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kudzordzifrancis

QUESTION 1


The given equation is


[tex]w^2+13w+42=0[/tex]


Split the middle term to get;


[tex]w^2+7w+6w+42=0[/tex]


Factor to get,


[tex]w(w+7)+6(w+7)=0[/tex]


We factor further to obtain,


[tex](w+7)(w+6)=0[/tex]


Apply the zero product property to get,


[tex](w+7)=0\:or\:(w+6)=0[/tex]


[tex]w=-7\:or\:w=-6[/tex]


QUESTION 2


The given equation is


[tex]v^2-8v-33=0[/tex]


Split the middle term to get;


[tex]v^2-11v+3v-33=0[/tex]


Factor to get,


[tex]v(v-11)+3(v-11)=0[/tex]


We factor further to obtain,


[tex](v-11)(v+3)=0[/tex]


Apply the zero product property to get,


[tex]v-11=0\:or\:v+3=0[/tex]


[tex]v=11\:or\:v=-3[/tex]


QUESTION 3


The length of the photo is [tex]l=10 in.[/tex]


The width of the photo is [tex]w=8 in.[/tex]


The length of the frame is [tex]L=10+2x in.[/tex]


The width of the frame is [tex]W=8+2x in.[/tex]


The area  total area of the frame is [tex]=(10+2x)(8+2x) in^2[/tex]


The total of the frame of the photo must be 120.


This implies that,


[tex](10+2x)(8+2x)  =120[/tex]


[tex]\Rightarrow (10+2x)(8+2x) -120=0[/tex]


We rearrange and simplify to get,


[tex]\Rightarrow 4x^2+20x+16x+80-120=0[/tex]


[tex]4x^2+36x-40=0[/tex]


We divide through by 4 to obtain;


[tex]x^2+9x-10=0[/tex]

Split the middle term

[tex]x^2+10x-x-10=0[/tex]

Factor

[tex]x(x+10)-1(x+10)=0[/tex]


[tex](x+10)(x-1)=0[/tex]


[tex]x=-10\: or\:1[/tex]


Since x is length, [tex]x=1[/tex]


The dimensions of the frame are


 [tex]L=10+2(1) =12in.[/tex]


[tex]W=8+2(1) =10in.[/tex]


QUESTION 4

[tex]f(x)=x^2+2x-35[/tex]

Equate the function to zero

[tex]x^2+2x-35=0[/tex]

Split the middle term

[tex]x^2+7x-5x-35=0[/tex]

Factor

[tex]x(x+7)-5(x+7)=0[/tex]


[tex](x+7)(x-5)=0[/tex]


[tex](x+7)=0,(x-5)=0[/tex]


[tex]x=-7,x=5[/tex]


Hence the other zero is 5



TaeKwonDoIsDead

Answer:

1. w = -6, -7

2. v = -3, 11

3. Frame's width all around is same, x, and x = 1 inch

4. The other zero of the function is 5 ( x = 5 )


Step-by-step explanation:


1.

For the question given  [tex]w^2+13w+42=0[/tex] , we need to find 2 numbers such that their sum is equal to the number before x (which is 13) and their product is equal to the constant (which is 42) AND THEN replace 13w with those 2 numbers(and w).

Such two numbers are 7 and 6

Now we can write:

[tex]w^2+7w+6w+42=0[/tex]

Then we can group the first 2 terms and last 2 terms and take common, then solve.

[tex]w^2+7w+6w+42=0\\w(w+7)+6(w+7)=0\\(w+6)(w+7)=0[/tex]

Since two expressions' product is equal to 0, either w+6 = 0 or w+7 = 0

w+6=0

w = -6

and

w+7 = 0

w= -7


Hence, w = -6, -7


2.

This is similar to Question #1, so we need two numbers that multiplied gives us -33 and added gives us -8.

Such two numbers are -11 and +3

Thus we can replace -8 with this and take common and then solve for v:

[tex]v^2-8v-33=0\\v^2+3v-11v-33=0\\v(v+3)-11(v+3)=0\\(v-11)(v+3)=0[/tex]

So either v-11 =0 or v+3 = 0

v - 11 = 0

v = 11

and

v+3=0

v = -3


Hence, v = -3, 11


3.

Since total area of frame & photo is 120, we need an expression for frame & photo and equate that to 120.


If picture's width is 10 and two sides there is frame of x inches each, so width of whole this is 10 +2x

Similarly, the length is 8 and two sides there is frame of x inches each, so length of whole is 8 +2x

Area of rectangle is length * width

Thus, we have  [tex](10+2x)(8+2x)=120[/tex]

We need to find x, so we solve the equation above:

[tex](10+2x)(8+2x)=120\\80+20x+16x+4x^2=120\\4x^2+36x+80-120=0\\4x^2+36x-40=0\\x^2+9x-10=0\\x^2+10x-x-10=0\\x(x+10)-1(x+10)=0\\(x-1)(x+10)=0\\x=1, -10[/tex]

Since length cannot be negative, x = 1 only


4.

Factoring the original equation as we did earlier, we see "what two numbers multiplied gives us -35 and added gives us +2?"

Those 2 numbers are +7 and -5

Thus we can write, group, and solve for x:

[tex]x^2+2x-35=0\\x^2+7x-5x-35=0\\x(x+7)-5(x+7)=0\\(x-5)(x+7)=0[/tex]


So x-5 =0 or x+7 = 0

x+7=0

x = -7 (already given in the problem)

and

x-5=0

x=5

Hence, the other zero of the function is 5




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