Photo AI

A crane was used to lift an object of mass 250 kg vertically upwards to point A, which is 50 m above the ground, at a CONSTANT VELOCITY, as shown in the diagram below - NSC Technical Sciences - Question 4 - 2023 - Paper 1

Question icon

Question 4

A-crane-was-used-to-lift-an-object-of-mass-250-kg-vertically-upwards-to-point-A,-which-is-50-m-above-the-ground,-at-a-CONSTANT-VELOCITY,-as-shown-in-the-diagram-below-NSC Technical Sciences-Question 4-2023-Paper 1.png

A crane was used to lift an object of mass 250 kg vertically upwards to point A, which is 50 m above the ground, at a CONSTANT VELOCITY, as shown in the diagram belo... show full transcript

Worked Solution & Example Answer:A crane was used to lift an object of mass 250 kg vertically upwards to point A, which is 50 m above the ground, at a CONSTANT VELOCITY, as shown in the diagram below - NSC Technical Sciences - Question 4 - 2023 - Paper 1

Step 1

4.1 Define the term work.

96%

114 rated

Answer

Work is defined as the energy transferred when a force is applied to an object, causing it to move a certain distance in the direction of the force. Mathematically, it can be expressed as:

W=Fimesdimesextcos(heta)W = F imes d imes ext{cos}( heta)

where:

  • WW is the work done,
  • FF is the force applied,
  • dd is the distance moved by the object,
  • θ\theta is the angle between the force and the direction of motion.

Step 2

4.2 Calculate the work done by the crane in lifting the object.

99%

104 rated

Answer

To calculate the work done, we use the formula:

W=FimesdW = F imes d

First, we calculate the force due to gravity acting on the object:

F=mimesg=250extkgimes9.8extm/s2=2450extNF = m imes g = 250 ext{ kg} imes 9.8 ext{ m/s}^2 = 2450 ext{ N}

Now, substituting the values into the work formula:

W=2450extNimes50extm=122500extJW = 2450 ext{ N} imes 50 ext{ m} = 122500 ext{ J}

Step 3

4.3 Calculate the average power used by the crane in lifting the object up to a height of 50 m. Convert the answer from watt to horse power.

96%

101 rated

Answer

Power is defined as the rate of doing work, calculated as:

P=WtP = \frac{W}{t}

where tt is the time taken to do the work. Given that the object was lifted at a constant velocity, the time taken can be calculated:

Assuming it took t=dv=50extm25extm/s=2extst = \frac{d}{v} = \frac{50 ext{ m}}{25 ext{ m/s}} = 2 ext{ s}.

Now substituting into the power formula:

P=122500extJ2exts=61250extWP = \frac{122500 ext{ J}}{2 ext{ s}} = 61250 ext{ W}

To convert watts to horse power:

1exthp=745.7extW1 ext{ hp} = 745.7 ext{ W}

Thus,

Power in hp=61250extW745.7extW/hp82.16exthp\text{Power in hp} = \frac{61250 ext{ W}}{745.7 ext{ W/hp}} \approx 82.16 ext{ hp}

Step 4

4.4.1 State the principle of conservation of mechanical energy in words.

98%

120 rated

Answer

The principle of conservation of mechanical energy states that in an isolated system, the total mechanical energy (the sum of potential and kinetic energy) remains constant, provided that no external forces do work on the system.

Step 5

4.4.2 How would the total mechanical energy of the object at 50 m above the ground compare to its mechanical energy on the ground? Write only GREATER THAN, SMALLER THAN or REMAINS THE SAME.

97%

117 rated

Answer

GREATER THAN

Step 6

4.4.3 Give a reason for the answer to QUESTION 4.4.2.

97%

121 rated

Answer

At a height of 50 m, the object possesses gravitational potential energy due to its height, which is not present when it is on the ground. Hence, the total mechanical energy at 50 m is greater than on the ground.

Step 7

4.4.4 Calculate the velocity of the object when it hits the ground.

96%

114 rated

Answer

Using conservation of energy, the potential energy at point A converts entirely into kinetic energy just before hitting the ground:

U=Kmgh=12mv2U = K \Rightarrow mgh = \frac{1}{2} mv^2

Substituting the values:

250extkg×9.8extm/s2×50extm=12×250extkg×v2250 ext{ kg} \times 9.8 ext{ m/s}^2 \times 50 ext{ m} = \frac{1}{2} \times 250 ext{ kg} \times v^2

Solving for vv:

122500extJ=125×v2122500 ext{ J} = 125 \times v^2

v2=122500125=980v^2 = \frac{122500}{125} = 980

v=98031.30extm/sv = \sqrt{980} \approx 31.30 ext{ m/s}

Join the NSC students using SimpleStudy...

97% of Students

Report Improved Results

98% of Students

Recommend to friends

100,000+

Students Supported

1 Million+

Questions answered

;