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3 years ago

Write 71/25 as a decimal.

Mathematics

2 answers:

andriy [413]3 years ago

7 0

Answer:

2.84

Step-by-step explanation:

71 ÷ 25 = 2.84

meriva3 years ago

6 0

Answer:

Step-by-step explanation:

71/25=2.84

Hope this helps x

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Evaluate 6 to the 2nd power DO NOT SOLVE, write the equation out

enot [183]

Answer:

6*2=?

Explantion:

This is how it would look like, i didnt do a multiplcation sign because it would be 6 times 2. You are asking 6 times its self two times. Hope it helps!

So 6 x 6 or 6*2

NOT 6 X 2

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3 years ago

Find the equation of the line. Use exact numbers.

Veseljchak [2.6K]

Answer:

Step-by-step explanation:

(-6,0) ; (0,4)

$Slope=\frac{y_{2}-y_{1}}{x_{2}-x_{1}}\\\\=\frac{4-0}{0-(-6)}\\\\=\frac{4}{6}\\\\=\frac{2}{3}$

y - y1 = m(x -x1)

y - 0 = (2/3)(x- [-6] )

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4 years ago

What is the slope of the line that passes through the points (3, 2) and (-1, 2)?

rosijanka [135]

Answer:its undefined

Step-by-step explanation:

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3 years ago

What is -15x=0 solution

cricket20 [7]

Here is the method for solving that equation:

Step #1: Write the equation:

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4 years ago

The rod is made of A-36 steel and has a diameter of 0.22 in . If the rod is 4 ft long when the springs are compressed 0.7 in . a

ziro4ka [17]

The force in the rod when the temperature is 150 °F is 718.72 pounds-force.

<h3>How to determine the resulting the resulting force due to mechanical and thermal deformation</h3>

Let suppose that rod experiments a quasi-static deformation and that both springs have a linear behavior, that is, force ( $F$ ), in pounds-force, is directly proportional to deformation. Then, the elongation of the rod due to temperature increase creates a spring deformation additional to that associated with mechanical contact.

Given simmetry considerations, we derive an expression for the spring force ( $F$ ), in pounds-force, as a sum of mechanical and thermal effects by principle of superposition:

$F = k\cdot (\Delta x + 0.5\cdot \Delta l)$ (1)

Where:

$k$ - Spring constant, in pounds-force per inch.
$\Delta x$ - Spring deformation, in inches.
$\Delta l$ - Rod elongation, in inches.

The rod elongation is described by the following thermal dilatation formula:

$\Delta l = \alpha \cdot L_{o}\cdot (T_{f}-T_{o})$ (2)

Where:

$\alpha$ - Coefficient of linear expansion, in $\frac{1}{^{\circ}F}$ .
$L_{o}$ - Initial length of the rod, in inches.
$T_{o}$ - Initial temperature, in degrees Fahrenheit.
$T_{f}$ - Final temperature, in degrees Fahrenheit.

If we know $k = 1000\,\frac{lb}{in}$ , $\Delta x = 0.7\,in$ , $\alpha = 6.5\times 10^{-6}\,\frac{1}{^{\circ}F}$ , $L_{o} = 48\,in$ , $T_{o} = 30\,^{\circ}F$ and $T_{f} = 150\,^{\circ}F$ , then the force in the rod at final temperature is:

$F = \left(1000\,\frac{lb}{in} \right)\cdot \left[0.7\,in + 0.5\cdot\left(6.5\times 10^{-6}\,\frac{1}{^{\circ}F} \right)\cdot (48\,in)\cdot (150\,^{\circ}F-30\,^{\circ}F)\right]$

$F = 718.72\,lbf$

The force in the rod when the temperature is 150 °F is 718.72 pounds-force. $\blacksquare$

To learn more on deformations, we kindly invite to check this verified question: brainly.com/question/13774755

3 0

3 years ago