a) Ta có:

2A=2.(12+122+123+...+122020+122021)2�=2.12+122+123+...+122  020+122  021

2A=1+12+122+123+...+122019+1220202�=1+12+122+123+...+122  019+122  020

Suy ra: 2A−A=(1+12+122+123+...+122019+122020)2�−�=1+12+122+123+...+122  019+122  020

                             −(12+122+123+...+122020+122021)−12+122+123+...+122  020+122  021

Do đó A=1−122021<1�=1−122021<1.

Lại có B=13+14+15+1360=20+15+12+1360=6060=1�=13+14+15+1360=20+15+12+1360=6060=1.

Vậy A < B.

Ta có :\(\frac{a+2020}{a-2020}=\frac{b+2021}{b-2021}\)

=> \(\frac{a+2020}{a-2020}-1=\frac{b+2021}{b-2021}-1\)

=> \(\frac{4040}{a-2020}=\frac{4042}{b-2021}\)

=> \(1:\frac{4040}{a-2020}=1:\frac{4042}{b-2021}\)

=> \(\frac{a-2020}{4040}=\frac{b-2021}{4042}\)

=> \(\frac{a-2020}{4040}+2=\frac{b-2021}{4042}+2\)

=> \(\frac{a}{4040}=\frac{b}{4042}\)

=> \(\frac{a}{2020}.\frac{1}{2}=\frac{b}{2021}.\frac{1}{2}\)

=> \(\frac{a}{2020}=\frac{b}{2021}\)(đpcm)

Lời giải:

$3A=1.2(3-0)+2.3(4-1)+3.4(5-2)+....+2020.2021(2022-2019)$

$=(1.2.3+2.3.4+3.4.5+....+2020.2021.2022)-(0.1.2+1.2.3+2.3.4+....+2019.2020.2021)$
$=2020.2021.2022$

$\Rightarrow A=\frac{2020.2021.2022}{3}$

A

Ta có : \(A.m=\frac{m\left(m^{2020+1}\right)}{m^{2021}-1}=\frac{m^{2021}+m}{m^{2021}-1}=1+\frac{m-1}{m^{2021}+1}\)

Tương tự ,ta có : \(B.m=1+\frac{m-1}{m^{2022}+1}\)

//Đề thiếu điều kiện của m nên không giải tiếp được =))