Answer: 1.9 m/s
Explanation:
1) Data:
height, y = 0
range, x = 0.77m
angle, α = 45°
question, horizontal velocity, Vox = ?
2) Physical principles and formulas
Projectile motion.
[tex] y=V_{0y}t-gt^{2} /2\\ \\ x=V_{0x}t\\ \\ V_{0y}=V_0sin\alpha \\ \\ V_{0x}=V_0cos\alpha [/tex]
3) Solution
[tex] 0.77=V_0cos(45)t\\ t=0.77/(V_0cos(45)) [/tex]
[tex] y=0=V_0sin(45)t-gt^{2} /2 [/tex]
Factor
[tex] 0=t[V_0sin(45)-gt/2] [/tex]
Discard t = 0 and solve for the other factor:
[tex] gt/2=V_0sin(45)\\ \\ V_0= gt/(2sin(45))=9.81[0.77/V_{0}cos(45)]/[2sin(45)]\\ \\ V_0^2=9.81[0.77/(2cos(45)sin(45)=9.81[0.77/sin(90)]=7.55\\ \\ V_0}=\sqrt{7.55} =2.8 [/tex]
Find Vx:
[tex] Vx=V_{0x}=V_{0}cos(45)=2.75(\sqrt{2} /2]=1.9 [/tex]
Vx = 1.9m/s ← answer
