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MAVERICK [17]
3 years ago
6

Given 2 angles that measure 50 and 80 and a side that measure 4 feet how many triangles if any can be condctuted

Mathematics
1 answer:
Nostrana [21]3 years ago
5 0

Answer:

The number of unique triangles that can be constructed from the given values is; Only one triangle

Step-by-step explanation:

We are given the 2 angles of a triangle as;  

∠1 = 50°  

∠2 = 80°  

Now, we know that sum of angles in a triangle is 180°. This means that if the third angle is denoted as ∠3, then we have;  

∠1 + ∠2 + ∠3 = 180°  

Thus;  

∠3 = 180 - (∠1 + ∠2)  

∠3 = 180 - (50 + 80)  

∠3 = 180 - 130  

∠3 = 50°  

Thus; ∠1 = ∠3 = 50°  

A triangle with two equal angles is called an isosceles triangle. Which means that it will also have 2 of its' sides to be equal.  

Thus, in conclusion, only one unique triangle can be drawn.

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Step-by-step explanation:

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3 years ago
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Please help. I will mark BRAINLIEST!<br> Match each equation with a graph above.
sweet-ann [11.9K]

Answer:

Orange, Green, Red, Blue

Step-by-step explanation:

1st equation

When x = 0,  -2 raised to the 0 power is -1 so y would be -1.

When x = 1, the exponent would be -1.  -2 to the power of -1 is the inverse of -2 which is - 1/2.

The only colored graph that has points at (0, -1) and (1, -1/2) is the orange graph.

2nd equation

When x = 0, 2 raised to the 0 power is 1 so y=1

When x =1, 2 raised to the power of 1 is 2 so y = 2

The graph that has points at (0, 1) and (1, 2) is the green graph

3rd equation

When x = 0, 2 raised to the -0 power is still equal to 1 so y would be 1.

When x = 1, 2 raised to the -1 power is the inverse of 2 which is 1/2.

The only graph with coordinates (0, 1) and (1, 1/2) is the red graph

4th equation

Only color left is the blue graph but the same concept can be used.

8 0
3 years ago
What is 3246×456785555555
Lilit [14]

We could simplify 456785555555 by putting it into scientific notation:

4.56785e11

Now, we can multiply.

(4.56785e11)(3246)=1.482725913e15

If you want your answer in standard notation:

1482725913000000

6 0
3 years ago
Consider the initial value problem 2ty' = 6y, y(1) =-2. Find the value of the constant C and the exponent r so that y = Ctr is t
ELEN [110]

The correct question is:

Consider the initial value problem

2ty' = 6y, y(1) = -2

(a) Find the value of the constant C and the exponent r such that y = Ct^r is the solution of this initial value problem.

b) Determine the largest interval of the form a < t < b on which the existence and uniqueness theorem for first order linear differential equations guarantees the existence of a unique solution.

c) What is the actual interval of existence for the solution obtained in part (a) ?

Step-by-step explanation:

Given the differential equation

2ty' = 6y

a) We need to find the value of the constant C and r, such that y = Ct^r is a solution to the differential equation together with the initial condition y(1) = -2

Since Ct^r is a solution to the initial value problem, it means that y = Ct^r satisfies the said problem. That is

2tdy/dt - 6y = 0

Implies

2td(Ct^r)/dt - 6(Ct^r) = 0

2tCrt^(r - 1) - 6Ct^r = 0

2Crt^r - 6Ct^r = 0

(2r - 6)Ct^r = 0

But Ct^r ≠ 0

=> 2r - 6 = 0 or r = 6/2 = 3

Now, we have r = 3, which implies that

y = Ct^3

Applying the initial condition y(1) = -2, we put y = -2 when t = 1

-2 = C(1)^3

C = -2

So, y = -2t^3

b) Let y = F(x,y)................(1)

Suppose F(x, y) is continuous on some region, R = {(x, y) : x_0 − δ < x < x_0 + δ, y_0 −ę < y < y_0 + ę} containing the point (x_0, y_0). Then there exists a number δ1 (possibly smaller than δ) so that a solution y = f(x) to (1) is defined for x_0 − δ1 < x < x_0 + δ1.

Now, suppose that both F(x, y)

and ∂F/∂y are continuous functions defined on a region R. Then there exists a number δ2

(possibly smaller than δ1) so that the solution y = f(x) to (1) is

the unique solution to (1) for x_0 − δ2 < x < x_0 + δ2.

c) Firstly, we write the differential equation 2ty' = 6y in standard form as

y' - (3/t)y = 0

0 is always continuous, but -3/t has discontinuity at t = 0

So, the solution to differential equation exists everywhere, apart from t = 0.

The interval is (-infinity, 0) n (0, infinity)

n - means intersection.

5 0
4 years ago
Which calculation will ALWAYS give a result greater than 1? A.8/9 × a number less than 1 B.1 2/5 − a fraction less than 25 C. 7
Paul [167]

Answer: B.1 2/5 − a fraction less than 2/5

Step-by-step explanation:

Question was not formatted properly and in the proper format, the above is the answer.

1²/₅ - ²/₅ = 1

Any number therefore that is lower than ²/₅ will when subtracted from 1²/₅ give an answer greater than 1 because when ²/₅  was subtracted from  1²/₅, it gave 1 as an answer.

7 0
3 years ago
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