A.4.3: Section 4.3 Answers
- Page ID
- 43762
1. \(v=-\frac{384}{5}(1-e^{-5t/12});\quad -\frac{384}{5}\text{ft/s}\)
2. \(k=12;\quad v=-16(1-e^{-2t})\)
3. \(v=25(1-e^{-t});\quad 25\text{ft/s}\)
4. \(v=20-27e^{-t/40}\)
5. \(\approx 17.10\text{ ft}\)
6. \(v=-\frac{40(13+3e^{-4t/5})}{13-3e^{-4t/5}};\quad -40\text{ft/s}\)
7. \(v=-128(1-e^{-t/4})\)
9. \(T=\frac{m}{k}\ln\left(1+\frac{v_{0}k}{mg} \right);\quad y_{m}=y_{0}=\frac{m}{k}\left[v_{0}-\frac{mg}{l}\ln\left(1+\frac{v_{0}k}{mg} \right) \right]\)
10. \(v=-\frac{64(1-e^{-t})}{1+e^{-t}};\quad 64\text{ft/s}\)
11. \(v=\alpha\frac{v_{0}(1+e^{-\beta t})-\alpha (1-e^{-\beta t})}{\alpha (1+e^{-\beta t})-v_{0}(1-e^{-\beta t})};\quad -\alpha\) where \(\alpha =\sqrt{\frac{mg}{k}}\) and \(\beta =2\sqrt{\frac{kg}{m}}\)
12. \(T=\sqrt{\frac{m}{kg}}\tan ^{-1}\left(v_{0}\sqrt{\frac{k}{mg}} \right)\:v=-\sqrt{\frac{mg}{k}};\quad \frac{1-e^{-2\sqrt{\frac{ak}{m}}(t-T)}}{1+e^{-2\sqrt{\frac{ak}{m}}(t-T)}}\)
13. \(s'=mg-\frac{as}{s+1};\quad a_{0}=mg\)
14. (a) \(ms'=mg-f(s)\)
15.
- \(v'=-9.8+v^{4}/81\)
- \(v_{T}\approx -5.308\text{m/s}\)
16.
- \(v'=-32+8\sqrt{|v|};\quad v_{T}=-16\text{ ft/s}\)
- From Exercise 4.3.14
- \(v_{T}\) is the negative number such that \(-32 +8\sqrt{|v_{T}|}=0\); thus, \(v_{T}=-16\text{ ft/s}\)
17. \(\approx 6.76\text{miles/s}\)
18. \(\approx 1.47\text{miles/s}\)
20. \(\alpha =\frac{gR^{2}}{(y_{m}+R)^{2}}\)