Saturday 31 December 2022

A Level Physics Topic by Topic | Hooke's law of Elasticity and Inelastic Materials


Hooke's law is an important concept in many fields, including engineering, where it is used to design and analyze systems such as suspension systems in vehicles and the springs in mechanical clocks. It is also used in studying the behaviour of materials under stress and in designing structures and machines that rely on the elastic properties of materials.or compress a spring is directly proportional to the displacement or deformation of the spring. In other words, the greater the force applied to a spring, the greater the displacement or deformation of the spring will be.

When two or more springs are connected in series, the total force required to stretch or compress all of the springs is equal to the sum of the forces required to stretch or compress each spring individually. The total displacement or deformation of the series of springs is equal to the displacement or deformation of the first spring plus the displacement or deformation of the second spring, and so on.

When two or more springs are connected in parallel, the total force required to stretch or compress all of the springs is equal to the force required to stretch or compress a single spring with the same spring constant as the parallel combination. The total displacement or deformation of the parallel springs is equal to the displacement or deformation of any one of the springs.

Hooke's law is an important concept in many fields, including engineering, where it is used to design and analyze systems such as suspension systems in vehicles and the springs in mechanical clocks. It is also used in studying the behaviour of materials under stress and in designing structures and machines that rely on the elastic properties of materials.

Friday 30 December 2022

Better Titration


 The @Pascoscientific drop counter. It does titrations really fast and accurately so this is ideal for revision ( some mock exams coming up) and produces great data for lots of calculation practice 

Thursday 29 December 2022

First Analog Computing Lesson


Analog computers can be implemented using various hardware components, including resistors, capacitors, inductors, and operational amplifiers. These components can be used to build circuits that perform mathematical operations, such as addition, subtraction, multiplication, and division. The Lesson Plan can be found at Analog computing

Wednesday 28 December 2022

Proof by contradiction


 Proof by contradiction, also known as indirect proof or reductio ad absurdum, is a method of proof in which a claim is shown to be true by showing that the opposite of the claim leads to a contradiction or absurdity.

Saturday 24 December 2022

Experimenting with spintronics

 

Time to play and experiment with spintonics from @UpperStoryCo and write some lesson plans for it. Discovering it is not only good for electronics but its quite good for mechanics and problem solving as well.

Friday 23 December 2022

Resistivity

The resistance of a wire is directly proportional to its length. This means that as the length of a wire increases, its resistance also increases. This relationship can be described by the equation:

R = ρL / A

where R is the resistance of the wire, ρ is the resistivity of the material, L is the length of the wire, and A is the cross-sectional area of the wire.

The reason for this relationship is that as the length of a wire increases, the number of collisions between the electrons and the atoms of the wire also increases. These collisions cause resistance and make it more difficult for the electrons to flow through the wire. As a result, the resistance of the wire increases as its length increases.

It's important to note that this relationship holds true only for a given material and cross-sectional area. If the material or cross-sectional area of the wire is changed, the relationship between length and resistance will also change.

Resistivity is a measure of the resistance of a material to the flow of electric current. It is typically denoted by the symbol ρ and is expressed in units of ohm-meters (Ω*m).

In general, materials that are good conductors of electricity have low resistivity, while materials that are poor conductors have high resistivity. For example, metals such as copper and aluminium have low resistivity and are commonly used in electrical wiring because they allow an electric current to flow easily. On the other hand, materials such as rubber and glass have high resistivity and are often used as insulation because they resist the flow of electric current.

The resistivity of a material is related to its electrical conductivity, which measures how easily a material allows electric current to flow. The relationship between resistivity and conductivity is given by the equation:

conductivity = 1 / resistivity

This means that materials with high resistivity have low conductivity and vice versa.

 


Wednesday 21 December 2022

Ball drop




To record the motion of a ping pong ball being dropped against a black background in a totally dark room using a camera and flash gun set at 15 Hz (15 flashes per second), you will need to follow these steps:

  1. Set up your camera on a tripod or other stable surface, making sure it is pointed at the area where you will be dropping the ping pong ball.

  2. Set the camera to manual mode, and adjust the exposure settings to ensure that the image is well-exposed when the flash fires. You may need to experiment with different settings to get the right balance.

  3. Set up the flash gun on a separate stand or tripod, making sure it is pointed at the area where you will be dropping the ping pong ball.

  4. Set the flash gun to strobe mode, and adjust the flash frequency to 15 Hz (15 flashes per second).

  5. Turn off any other light sources in the room, so that the room is completely dark.

  6. Drop the ping pong ball from a height above the camera and flash, making sure that it falls within the field of view of the camera.

  7. Start the camera's continuous shooting mode, and let it run for a few seconds as the ping pong ball falls.

  8. Review the images on the camera's display or on a computer to see the motion of the ping pong ball as it falls.

By using a flash set to strobe at a high frequency and shooting in a completely dark room, you will be able to capture the motion of the ping pong ball as it falls, showing the effects of gravity on its motion.

A level computing 12 Mark questions

Practice planning the 12-mark A-level computing questions. It is not just about getting the facts down but also about organizing them effect...