Chapter 2 - Kinematics in One Dimension - Exercises and Problems - Page 60: 23

The flea goes up to a height of 5.15 cm

We can find the velocity $v$ after the flea accelerates through the first 0.50 mm: $v^2= v_0^2+2ay = 0 + 2ay$ $v = \sqrt{2ay} = \sqrt{(2)(1000~m/s^2)(0.50\times 10^{-3}~m)}$ $v = 1.0~m/s$ We then find the distance the flea goes up after the initial period of acceleration; $y = \frac{0-v^2}{2a} = \frac{-(1.0~m/s)^2}{(2)(-9.80~m/s^2)}$ $y = 0.0510~m$ The total height is $0.0510$ m plus the initial 0.50 mm while the flea was accelerating upward. This makes the total height 0.0515 meters which is 5.15 cm.