Presentation of Data and Observations
339 questions· page 1 of 34
Hook the mass hanger on the string loop. Record the mass that is suspended from the loop.
= ______
Change by adding masses to the hanger and repeat (d)(ii), (d)(iii) and (d)(iv).
Repeat this procedure until you have six sets of values for (the total suspended mass) and angle .
Include in your table values for (using your answer from (c)) and .
Determine the gradient and -intercept of this line.
gradient = ______
-intercept = ______
Measure and record the distance from the bench to the top of the spring at A, as shown in Fig. 1.2.
= ______
Measure and record the distance from the string loop below A to the string loop supporting M, as shown in Fig. 1.2.
= ______
Lower boss A and repeat (c) until you have six sets of values of and .
Include values of and in your table.
The position of boss B should remain the same throughout the experiment.
Adjust the variable resistor and repeat (b)(iii) until you have six sets of values of and . Include values of and in your table.
Open the switch when you have taken all your readings.
● Keep F and G in the same positions so that the value of remains the same.
● Change some of the connecting leads to set up the circuit shown in Fig. 1.2.
● Close the switch.
● Record the ammeter reading .
= ______
● Open the switch.
● Calculate .
= ______
Using values of greater than , change by placing G at different positions on the wire and record and .
Repeat until you have six sets of readings of , and . Include your values from (a) and (b).
Record your results in a table. Include values of and in your table.
● Set up the apparatus as shown in Fig. 1.1.
● The length of the spring combination is measured between the top coil of the upper spring and the bottom coil of the lower spring, as shown in Fig. 1.1.
Measure and record .
= ______
● Use the lower string loop to suspend a total mass of , as shown in Fig. 1.2.
● The new length of the spring combination is .
Measure and record .
= ______
● The spring constant of the spring combination is given by the equation
where is .
Calculate .
● Set up the apparatus as shown in Fig. 1.3.
● Use the adhesive putty to fix two slotted masses with their centres above the mark on the rule. The masses must remain at this position throughout the experiment.
● Place the lower string loop at the mark on the rule.
● The distance between the pivot and the midpoint of the rule is .
Adjust the pivot so that is approximately .
● Adjust the stand, boss and clamp so that the springs are vertical and the rule is horizontal.
● Measure and record and .
= ______
= ______
● The extension of the spring combination is given by the equation
Calculate .
= ______
● Change by moving the pivot. Adjust the stand, boss and clamp so that the springs are vertical and the rule is horizontal. Measure and . Repeat until you have six sets of values of and .
Do not include values of less than .
Record your results in a table. Include values of , and in your table.
● Move M along the strip and adjust the apparatus so that the strip is parallel to the bench.
● Measure and determine .
● Repeat until you have six sets of values of and .
Record your results in a table. Include values of and in your table.
Determine the gradient and -intercept of this line.
gradient = ______
-intercept = ______
You have been provided with two metre rules. One is labelled P and the other is labelled Q.
• Set up the circuit shown in Fig. 1.1.
• F, G, H and J are crocodile clips.
Place H approximately half-way along the wire on rule P.
• The distance between F and H is , as shown in Fig. 1.1.
Record .
= ______
• Place J on the wire on rule Q so that the distance between G and J is approximately 60 cm. The distance between G and J is , as shown in Fig. 1.1.
• Record .
= ______
• Calculate , where .
= ______
Keeping constant, vary until you have six sets of readings of and . Do not use values of less than .
Record your results in a table. Include values of and in your table.
Theory suggests that is inversely proportional to and that is independent of . The experiment is repeated using the same equipment but a larger value of .
For this experiment, draw a second line on the graph to show the expected results. Label this line W.
The mass attached to the card is . Increase by fixing another 10 g slotted mass on top of, or behind, the first mass.
Record and repeat (b) until you have six sets of readings of and . Include your results from (b) and (c).
Include values of in your table.
Cut smaller circles and repeat (b) and (c) until you have six sets of values of and .
Include in your table the two sets of values already taken.
Also include values of and in your table.