Answered

Welcome to Westonci.ca, where finding answers to your questions is made simple by our community of experts. Join our platform to connect with experts ready to provide precise answers to your questions in different areas. Get detailed and accurate answers to your questions from a dedicated community of experts on our Q&A platform.

Need 021-028 please.

Need 021028 Please class=

Sagot :

LammettHash

(021) The acceleration at 1 second is the slope of the line plotted over the first 2 seconds. This line passes through the points (0 s, 0 m/s) and (2 s, 5 m/s), so its slope and thus the (average) acceleration is

(5 m/s - 0 m/s) / (2 s - 0 s) = 5/2 m/s² = 2.5 m/s²

(022) At time 2 seconds, the velocity curve passes through the point (2 s, 5 m/s), so the velocity is 5 m/s

(023) The distance traveled by this object after 2 seconds is equal to the area under the velocity function over the first 2 seconds. This region is a triangle with base 2 s and height 5 m/s, so the area is

1/2 (2 s) (5 m/s) = 5 m

The object's initial position is 10 m, so its final position after 2 seconds is

10 m + 5 m = 15 m

(024) Similar to (021): compute the slope of the line connecting the point (2 s, 5 m/s) and (6 s, 7 m/s):

(7 m/s - 5 m/s) / (6 s - 2 s) = (2 m/s) / (4 s) = 1/2 m/s² = 0.5 m/s²

(025) We know the distance traveled in the first 2 seconds. Over the next 4 seconds, the object travels an additional distance equal to the area of a trapezoid with "height" 6 s - 2 s = 4 s, and "bases" 5 m/s and 7 m/s. The area of this trapezoid is

1/2 (4 s) (5 m/s + 7 m/s) = 24 m

The net distance traveled after 6 s is then

5 m + 24 m = 29 m

so the object's position after 6 s is

10 m + 29 m = 39 m

(026) Again, compute the slope of a line, this time through the point (6 s, 0 m/s) and (9 s, -1 m/s) :

(-1 m/s - 0 m/s) / (9 s - 6 s) = (-1 m/s) / (3 s) ≈ -0.333 m/s²

(027) If the velocity at 6 s is 0 m/s, and after each second the velocity decreases by 0.333 m/s, then after 2 more seconds the velocity would be

0 m/s + (2 s) (-0.333 m/s²) = -0.666 m/s

(028) The distance traveled between the 6th second and 8th second corresponds to the area of another trapezoid, with "height" 8 s - 6 s = 2s and "bases" 0 m/s and 0.666 m/s - 0 m/s = 0.666 m/s. So the distance traveled in this interval is

1/2 (2 s) (0 m/s + 0.666 m/s) = 0.666 m

However, the velocity is negative for this duration, so the object has turned around and is moving in the opposite direction. This means it covers a net distance after a total of 8 s of

5 m + 24 m - 0.666 m = 28.333 m

and so its position after 8 s is

10 m + 28.333 m = 38.333 m

Your visit means a lot to us. Don't hesitate to return for more reliable answers to any questions you may have. Thank you for your visit. We're dedicated to helping you find the information you need, whenever you need it. We're dedicated to helping you find the answers you need at Westonci.ca. Don't hesitate to return for more.