Solution 18.4c

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(New page: From part a) <math>a=\frac{dv}{dt}=36-6t</math> We see <math>a</math> decreases as the time <math>t</math> increases. Thus the maximum acxceleration is at <math>t=0</math> giving <math...)
Current revision (17:12, 27 March 2011) (edit) (undo)
 
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<math>a=\frac{dv}{dt}=36-6t</math>
<math>a=\frac{dv}{dt}=36-6t</math>
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We see <math>a</math> decreases as the time <math>t</math> increases. Thus the maximum acxceleration is at <math>t=0</math> giving
+
We see <math>a</math> decreases as the time <math>t</math> increases. Thus the maximum acceleration is at <math>t=0</math> giving
<math>\text{a}\ \text{=}\ \text{36 m}{{\text{s}}^{-\text{2}}}</math>
<math>\text{a}\ \text{=}\ \text{36 m}{{\text{s}}^{-\text{2}}}</math>

Current revision

From part a)

\displaystyle a=\frac{dv}{dt}=36-6t

We see \displaystyle a decreases as the time \displaystyle t increases. Thus the maximum acceleration is at \displaystyle t=0 giving

\displaystyle \text{a}\ \text{=}\ \text{36 m}{{\text{s}}^{-\text{2}}}

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