Stopping distance w human reaction time

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Homework Help Overview

The problem involves calculating the stopping distance of a car traveling at an initial speed of 26.9 m/s, taking into account a human reaction time of 0.9 seconds and a deceleration of -4 m/s².

Discussion Character

  • Exploratory, Assumption checking

Approaches and Questions Raised

  • The original poster attempts to use kinematic equations to find the stopping distance but expresses confusion about their approach. Some participants clarify the need to account for both the reaction time and the deceleration time in their calculations.

Discussion Status

Participants are exploring different interpretations of the problem, particularly regarding the sequence of events during the stopping process. One participant provides a detailed calculation, but there is no explicit consensus on the correctness of the approach or the final answer.

Contextual Notes

There is mention of the original poster's uncertainty about their calculations and a request for further assistance, indicating a need for clarification on the concepts involved.

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Homework Statement



determine the stopping distance for a car with an intitial speed of 26.9 m/s and a human reaction time of 0.9s for an acceleration of -4m/s^2

Homework Equations



x=vt t=v/a x=x+vt+.5at^2

The Attempt at a Solution



I used the second equation to find total time by adding it to .9s then plugged that into equation 3 and added that to x of the first equation?? what am i doing wrong??
 
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Alright, you are going 26.9 m/s. When you stop, you take .9s before the deceleration takes place.

So, it's .9 seconds plus however much time the deceleration takes.

As such,
Alright, you are going 26.9 m/s. When you stop, you take .9s before the deceleration takes place.

So, it's .9 seconds plus however much time the deceleration takes.

As such,
(Original Velocity)/(Deceleration rate)=Total Deceleration Time
(26.9m/s)/(4m/s^2)=Total Deceleration Time
6.725 seconds= Total Deceleration Time

Stopping Distance=(Average Velocity)(Total Deceleration Time)
(.5)(26.9 m/s)(6.725 seconds)=90.45125 meters

Now, you know how much distance it takes to stop.
You have to add how much distance you covered before stopping.
(reaction time)(velocity during reaction time)=Distance traversed during reaction time
(.9 seconds)(26.9m/s)=24.21 meters

Add the two to get your answer.
24.21 meters + 90.45125 meters= 114.66125 meters

And that's your answer.
 
thank you so much, you seem to be the most helpful, do you think you could help me out on some more?
 
Certainly. How else would I postpone doing my chemistry work? And I haven't actually taken AP physics, so I suggest checking my answers that I give you. I just like math and am good at figuring stuff out.
 

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