Question #f7f80
1 Answer
(A)
(B)
Explanation:
We're asked to find
-
(A) the initial speed of the ball
-
(B) the maximum height of the ball
given its time of flight (
- (A) Initial speed
To find the necessary initial speed, we recognize that the particle will be at its maximum height at
We can then use the equation
#ul(v_y = v_(0y) - g t#
where
-
#v_y# is the#y# -velocity at time#t# (#0# , maximum height) -
#v_(0y)# is the initial#y# -velocity (what we're trying to find) -
#g = 9.81# #"m/s"# -
#t# is the time (#3.00# #"s"# )
Plugging in known values:
#0 = v_(0y) - (9.81color(white)(l)"m/s"^2)(3.00color(white)(l)"s")#
#color(red)(ulbar(|stackrel(" ")(" "v_(0y) = 29.4color(white)(l)"m/s"" ")|)#
- (B) Maximum height reached
To find this, we can use the kinematics equation
#Deltay = ((v_y + v_(0y))/2)t#
where
-
#Deltay# is the change in height (what we're trying to find) -
#v_y# still equals#0# (maximum height) -
#v_(0y) = color(red)(29.4color(white)(l)"m/s"# -
#t = 3.00# #"s"#
Plugging in known values:
#Deltay = ((0+color(red)(29.4color(white)(l)"m/s"))/2)(3.00color(white)(l)"s")#
#color(blue)(ulbar(|stackrel(" ")(" "Deltay = 44.1color(white)(l)"m"" ")|)#
