What is the answer to this problem

Mathematics

2 answers:

sineoko [7]3 years ago

6 0

X=0 is the answer.
6(x + -3) + 10 = 2(3x + -4)
Reorder the terms: 6(-3 + x) + 10 = 2(3x + -4) (-3 * 6 + x * 6) + 10 = 2(3x + -4) (-18 + 6x) + 10 = 2(3x + -4)
Reorder the terms: -18 + 10 + 6x = 2(3x + -4)
Combine like terms: -18 + 10 = -8 -8 + 6x = 2(3x + -4)
Reorder the terms: -8 + 6x = 2(-4 + 3x) -8 + 6x = (-4 * 2 + 3x * 2) -8 + 6x = (-8 + 6x)
Add '8' to each side of the equation. -8 + 8 + 6x = -8 + 8 + 6x
Combine like terms: -8 + 8 = 0 0 + 6x = -8 + 8 + 6x 6x = -8 + 8 + 6x
Combine like terms: -8 + 8 = 0 6x = 0 + 6x 6x = 6x
Add '-6x' to each side of the equation. 6x + -6x = 6x + -6x
Combine like terms: 6x + -6x = 0 0 = 6x + -6x
Combine like terms: 6x + -6x = 0 0 = 0

nlexa [21]3 years ago

5 0

To your problem the answer is
x=0

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Here, the firework is launched from point B at the rate of 10 feet/second and when it is 40 feet above the ground it reaches point A,

that means h = 40 feet and $\frac{dh}{dt}$ = 10 feet/second.

C is the observer's position which is 50 feet away from the point B, so x = 50 feet.

$\frac{d\alpha}{dt}= [\frac{1}{1+ \frac{40^2}{50^2}}] *\frac{1}{50} *10\\ \\ \frac{d\alpha}{dt} = [\frac{1}{1+\frac{16}{25}}] *\frac{1}{5}\\ \\ \frac{d\alpha}{dt} = [\frac{25}{41}] *\frac{1}{5}\\ \\ \frac{d\alpha}{dt}= \frac{5}{41} =0.1219512$