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xz_007 [3.2K]
3 years ago
13

Which equation can be used to solve for the measure of angle ABC? tan(x) = StartFraction 2. 4 Over 10 EndFraction tan(x) = Start

Fraction 10 Over 2. 4 EndFraction sin(x) = StartFraction 10 Over 10. 3 EndFraction sin(x) = StartFraction 10. 3 Over 10 EndFraction.
Mathematics
1 answer:
Elanso [62]3 years ago
7 0

The equation can be used to solve for the measure of angle ABC is given in option (A).

Since the image of the \Delta ABC is missing, so i attached the same image as asked in the question.

Now according to the figure,

\Delta ABC is a right angled triangle, right angled at C, so the hypotenuse will be Side AB.

We have to calculate the value of \angle ABC.

By trigonometric ratios we know that,

\tan\theta=\dfrac{\rm Perpendicular}{\rm Base}

Now for \angle ABC perpendicular is AC and base is BC, also \Theta will be x .( see the attached figure )

So,

\tan x=\dfrac{AC}{BC}

Since AC is 2.4 and BC is 10.

Now,

\tan x=\dfrac{2.4}{10}

Thus the correct option is (A).

For more details on trigonometric ratios follow the link:

brainly.com/question/1201366

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6+ 7i

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What is the total resistance of a parallel circuit that has two loads? Load one has a resistance of 10 ohms. Load two has a resi
Romashka-Z-Leto [24]

Answer:

The total resistance is 7.0588\Omega

Step-by-step explanation:

Attached please find the circuit diagram. The circuit is composed by a voltage source and two resistors connected in parallel: R_1=10\Omega and R_2=24\Omega.

First step: find the total current

For finding the current that the voltage source can provide, you must find the current consumed by each load and then add both. To do that, take first into account that the voltage is the same for both resistors (R_1 and R_2).

  • I_{R_1}=\frac{V_S}{R_1}
  • I_{R_2}=\frac{V_S}{R_2}

The total current is:

I_{TOTAL}=I_{R_1}+I_{R_2}=\frac{V_S}{R_1}+\frac{V_S}{R_2}=\frac{R_2\cdot V_S+R_1\cdot V_S}{R_1\cdot R_2}

I_{TOTAL}=V_S\cdot \frac{R_1+R_2}{R_1\cdot R_2}

Now, the total resistance (R_{TOTAL}) would be the voltage divided by the total current:

R_{TOTAL}=\frac{V_S}{I_{TOTAL}}

If you replace I_{TOTAL} by the expression obtained previously, the total resistance would be:

R_{TOTAL}=\frac{V_S}{V_S\cdot \frac{R_1+R_2}{R_1\cdot R_2}}

After simplifying the terms you should get:

R_{TOTAL}=\frac{R_1\cdot R_2}{R_1 + R_2}}

Now, you must replace the values of the resistors:

R_{TOTAL}=\frac{(10\Omega )\cdot (24\Omega)}{10\Omega + 24\Omega}}=\frac{120}{17}\Omega=7.0588\Omega

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3 0
4 years ago
Write an equation for each question, please! (t = years after 1960)
VashaNatasha [74]

Answer:

<u>1)</u> y = - 0.54(25)

<u>2)</u> 0.4 = 98 - 0.54t

<u>3)</u> 0.6 = 2 + 0.54t

<u>4)</u> 98 - 0.54t = 2(2 + 0.54t)

(you asked for equations, so I <em>think </em>these are the equations you are looking for!)

Step-by-step explanation:

1)

<em>(given)</em> y = 98 - 0.54t

<em>(plugging in years after 1960)</em> y = - 0.54(25)

2)

<em>(given)</em> y = 98 - 0.54t

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<em>(given)</em> y = 2 + 0.54t

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4)

<em>(given)</em>

<em>(male)</em> y = 98 - 0.54t

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Answer:

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The only two items that work are

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