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3 years ago

What would you call the segment that connects the edges of the penny and passes through the center?

1 answer:

5 0

The penny is a circle, the diameter is a line segment that passes directcly through the center of a circle, the answer is diameter.

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attashe74 [19]

Answer:

45=9⋅5 , so 2√45 is the same as 2⋅√9⋅5 . The √9=3 , so a 3 can be removed. leaving 2⋅3√5 , or 6√5

6 0

3 years ago

Q#33: Tell whether the lines for the pair of the equation are parallel, perpendicular, or neither?

Rashid [163]

Answer:

i think its neither

Step-by-step explanation:

5 0

3 years ago

The expression 3 ( 1 . 5 )^ t models the number of bacteria in a culture as a function of the number of hours since the culture

Masteriza [31]

Answer:

Step-by-step explanation:

Given

3 $(1.5)^{t}$

When the culture was created t = 0, thus

3 $(1.5)^{0}$ = 3 × 1 = 3

That is there were initially 3 bacteria in the culture → A

4 0

3 years ago

If there are 2 girls per 3 boys What is<br> the ratio of girls to Boys

Phantasy [73]

Answer:

2:3

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3 0

3 years ago

Simplify each only using positive exponents:<br> 2x^-3 • 4x^2<br> 2x^4 • 4x^-3<br> 2x^3y^-3 • 2x

erica [24]

<h2>Answer:</h2>

$\frac{2}{x}$

$\frac{x}{2}$

$\frac{4x^4}{y^3}$

<h2>Step-by-step explanation:</h2>

a. 2x^-3 • 4x^2

To solve this using only positive exponents, follow these steps:

i. Rewrite the expression in a clearer form

2x⁻³ . 4x²

ii. The position of the term with negative exponent is changed from denominator to numerator or numerator to denominator depending on its initial position. If it is at the numerator, it is moved to the denominator. If otherwise it is at the denominator, it is moved to the numerator. When this is done, the negative exponent is changed to positive.

In our case, the first term has a negative exponent and it is at the numerator. We therefore move it to the denominator and change the negative exponent to positive as follows;

$\frac{1}{2x^3} . 4x^2$

iii. We then solve the result as follows;

$\frac{1}{2x^3} . 4x^2$ = $\frac{2}{x}$

Therefore, 2x⁻³ . 4x² = $\frac{2}{x}$

b. 2x^4 • 4x^-3

i. Rewrite as follows;

2x⁴ . 4x⁻³

ii. The second term has a negative exponent, therefore swap its position and change the negative exponent to a positive one.

$2x^4 . \frac{1}{4x^3}$

iii. Now solve by cancelling out common terms in the numerator and denominator. So we have;

$\frac{x}{2}$

Therefore, 2x⁴ . 4x⁻³ = $\frac{x}{2}$

c. 2x^3y^-3 • 2x

i. Rewrite as follows;

2x³y⁻³ . 2x

ii. Change position of terms with negative exponents;

$2x^3.\frac{1}{y^3} .2x$

iii. Now solve;

$\frac{4x^4}{y^3}$

Therefore, 2x³y⁻³ . 2x = $\frac{4x^4}{y^3}$

8 0

3 years ago