Pure Math 30: Explained! 81

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4 www.puremath30.com 81

Part I: General Form General Form of a Conic: Ax + Cy + Dx + Ey + F = 0 A & C are useful in finding out which conic is produced: A = C Circle AC > 0 Ellipse A or C = 0 Parabola AC < 0 Hyperbola Example 1: What shape is the graph of 3x y + x - 3 = 0 Hyperbola, since AC = (3)(-) = -6, which is negative. Example : What shape is the graph of y + x - y - 5 = 0 Parabola, since A = 0 Questions: Based on the A & C values, determine the type of conic for each of the following: 1) 9x - 4y - 8y + 3 = 0 ) -y - x + 0y - 47 = 0 3) y + 6y = 3x - 1 4) 5x - 9y - 7y - 100x - 69 = 0 Why is there no B? The Bxy term involves conic rotation, and is excluded from the Pure Math 30 curriculum. 5) 4x + y - 8x + 4y - 9 = 0 6) 9x - 4y - 40y - 136 = 0 7) x + 6x + 8y + 33 = 0 8) 4x + 4y - 8x + 4y - 9 = 0 Answers: 1) Hyperbola ) Parabola 3) Parabola 4) Hyperbola 5) Ellipse 6) Hyperbola 7) Parabola 8) Circle www.puremath30.com 8

Part II: Standard To General Form Converting from Standard To General Form: This is done by multiplying both sides of the equation by the common denominator, then simplifying: Example 1: Convert 5 y+3= (x+3) to general form: 4 Multiply both sides by the common denominator of 4: 5 4[ y+3 ] =4 (x+3) 4 5 4y +1 = 4 (x + 3) 4 4y +1 = 5(x + 3) 4y +1 = 5(x + 3)(x + 3) ( ) 4y +1 = 5 x +6x +9 4y +1 = 5x + 30x +45 0 = 5x + 30x - 4y + 33 Example : Convert (x -10) y 10 5 to general form: Multiply both sides by the common denominator of 50: (x - 10) y 50 + = 50 1 10 5 [ ] 5(x - 10) + y = 50 5(x - 0x +100)+ y = 50 5x - 100x +500 + y = 50 5x + y - 100x +450 = 0 www.puremath30.com 83

Part II: Standard To General Form Questions: Convert each of the following to general form: 1) 9x 4(y +1) - = -1 36 36 4) -(y - 5) = x - 3 ) x (y + 5) - =1 4 9 5) 4(x - 1) +(y + ) = 17 3) 1 y+3=- (x+3) 8 6) (x - ) (y - 4) - =1 9 5 www.puremath30.com 84

Answers: Conics Lesson 4 Part II: Standard To General Form 1. 9x 4(y +1) 4. 36 - = 36[ -1] 36 36 9x - 4(y +1) = -36 9x - 4(y +1)(y +1) = -36 9x - 4(y + y +1) = -36 9x - 4y - 8y - 4 = -36 9x - 4y - 8y + 3 = 0. x (y +5) 36 - = 36[ 1] 5. 4 9 9x - 4(y +5) = 36 9x - 4(y +5)(y +5) = 36 9x - 4(y +10y + 5) = 36 9x - 4y - 40y - 100 = 36 9x - 4y - 40y - 136 = 0 -(y - 5) = x - 3 -(y - 5)(y - 5) = x - 3 -(y - 10y + 5) = x - 3 -y + 0y - 50 = x - 3 0 = y + x - 0y +47 4(x - 1) +(y + ) = 17 4(x - 1)(x - 1)+(y + )(y + ) = 17 4(x - x +1)+(y +4y +4) = 17 4x - 8x +4+ y +4y +4 = 17 4x + y - 8x +4y +8 = 17 4x + y - 8x +4y - 9 = 0 3. 1 8[ y+3 ] =8 - (x+3) 8 8y + 4 = -(x + 3) 8y + 4 = -(x + 3)(x + 3) 8y + 4 = -(x +6x +9) 8y + 4 = -x - 6x - 9 x +6x +8y + 33 = 0 6. (x - ) (y - 4) 5 - = 5 1 9 5 5(x - ) - 9(y - 4) = 5 [ ] 5(x - )(x - ) - 9(y - 4)(y - 4) = 5 5(x - 4x +4) - 9(y - 8y +16) = 5 5x - 100x +100-9y +7y - 144 = 5 5x - 9y - 100x +7y - 69 = 0 www.puremath30.com 85

