大师作文网m.n互质,5m+7n=129,则m+n=?
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/11 05:10:43
∵1m+1n=7m+n,∴m+nmn=7m+n,∴(m+n)2=7mn,∴原式=n2+m2mn=(n+m)2−2mnmn=7mn−2mnmn=5.故答案为:5.
[5(m+n)2(m-n)]3÷【3(m+n)2(n-m)]2=125(m+n)的6次方(m-n)³÷9(m+n)的4次方(m-n)²=125/9(m+n)²(m-n)如
(m+5n)^2-2(5n+m)(n-3m)+(3m-n)^2=(m+5n)^2-2(m+5n)(n-3m)+(n-3m)^2=[(m+5n)-(n-3m)]^2=(4m+4n)^2=16(m-n)^
1/m+1/n=(m+n)/mn=7/(m+n)(m+n)²=7mnm²+n²+2mn=7mnm²+n²=5mn所以n/m+m/n=(n²+
5(m+n)(m-n)-2(m+n)^2-3(m-n)^2=5(m^2-n^2)-2(m^2+2mn+n^2)-3(m^2-2mn+n^2)=5m^2-5n^2-2m^2-4mn-2n^2-3m^2+
3m+2n=7(1)3m-n=5(2)(1)-(2)得:2n+n=7-5=2;n=2/3;带入(1)得:3m+4/3=7;3m=17/3;m=17/9;如果本题有什么不明白可以追问,
已知,m=5又4/7,n=4又3/7,可得:m+n=10,m-n=1又1/7=8/7.[-3又1/2(m+n)]^3×(m-n)×[-2(m+n)(m-n)]^2=(-7/2)^3×(m+n)^3×(
m/(m+n)+m/(m-n)-n²/((m²-n²)=(m²-mn+m²+mn-n²)/(m²-n²)=(2m&sup
/>原式=3(m-n)²-7(m-n)-3(m-n)²+6(m-n)=3(m-n)²-3(m-n)²+6(m-n)-7(m-n)=-(m-n)=n-m请采纳,谢
(n-m)^3×(m-n)^2-(m-n)^5=-(m-n)^3*(m-n)^2-(m-n)^5=-(m-n)^5-(m-n)^5=-2(m-n)^5
解1/m+1/n=7/(m+n)即(n+m)/(nm)=7/(m+n)∴7nm=(m+n)²n/m+m/n=(n²+m²)/mn=[(m+n)²-2mn]/(m
解原式=-(m-n)³(m-n)²-(m-n)^5=-(m-n)^5-(m-n)^5=-2(m-n)^5
5(m+n)(m-n)-2(m+n)平方-3(m-n)平方=5m^2-5n^2-2m^2-4mn-2n^2-3m^2+6mn-3n^2=2mn
-3n+5m-[m-5(m-n)+m]=-3n+5m-[m-5m+5n+m]=-3n+5m-[-3m+5n]=-3n+5m+3m-5n=8m-8n
已知m=5n,则原式=(5n/(5n+n))+(5n/(5n-n))-(n^2)/(((5n)^3)-n^2)=(5/6)+(5/4)-[1/(125n-1)]=(25/12)-[1/(125n-1)
原式=(m²-mn-5mn+5n²)-6(m²-3mn+2mn-6n²)=(m²-6mn+5n²)-6(m²-mn-6n²
再答:如果满意,请点击右上角的满意,谢谢!
[5m(3m-n)+2n(n-3m)]/(3m-n)=[5m(3m-n)-2n(3m-n)]/(3m-n)=(5m-2n)(3m-n)/(3m-n)=5m-2n
当m-n=5(m+n)时,[6(m-n)]/(m+n)-[5(m+n)]/(m-n)]=[30(m+n)]/(m+n)-[5(m+n)]/[5(m+n)]=30-1=29