作业帮π×(10÷2)2×36=π×(20÷2)2×x如何解
来源:学生作业帮助网 编辑:作业帮 时间:2024/06/10 15:46:29
问一句3÷4π是3/(4π)还是3π/42÷π是不是2/π
sin(A+π/4)=7√2/10,A属于(π/4,π/2)cos(A+π/4)=-√2/10cosA=cos[(A+π/4)-π/4]=cos(A+π/4)cosπ/4-sin(A+π/4)sinπ
平方是^2(-2πr^2h+3πrh^2)÷(2/1πrh)=πrh(-2r+3h)/(1/2πrh)=6h-4
(cosx-sinx)(√2)/2=(√2)/10cosx-sinx=1/5cosx=4/5sinx=3/5sin2x=24/25cos2x=7/25sin[2x+(π/3)]=sin2xcos(π/
1sin(x-π/4)=√(1-cos²(x-π/4))=7√2/10∴sinx=sin[(x-π/4)+π/4]=sin(x-π/4)cosπ/4+cos(x-π/4)sinπ/4=4/5
2πr^2=(r+5)^2π2r^2=(r+5)^22r^2=r^2+10r+25r^2-10r-25=0r^2-10r+25=50(r-5)^2=50r-5=±5√2r1=5+5√2r2=5-5√2
y=2[cos(x+π/4)]^2-1=cos[2(x+π/4)]=cos(2x+π/2)=-sin2x∴函数的最小正周期是2π/2=π.并且函数是奇函数,最小值是-1,最大值是1.
[cos(a-π)/sin(π-a)]sin(a-π/2)cos(π/2+a)=[-cosa/sina](-cosa)(-sina)=-cos^2a再问:还有一个,在下面~再答:化简[cos(2π-a
1∏≈3.142∏≈6.283∏≈9.424∏≈12.565∏≈15.76∏≈18.847∏≈21.988∏≈25.129∏≈28.2610∏≈31.411∏≈34.5412∏≈37.6813∏≈40
y=cos(3/10π-2x)+sin(2x+2/10π)=2sin(2x+2/10π)单调增区间:2kπ-π/2≤2x+2π/10≤2kπ+π/2kπ-7π/20≤x≤kπ+3π/20在x∈[0,π
.难道不是π/4
因为-π/2-π又因为-π/2
2(πr^2)+2πr*h是圆柱体外表面面积r--圆柱体半径πr^2--上底或下底面积2(πr^2)--上下底总面积2πr*h--圆柱体侧表面面积如果半径r=1;圆柱体高h=2π;那末,圆柱体外表面面
将S表=2πr*(rh)化解S表=2πr*(rh)=2πr^22πrh圆柱的面积等于上下2个圆面积(2πr^2)加上圆柱的侧面积(周长乘高即drh=2πrh)
答案是-72?再问:̫���˰ɣ�
由已知知:tan(a)=tan(3π+a)=2;未知式化简:sin(a-3π)=-sina;cos(π-a)=-cosa;-2cos(π/2+a)=2sina;-sin(-a)=sina;cos(π+
你这题有问题的2kπ+π
8πr+2πr²=42π4r+r²=21r²+4r-21=0(r-3)(r+7)=0r=3r=7(不合题意,舍去)r=3要采纳最先回答的正确答案,是对答题者劳动的尊重.祝
已知cos(X-π/4)=√2/10,X∈(π/2,3π/4),所以sin(X-π/4)=(7/10)√21.sinx=sin[(x-π/4)+π/4]=sin(X-π/4)cosπ/4)+cos(X