A particle P of mass 2 kg is moving under the action of a constant force F newtons - Edexcel - A-Level Maths Mechanics - Question 3 - 2007 - Paper 1

Using Newton's second law, we apply:

$F = ma$

Where m = 2 kg and we have just found:

a = 3i - 1.5j.

Thus, substituting:

$F = 2(3i - 1.5j) = 6i - 3j$

To find the magnitude of F, we use the formula:

$|F| = \sqrt{(6)^2 + (-3)^2} = \sqrt{36 + 9} = \sqrt{45}$

Therefore, the magnitude of F is:

$|F| \approx 6.71 N$

We know the acceleration and can find the velocity at t = 6 s using:

$v_f = v_0 + at$

Here, at t = 6 s, we have:

Initial velocity: $v_0 = 3i + 2j$

Acceleration: $a = 3i - 1.5j$

So, substituting:

$v_f = (3i + 2j) + (3i - 1.5j)(6)$

Calculating:

$v_f = 3i + 2j + (18i - 9j)$

Combining like terms yields:

$v_f = (3 + 18)i + (2 - 9)j = 21i - 7j$

Therefore, the velocity of P at t = 6 s is:

$21i - 7j \, (m/s)$