|
问题:解二元一次方程组一.30amp;#178;+(60x)amp;#178;=(75x)amp;#178;二.(X-50)【800-20(X-60)】=20230三.(X-1)amp;#178;+Xamp;#178;=(X+1)amp;#178;四.π(0.5x-3)amp;#178;=九分之四π(0.5X)amp;#178;
答案:↓↓↓ 洪益州的回答: 网友采纳 原式=900+3600x²=5625x² 900=2025x²x²=36/81 【∵36=±6x(±6) 81=±9x(±9)】∴x=±(6/9) 原式=(X-50)[800-20(X-60)]=12000 (X-50)[800-20(X-50-10)]=12000 800X(x-50)-20(x-50)²+200(x-50)=12000 -20(x-50)²+1000(x-50)-12000=0 (x-50)²-50(x-50)+600=0 (x-50-30)(x-50-20)=0 x=80 或x=70 原式=X²=(X+1)²-(X-1)²X²=(X+1-X+1)(X+1+X-1) X²=4XX²-4X=0 X(X-4)=0 X=4或X=0 原式=π【(4/9)X(0.5X)²-(0.5x-3)²】=0 【∵4/9 = 2X2/(3X3)】 ∴π【(2/3)²X(0.5X)²-(0.5x-3)²】=0 πX(2/3-0.5x+3 )X(0.5X-0.5x+3)X(2/3+0.5x-3 )X(0.5X+0.5x-3)=0 πX3X(11/3)X(0.5x-7/3)X(x-3)=0 11π(0.5x²-23/6x+7)=0 11π{0.5【x²-23/3x+(23/3)²】+7-529/18}=0 11π【0.5(x-23/3)²-403/18】=0 0.5(x-23/3)²-403/18=0 0.5(x-23/3)²=403/18 x=23/3±根号403/3=(23±根号403)/3 话说第四题我不能确定 | 
