Prescribed practical P2: Hooke's law
A guide to carrying out a practical to investigate Hooke's law
What is the purpose of prescribed practical P2?
To investigate experimentally the extension of a spring and how it is related to the applied force, and recall that the extension of a spring is directly proportional to the force applied, provided that the limit of proportionality is not exceeded.
The main variables in a science experiment are the independent variable, the dependent variable and the control variables.
- The independent variable is what we change or control in the experiment.
- The dependent variable is what we are testing and will be measured in the experiment.
- The control variables are what we keep the same during the experiment to make sure it’s a fair test.
What are the variables?
In this experiment the:
- Independent variable is the stretching force F. This is the weight attached to the spring and is calculated using W = mg.
- Dependent variable is the extension of the spring e.
- Control variables are the material of the spring, and the cross section area of the spring. These are kept the same by not changing the spring during the experiment
Remember - these variables are controlled (or kept the same) because to make it a fair test, only 1 variable can be changed, which in this case is the stretching force (i.e. the weight attached to the spring).
What is the prediction?
- As the stretching force (i.e. the weight attached to the spring) increases, the extension of the spring will also increase.
What is the justification for the prediction?
- The greater the stretching force the greater the separation of the atoms of the spring. This will result in the spring having greater length and so greater extension
What safety guidelines should be followed?
Safety goggles must be worn throughout the experiment.
The spring is stretched and could fly off and hit someone in the eye.
The retort stand must be secured to the bench with a clamp to prevent it from falling over and hurting someone or falling on their feet.
Put a barrier in place to prevent feet being underneath the spring.
This is to ensure that if weights fall off the spring they do not fall onto someone’s feet.
What apparatus is needed for investigating Hooke's law?
A steel spring, a 100g mass hanger, 12 x 100g masses, a retort stand, a boss and clamp, a clamp, a metre rule, an s-hook, a pointer, safety goggles, a slotted base.
What are the steps involved in carrying out prescribed practical P2?
Set up apparatus as shown in the diagram. Use a retort stand to secure the metre stick and ensure that it is vertical.
Attach the mass hanger s-hook and pointer to the lower end of the spring. The pointer should just touch the metre rule.
Read the pointer value from the metre rule. Record this length in a suitable table. This is the initial length of the spring for zero mass. We can neglect the mass of the hanger.
Add a 100g slotted mass to the hanger. Record the mass in kg in the table.
Read the new position of the pointer on metre rule. This is the stretched length of the spring. Record this length in the table.
Calculate the stretching force = weight of masses: W = mg.
Calculate: extension = stretched length – original length.
Repeat the procedure by adding 100g masses in steps of 100g up to 1200g. Record the new stretched length each time by reading the position of the pointer on the metre rule. Subtract the original length from the new stretched length to calculate each extension.
What is the main cause of error when investigating Hooke's law?
The main cause of error in this experiment is reading the stretched length of the spring.
The metre rule should be close to the spring.
The metre rule scale should be read at eye level directly opposite the pointer.
Use the retort stand to ensure that the metre rule is vertical.
How to record the results from an investigation into Hooke's law
Initial length of the spring = X cm.
Mass / kg | Stretching force F / N | Stretched length / cm | Extension e / cm |
---|---|---|---|
0.1 | |||
0.2 | |||
0.3 | |||
0.4 | |||
0.5 | |||
0.6 | |||
0.7 | |||
0.8 | |||
0.9 | |||
1.0 | |||
1.1 | |||
1.2 |
Graph
Plot a graph of stretching force, F in N on the y-axis, against extension, e in cm on the x-axis.
Join the points with a line of best fit.
What conclusion is drawn from the Hook's law investigation?
We can see from the graph that as the stretching force increases the extension of the spring also increases.
This agrees with our prediction.
In fact, since the line of best fit is a straight line through the origin, up to a certain point, we can be even more precise.
We can say that the stretching force F is directly proportionalWhen one variable is zero so is the other. As one variable increases the other does at the same rate. When 𝒚 is plotted against 𝒙 this produces a straight-line graph through the origin. to the extension e up to a limit known as the limit of proportionalityThe point beyond which Hooke's law is no longer true when stretching a material. The extension is no longer proportional to the applied force..
This is known as Hooke’s law and must be memorised for the examination.
Equation
Stretching force F = spring constant k x extension e
F = ke
The gradient of the graph = \(\frac {stretching~force~F}{extension~e}\)
The spring constant k can be calculated by finding the gradientIn a graph, the gradient is the steepness of the line. The greater the gradient, the greater the rate of change. of the straight-line portion of the graph.
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