Tìm x a) (3x-5)(5-3x)+9(x+1)^2=30 b) (x+4)^2 – (x+1)(x-1)=16 27/07/2021 Bởi Arianna Tìm x a) (3x-5)(5-3x)+9(x+1)^2=30 b) (x+4)^2 – (x+1)(x-1)=16
a) (3x – 5)(5 – 3x) + 9(x + 1)² = 30 ⇔ 15x – 9x² – 25 + 15x + 9(x² + 2x + 1) = 30 ⇔ 15x – 9x² – 25 + 15x + 9x² + 18x + 9 = 30 ⇔ 48x = 46 ⇔ x = $\frac{23}{24}$ b) (x + 4)² – (x + 1)(x – 1) = 16 ⇔ x² + 8x + 16 – x² + 1 = 16 ⇔ 8x = -1 ⇔ x = -$\frac{1}{8}$ Bình luận
Đáp án: a)(3x-5)(5-3x)+9(x+1)^2=30 15x-9x²-25+15x+9(x²+2x+1)=30 15x-9x²-25+15x+9x²+18x+9=30 (-9x²+9x²)+(15x+15x+18x)+(-25+9)=30 48x-16=30 48x =30+16 48x =46 x =48/46 Vậy x=48/46 b) ( x+4)²-(x+1)(x-1)=16 x²+2.x.4+16-x²-x+x-1=16 (x²-x²)+(-x+x)+8x+(16-1)=16 8x+16-1=16 8x+16= 17 8x =-1 x=-1/8 Vậy x=1/8 xin ctlhn ạ ^^ Bình luận
a) (3x – 5)(5 – 3x) + 9(x + 1)² = 30
⇔ 15x – 9x² – 25 + 15x + 9(x² + 2x + 1) = 30
⇔ 15x – 9x² – 25 + 15x + 9x² + 18x + 9 = 30
⇔ 48x = 46
⇔ x = $\frac{23}{24}$
b) (x + 4)² – (x + 1)(x – 1) = 16
⇔ x² + 8x + 16 – x² + 1 = 16
⇔ 8x = -1
⇔ x = -$\frac{1}{8}$
Đáp án:
a)(3x-5)(5-3x)+9(x+1)^2=30
15x-9x²-25+15x+9(x²+2x+1)=30
15x-9x²-25+15x+9x²+18x+9=30
(-9x²+9x²)+(15x+15x+18x)+(-25+9)=30
48x-16=30
48x =30+16
48x =46
x =48/46
Vậy x=48/46
b) ( x+4)²-(x+1)(x-1)=16
x²+2.x.4+16-x²-x+x-1=16
(x²-x²)+(-x+x)+8x+(16-1)=16
8x+16-1=16
8x+16= 17
8x =-1
x=-1/8
Vậy x=1/8
xin ctlhn ạ ^^