Show that $limlimits_{Nrightarrowinfty}sumlimits_{n=1}^Nfrac{1}{N+n}=intlimits_1^2 frac{dx}{x}=ln(2)$

Your solution using a Riemann sum approximation to the integral $int^2_1frac{dx}{x}$ looks fine to me. Yves Daoust is much more direct. A similar method was develop here to estimate another nice integral, I hope you appreciate it.

Here is a different method similar to Claude Leibovici's solution, but using a more elementary asymptotics for the harmonic sequence $H_n=sum^n_{k=1}frac{1}{k}$.

It is known that

$$ begin{align} 0<H_n-ln(n)-gamma < frac{1}{n+1}tag{1}label{one} end{align} $$

for all $ninmathbb{N}$, where $gamma$ is a famous Euler-Mascheroni constant. The derivation of this is not difficult. It is based on a comparison between the integral $int^n_1frac{dx}{x}$ and $H_n$.

Using $eqref{one}$ with $n=2N$ and $n=N$ gives

$$ 0<H_{2N}-ln(2N)-gamma < frac{1}{2N+1}tag{2}label{two} $$

$$ begin{align} 0<H_{N}-ln(N)-gamma < frac{1}{N+1}tag{3}label{three} end{align} $$

Subtracting $eqref{three}$ from $eqref{two}$ gives $$ -frac{1}{N+1}< H_{2N}-H_N -ln(2N)+ln(N)<frac{1}{2N+1} $$

The term $ln(2N)-ln(N)=ln(2)=int^2_1 frac{dx}{x}$. Then applying the squeeze lemma you obtain $$ lim_{Nrightarrowinfty}sum^N_{n=1}frac{1}{N+n}=lim_{Nrightarrowinfty}sum^{2N}_{n=N+1}frac{1}{n}=lim_{Nrightarrowinfty}big(H_{2N}-H_Nbig)=ln 2 $$

I learned this method from this source where they use it to estimate another cool limit: $lim_{nrightarrowinfty}(H_{F_n}-H_{F_{n-1}} )$, there $F_n$ is the Fibonacci sequence.

Your reasoning is correct, but you make it more complicated than needed.

$$frac1Nsum_{i=1}^Nfrac1{1+dfrac nN}toint_0^1frac{dx}{1+x}=left.ln(1+x)right|_0^1.$$

Without Rieman sums. $$S_N=sumlimits_{n=1}^Nfrac{1}{N+n}=H_{2 N}-H_N$$ Using the asymptotics of harmonic numbers $$S_N=log (2)-frac{1}{4 N}+frac{1}{16 N^2}+Oleft(frac{1}{N^4}right)$$