Part III: General To Standard Form Converting from General To Standard Form: This is done by completing the square: Example 1: Convert x + 3y + 10x - 30y + 91 = 0 to standard form. Step 1: Group terms with x, group terms with y, and take the constant to the other side. x + 10x + 3y - 30y = -91 Step : Put brackets around the x-terms, and put brackets around the y-terms, leaving a space. (x + 10x ) + (3y - 30y ) = -91 Step 3: Make sure the squared terms have a coefficient of 1. If they don t, factor that number out. (x + 10x ) + 3(y - 10y ) = -91 Step 4: Divide the x-coefficient by, square the result, and add inside the bracket. Repeat for y. (x + 10x + 5) + 3(y - 10y + 5) = -91 Step 5: Whatever you do to one side, you must do to the other! On the left, you have now added 5 in the x-brackets, and 75 in the y-brackets (multiplying the 3 through the brackets). Add 5 + 75 to the other side to keep things balanced. (x + 10x + 5) + 3(y - 10y + 5) = -91 + 5 + 75 Step 6: Factor the expressions. (x + 5) + 3(y 5) = 9 Step 7: Divide both sides by 9 so the equation equals 1, which is required for standard form: (x + 5) 3(y - 5) 9 + = 9 9 9 (x + 5) (y - 5) + = 1 9 3 Example : Convert 3x + 1x - 4y - 1 = 0 to standard form. Step 1: Group terms with x. Since there is no y, take both the 4y & 1 to the other side. 3x +1x = 4y + 1 Step : Put brackets around the x-terms, leaving a space. (3x +1x ) = 4y + 1 Step 3: Make sure the squared terms have a coefficient of 1. If they don t, factor that number out. 3(x +4x ) = 4y + 1 Step 4: Divide the x-coefficient by, square the result and add inside the bracket. 3(x +4x + 4) = 4y + 1 + 1 Step 5: Whatever you do to one side, you must do to the other! On the left, you have added 1 (multiplying the 3 into the brackets), so add 1 to the other side too. 3(x +4x + 4) = 4y + 1 + 1 Step 6: Factor and simplify the expressions. 3(x + ) = 4y + 4 Step 7: Take this to parabola standard form. 3(x + ) 4(y + 6) = 4 4 3 y + 6 = (x + ) 4 If you are ever asked to graph a conic presented in general form, you must first convert it to standard form. Once converted, you can use rules from previous lessons to draw the graph. www.puremath30.com 86

Part III: General To Standard Form Questions: Convert each of the following to standard form. 1) 9x 4y 8y + 3 = 0 5) 4x + y -8x + 4y 9 = 0 ) -y x + 0y 47 = 0 6) 9x -4y -40y -136 = 0 3) y + 6y = 3x - 1 7) x + 6x + 8y + 33 = 0 4) 5x 9y -7y 100x 69 = 0 www.puremath30.com 87

Answers: 1.. Conics Lesson 4 Part III: General To Standard Form 9x - 4y - 8y + 3 = 0 9x - 4(y + y) = -3 9x - 4(y + y +1) = -3-4 9x - 4(y +1) = -36 9x 4(y +1) -36 - = 36 36 36 x (y +1) - = -1 4 9 -y - x + 0y - 47 = 0 -y + 0y = x + 47 -(y - 10y) = x + 47 -(y - 10y + 5) = x + 47-50 -(y - 5) = x - 3 5. 6. 4x + y - 8x + 4y - 9 = 0 4x - 8x + y + 4y - 9 = 0 4(x - x)+(y +4y) = 9 4(x - x +1)+(y +4y +4) = 9+4+4 4(x - 1) +(y + ) = 17 4(x - 1) (y + ) 17 17 9x - 4y - 40y - 136 = 0 9x - 4(y +10y) = 136 9x - 4(y +10y + 5) = 136-100 9x 4(y +5) 36 - = 36 36 36 x (y +5) - =1 4 9 3. y + 6y = 3x - 1 7. (y + 6y + 9) = 3x - 1+9 4. (y + 3) = 3x - 3 (y + 3) = 3(x - 1) 1 x - 1= (y + 3) 3 5x - 9y - 7y - 100x - 69 = 0 5x - 100x - 9y - 7y = 69 5(x - 4x) - 9(y +8y) = 69 5(x - 4x +4) - 9(y +8y +16) = 69+100-144 5(x - ) 9(y +4) 5 - = 5 5 5 (x - ) (y +4) - =1 9 5 x + 6x + 8y + 33 = 0 (x +6x) = -8y - 33 (x +6x +9) = -8y - 33+9 (x + 3) = -8y - 4 (x + 3) = -8(y + 3) 1 y+3=- (x+3) 8 www.puremath30.com 88

