let the wheels move around something. We also cut down the body of our car, a cardboard box, to make it lighter. The body of the car then became a flat piece of cardboard.
Our finished car:
Standard 2: Quantitative Analysis
We used the forced probe and the theory of gravity in order to determine the mass of our car. Our results from the force probe are shown in the picture below. We used the force to discover the mass by putting it into Fg=mg. From this we got that the mass of our car was .0028 kg which we converted into 2.8 grams.
We then used video physics and graphical analysis to find the acceleration of our car on a flat surface. Our graph looked like this:
We determined our acceleration to be 7.188 m/s squared as that was the slope of our line. We could use the slope to find acceleration because it measured the change in velocity over the change in time, which is acceleration. From there, we calculated the net force on our car using Fnet= mass times acceleration. Our equation was Fnet= (2.8g) (7.188m/s2), so we found our net force to be .0201 Newtons.
Standard 3: Qualitative Analysis
Conservation of energy says that energy can't be created or destroyed, and it only changes for,. Tjis explains the movement of our car from the bottom of the hill to the top because our car has elastic potential energy or Us from the balloon at the bottom. As the air is released from the balloon, the energy is changed into kinetic energy, and the car makes it to the top of the hill. Once the car makes it to the top of the hill, some of the energy changes into gravitational potential energy or Ug as the car is at a height, yet it also still has some kinetic energy as it keeps moving. The car only has kinetic energy as it goes down the hill, and once it stops moving it changes back into potential energy. The energy of our car was never destroyed as it only changed forms.
Conservation of momentum says that the momentum before the collison is equal to the momentum after the collison because the total momentum is constant. The combined momentum of our car and our oppoenent's car was the same after the collison as before it. The momentum stayed constant. In other words, the momentum gained by one car was equal to the momentum lost by the other car, which caused the total momentum of both objects to stay constant.
Thursday, November 21, 2013
Newton's Laws
Object: Battery buggy
Constant motion: Newton's first law states that an object at rest will stay at rest, an object in motion will stay in motion with the same speed and direction unless an unbalanced force acts upon the object. When the battery buggy was off and at rest, it stayed at rest unless it was pushed by someone. When the battery buggy was on, it stayed moving in the same direction and same speed unless we stopped it or added extra force by pushing it.
Change in motion: Newton's second law of motion says that the acceleration of an object as produced by a net force is directly proportional to the magnitude of the net force, in the same direction as the net force, and inversely proportional to the mass of the object. This is shown in the equation F=ma. When the battery buggy was on and moving at a constant speed, the net force was changed when I stopped the car. By stopping the car with my hand, I added an unbalanced force on the buggy. I changed the acceleration and therefore changed the net force.
Action-reaction force pair: Newton's third law says that for every action pair there is an equal and opposite reaction pair. The reaction pair is the same in magnitude and type yet opposite in direction. The table and the battery buggy were an action-reaction pair. The normal force of the battery buggy pushed down on the table and the normal force of the table pushed up on the battery buggy. The normal force on these objects was the same magnitude but a different direction since they are action-reaction pairs.
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