Chapter 2.6, Problem 27E

To determine

To find: gaskets that will be thrown out.

Answer to Problem 27E

The 0.53 pounds gaskets will be thrown out.

Explanation of Solution

Given:

  $0.58;0.63;0.65;0.53;0.61$

Calculation:

Let

w = the acceptable weight of gasket

We find the mean weight $\overline{x}$ :

  $\begin{array}{l}\overline{x}=\frac{0.58+0.63+0.65+0.53+0.61}{5}\\ =\frac{3.00}{5}=0.60\end{array}$

The acceptable weight must verify the inequality:

  $\begin{array}{l}\left|x-\overline{x}\right|<0.06\\ \left|x-0.60\right|<0.06\end{array}$

solve the inequality:

  $\begin{array}{l}0.06<x-0.60<0.06\\ 0.06+0.60<x-0.60+0.60<0.06+0.60\\ 0.54<x<0.66\end{array}$

The only gasket which does not verify the inequality is the one with the weight 0.53 pounds.

  $0.53\notin \left(0.54;0.66\right)$

Conclusion:

Therefore, the 0.53 pounds gaskets will be thrown out.