Part IV: Diploma Style Example 1: An ellipse has its centre at (4,-) and passes through the points (11,-) & (4, -6). Determine the equation of the ellipse Step 1: Draw in the points given: Step : By symmetry, you can find the following points on the ellipse as well. Step 3: Read off the a & b values. Example : A vertical parabola has a vertex at (-3, -) and passes through the point (-1, 7). It s a vertical parabola, so the standard form equation is y - k = a(x - h). All you need to do is plug in the numbers and solve for the a-value. y - k = a(x - h) 7 -(-) = a(-1-(-3)) 9 = 4a 9 a= 4 Example 3: Given the ellipse ( x- ) ( y+4 ) Step 4: plug everything into your equation. (x - h) (y - k) a b (x - 4) (y -(-)) 7 4 (x - 4) (y + ) 49 16, determine the new 9 16 equation after a translation 3 units up and 7 units right. First state your original centre point (,-4) Then apply the transformation to this point: (+7, -4+3) The new centre is (9,-1) 9 The equation is: y+= (x+3) 4 Since there are no other transformations, the new equation is: ( x-9 ) (y +1) 9 16 www.puremath30.com 89

Example 4: The general form of a particular ellipse is x + y - x + 3y - 9 = 0. If this conic is translated units left and 1 unit down, determine the new general equation. Replace x with (x + ) to represent units left, and replace y with (y + 1) to represent 1 unit down. (x + ) +(y +1) - (x + )+ 3(y +1) - 9 = 0 ( ) ( ) x +4x +4 + y + y +1 - (x + )+ 3(y +1) - 9 = 0 x +8x +8+ y + y +1- x - 4+ 3y + 3-9 = 0 x + y +6x +5y - 1= 0 Example 5: Determine the y intercepts of x +y -x+5y-6=0 The y intercepts of x + y - x +5y - 6 = 0 can be found by substituting zero for x, then solving for y. x + y - x +5y - 6 = 0 y +5y - 6 = 0 ( y+6)( y-1 ) =0 y = -6, 1 Remember that y-intercepts are actually a coordinate with x = 0, so write the y-intercepts as (0, -6) and (0,1) Example 6: The circle x +y =1 is translated h units left and k units down, where h > 0 and k > 0. Determine the x-intercepts Replace x with (x + h) and y with (y + k) to account for the transformations. x +y =1 (x + h) +(y + k) = 1 Conics Lesson 4 Part IV: Diploma Style To find the x-intercepts, let y = 0. (x + h) +(0 + k) = 1 ( ) (x + h) + k = 1 (x+h) +k =1 (x + h) = 1- k x +h = ± 1- k x=± 1-k -h www.puremath30.com 90

Part IV: Diploma Style Questions: 1) An ellipse has a centre at (-4, 6) and passes through (-4, 9) and (, 6). Determine the standard form equation. ) An ellipse has a centre at (3, ) and passes through (5, ) and (3, -3). Determine the standard form equation. 3) A horizontal parabola has a vertex at (3, ) and passes through (-13, 4). 4) A vertical parabola has a vertex at (-3, 5) and passes through (-1, -4). www.puremath30.com 91

Part IV: Diploma Style y +1 4 9 5) Given the ellipse ( ) ( ) translation units right and units down. x-3, determine the new equation after a 6) Given the ellipse ( x+5 ) y, determine the new equation after a 5 4 translation 3 units left and 4 units down. 7) The general form of a particular ellipse is x + y - x +y -4 = 0. If this conic is translated 1 unit right and 3 units up, determine the new general equation. 8) Determine the x intercepts of x +y -x+5y-6=0 www.puremath30.com 9

Part IV: Diploma Style 1) (x +4) (y - 6) 36 9 ) (x - 3) (y - ) 4 5 3) x-h=a(y-k) -13-3 = a(4 - ) -16 = 4a -4 = a The equation is : x - 3 = -4(y - ) 4) y - k = a(x - h) -4-5 = a(-1+ 3) -9 = 4a 9 - =a 4 The equation is : 9 y - 5 = - (x + 3) 4 5)First state your original centre point (3,-1) Then apply the transformation to this point: (3+, -1-) The new centre is (5,-3) The new equation is ( ) ( ) x-5 y+3 4 9 7) x + y - x +y -4 = 0 ( x -1) + ( y -3) -( x -1) + ( y -3) -4 =0 x -x +1+ y - 6y + 9 - x +1+ y - 6-4 = 0 x + y - 3x - 4y +1 = 0 6)First state your original centre point (-5, 0) Then apply the transformation to this point: (-5-3, 0-4) The new centre is (-8,-4) The new equation is ( ) ( ) x+8 y+4 5 4 8)The x intercepts of x + y - x +5y - 6 = 0 can be found by substituting zero for y then solving for x. x + y - x +5y - 6 = 0 x +(0) - x +5(0) - 6 = 0 x -x-6=0 ( x-3)( x+ ) =0 x = 3, - The x-intercepts are (-, 0) and (3,0) www.puremath30.com 93

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