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arlik [135]
3 years ago
10

2.2.3*-1-3*3*- 3x-1​

Mathematics
1 answer:
Rainbow [258]3 years ago
7 0

Answer:

i got 27x-3.3 by simplifying  

Step-by-step explanation:

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The table below shows a proportional relationship between the number of songs downloaded and the total cost. Determine what valu
Ivan

Answer:

The cost for 5 songs is $5.35

Step-by-step explanation:

Find the unit rate for 1 song by dividing the total cost for 3 songs by 3

$3.21 ÷ 3 = $1.07

The unit rate is $1.07 per song, so multiply that by 5 to find the total cost for 5 songs

$1.07 * 5 = $5.35

6 0
2 years ago
state the domain and range of the given relation and then determine if it is a function -1,3 0,3 1,3 2,3 3,3​
cupoosta [38]

Answer:

D{-1, 0, 1, 2, 3}       R{3}

Step-by-step explanation:

It is a function. Although the range is all the same number, it still qualifies as a function

7 0
4 years ago
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Make a conjecture about the following statement angle ABC and CBD are adjacent
mote1985 [20]
Answer is A.
the two angles are share a side (side BC)
hope it helps
8 0
4 years ago
Simplify the given equation.
spin [16.1K]

Answer:

x=8/9

Step-by-step explanation:

5x+2(x-3)=-2(x-1)

5x+2x-6=-2x+2

7x-(-2x)-6=2

7x+2x=2+6

9x=8

x=8/9

8 0
3 years ago
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An indoor track is made up of a rectangular region with two semi-circles at the ends. The distance around the track is 400 meter
dybincka [34]

Answer:

width of rectangle = 2R = (200/π) = 400/π meters

length of rectangle = 400 - π(200/π) = 400 - 200 = 200 meters

Step-by-step explanation:

The distance around the track (400 m) has two parts:  one is the circumference of the circle and the other is twice the length of the rectangle.

Let L represent the length of the rectangle, and R the radius of one of the circular ends.  Then the length of the track (the distance around it) is:

Total = circumference of the circle + twice the length of the rectangle, or

         =                    2πR                    + 2L    = 400 (meters)  

This equation is a 'constraint.'  It simplifies to πR + L = 400.  This equation can be solved for R if we wish to find L first, or for L if we wish to find R first.  Solving for L, we get L = 400 - πR.

We wish to maximize the area of the rectangular region.  That area is represented by A = L·W, which is equivalent here to A = L·2R = 2RL.  We are to maximize this area by finding the correct R and L values.

We have already solved the constraint equation for L:  L = 400 - πR.  We can substitute this 400 - πR for L in

the area formula given above:    A = L·2R = 2RL = 2R)(400 - πR).  This product has the form of a quadratic:  A = 800R - 2πR².  Because the coefficient of R² is negative, the graph of this parabola opens down.  We need to find the vertex of this parabola to obtain the value of R that maximizes the area of the rectangle:        

                                                                   -b ± √(b² - 4ac)

Using the quadratic formula, we get R = ------------------------

                                                                            2a

                                                   -800 ± √(6400 - 4(0))           -1600

or, in this particular case, R = ------------------------------------- = ---------------

                                                        2(-2π)

            -800

or R = ----------- = 200/π

            -4π

and so L = 400 - πR (see work done above)

These are the dimensions that result in max area of the rectangle:

width of rectangle = 2R = (200/π) = 400/π meters

length of rectangle = 400 - π(200/π) = 400 - 200 = 200 meters

5 0
3 years ago
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