跪求高数高手!!帮小弟解决一道求极限的题目,多谢!!!
2个回答
展开全部
e^2 - (1+1/n)^(2n) = ( e + (1+1/n)^n ) * ( e - (1+1/n)^n )
原式 = lim [ {e^2 - (1+1/n)^(2n) } / (1/n), n->∞ ]
= 2e * lim [ ( e - (1+1/n)^n ) / (1/n), n->∞ ] 无穷小比无穷小的极限
= 2e * lim [ ( e - (1+1/x)^x ) / (1/x), x->+∞ ]
y = (1+1/x)^x 的导函数:
lny = x ln(1+1/x)
y ' / y = ln(1+1/x) + x * [ 1/(x+1) - 1/x]
=> y ' = y * [ ln(1+1/x) - 1/(x+1)]
=> lim [ ( e - y ) / (1/x), x->+∞ ] = lim [ - y ' / (-1/x²), x->+∞ ] 罗必塔法则
= lim [ - y * [ ln(1+1/x) - 1/(x+1)] / (-1/x²), x->+∞ ]
= e * lim [ [ ln(1+1/x) - 1/(x+1)] / (1/x²), x->+∞ ] 罗必塔法则
= e * lim [ [ -1/[x(x+1) + 1/(x+1)² ] / (-2/x³), x->+∞ ]
= e/2
原式 = e ²
原式 = lim [ {e^2 - (1+1/n)^(2n) } / (1/n), n->∞ ]
= 2e * lim [ ( e - (1+1/n)^n ) / (1/n), n->∞ ] 无穷小比无穷小的极限
= 2e * lim [ ( e - (1+1/x)^x ) / (1/x), x->+∞ ]
y = (1+1/x)^x 的导函数:
lny = x ln(1+1/x)
y ' / y = ln(1+1/x) + x * [ 1/(x+1) - 1/x]
=> y ' = y * [ ln(1+1/x) - 1/(x+1)]
=> lim [ ( e - y ) / (1/x), x->+∞ ] = lim [ - y ' / (-1/x²), x->+∞ ] 罗必塔法则
= lim [ - y * [ ln(1+1/x) - 1/(x+1)] / (-1/x²), x->+∞ ]
= e * lim [ [ ln(1+1/x) - 1/(x+1)] / (1/x²), x->+∞ ] 罗必塔法则
= e * lim [ [ -1/[x(x+1) + 1/(x+1)² ] / (-2/x³), x->+∞ ]
= e/2
原式 = e ²
本回答由提问者推荐
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
