Constant velocity ⇒ zero acceleration ⇒ net force is zero. The only two horizontal forces are the applied force $F$ (forward) and friction $f$ (backward). For them to cancel:

$F – f = 0 \Rightarrow f = F$

• (i) No net force ⇒ no acceleration ⇒ velocity will remain the same (Newton’s first law).
• (ii) Force along the motion adds to the speed ⇒ speed will increase.
• (iii) Force opposite to the motion slows it down ⇒ speed will decrease.

Block P: two opposite forces ⇒ net force $= 5 – 4 = 1\ \text{N} \neq 0$ ⇒ P has a net force.

Block Q: moving at constant velocity ⇒ zero acceleration ⇒ net force is zero.

1. Forward force (95 oarsmen)$95 \times 200 = 19000\ \text{N}$
2. Backward force (5 oarsmen)$5 \times 200 = 1000\ \text{N}$
3. Net force$19000 – 1000 = 18000\ \text{N}$ (forward)

Newton’s second law: $a = \dfrac{F}{m}$. The acceleration is in the same direction as the net force and is directly proportional to it (for fixed mass).

A net force exists only when there is acceleration, i.e. when the velocity (the slope of a position–time graph) is changing — a curved graph.

• A: straight inclined line ⇒ constant velocity ⇒ no net force.
• B: horizontal line ⇒ at rest ⇒ no net force.
• C: curved (slope keeps increasing) ⇒ accelerating ⇒ net force acts.
• D: straight declining line ⇒ constant (negative) velocity ⇒ no net force.

To jump forward, the sailor’s feet push the boat backward. By Newton’s third law, the boat pushes the sailor forward with an equal and opposite force (letting them reach the shore).

The reaction on the boat therefore acts backward, so the boat moves backward — away from the shore, in the direction opposite to the sailor’s jump.

When the athlete lands, they must be brought to rest. A soft mat or sand bed increases the time taken to stop, compared with a hard floor.

A longer stopping time gives a smaller deceleration, and by $F = ma$, a smaller force acts on the athlete’s body. This reduces the risk of injury.

By Newton’s third law, whenever two objects interact, they exert equal and opposite forces on each other — regardless of their masses or loads. (The loaded cart will accelerate less because of its larger mass, but the forces are equal.)

Read values from the curve: at $m=1\,$kg, $a=10$; at $m=2\,$kg, $a=5$; at $m=4\,$kg, $a=2.5$. In every case:

$F = ma = 1\times10 = 2\times5 = 4\times2.5 = 10\ \text{N}$

The force is the same (10 N) for all masses. So the force–mass graph is a horizontal straight line at $F = 10\ \text{N}$.

1. Read the graphAt $t=0$, $v=10\ \text{m s}^{-1}$; at $t=8\ \text{s}$, $v=30\ \text{m s}^{-1}$.
2. Acceleration = slope$a = \dfrac{30-10}{8-0} = \dfrac{20}{8} = 2.5\ \text{m s}^{-2}$
3. Force$F = ma = 10 \times 2.5 = 25\ \text{N}$

1. Convert units$m = 50\ \text{g} = 0.05\ \text{kg}$,   $s = 50\ \text{cm} = 0.5\ \text{m}$,   $u = 100\ \text{m s}^{-1}$,   $v = 0$
2. Find accelerationUsing $v^2 = u^2 + 2as$:
   $0 = (100)^2 + 2a(0.5) \Rightarrow 0 = 10000 + a \Rightarrow a = -10000\ \text{m s}^{-2}$
3. Find force$F = ma = 0.05 \times (-10000) = -500\ \text{N}$

The minus sign shows the force opposes the bullet’s motion.

1. Convert speed$v = 108\ \text{km h}^{-1} = 108 \times \dfrac{1000}{3600} = 30\ \text{m s}^{-1}$,   $u = 0$
2. Acceleration$a = \dfrac{F}{m} = \dfrac{800}{0.4} = 2000\ \text{m s}^{-2}$
3. Time of contactUsing $v = u + at$:   $30 = 0 + 2000\,t \Rightarrow t = \dfrac{30}{2000} = 0.015\ \text{s}$

1. Total opposing force$F = 7 + 3 = 10\ \text{N}$ (backward)
2. Acceleration (deceleration)$a = \dfrac{F}{m} = \dfrac{-10}{2} = -5\ \text{m s}^{-2}$
3. Distance to stopUsing $v^2 = u^2 + 2as$ with $v=0,\ u=10$:
   $0 = (10)^2 + 2(-5)s \Rightarrow 0 = 100 – 10s \Rightarrow s = 10\ \text{m}$

1. Express each mass$F = m_1 a_1 \Rightarrow m_1 = \dfrac{F}{a_1}$,    $F = m_2 a_2 \Rightarrow m_2 = \dfrac{F}{a_2}$
2. Combined systemTotal mass $= m_1 + m_2$. New acceleration:
   $a = \dfrac{F}{m_1 + m_2} = \dfrac{F}{\frac{F}{a_1} + \frac{F}{a_2}}$
3. Simplify$a = \dfrac{F}{F\left(\frac{1}{a_1} + \frac{1}{a_2}\right)} = \dfrac{1}{\frac{1}{a_1}+\frac{1}{a_2}} = \dfrac{a_1 a_2}{a_1 + a_2}$

The magnetic forces on the two are indeed equal in magnitude. But the resulting acceleration depends on mass, since $a = \dfrac{F}{m}$.

The compass needle is very light, so the same force produces a large acceleration and it swings noticeably. The bar magnet is much heavier, so the equal force gives it only a negligible acceleration — it barely moves.