Answer to Question #164664 in Optics for nafi

Question #164664

Determine the stopping distances for an automobile going a constant initial speed of 93km/h and human reaction time of 0.30 s, for an acceleration a=−3.3m/s2.

Expert's answer

From equation of motion

"v_f^2-v_i^2=2a\\Delta x\\\\\\ \\\\\\Delta x=\\dfrac{v_f^2-v_i^2}{2a}"

Stopping distance "d=vt+\\Delta x"

Here, "v_i=93\\ km\/h=93(5\/18)\\ m\/s= 26\\ m\/s"

"\\Delta x=\\dfrac{v_f^2-v_i^2}{2a}=\\dfrac{0^2-26^2}{-2\\times 3.3}=102.42\\ m"

and Stopping Distance "d=vt+\u0394x =23(0.30)+102.42=109.32\\ m"

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Answer to Question #164664 in Optics for nafi

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