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Answer:
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16⇒n=17
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16⇒n=17Therefore,
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16⇒n=17Therefore,Required sum =
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16⇒n=17Therefore,Required sum = 2
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16⇒n=17Therefore,Required sum = 2n
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16⇒n=17Therefore,Required sum = 2n
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16⇒n=17Therefore,Required sum = 2n (a+l)=
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16⇒n=17Therefore,Required sum = 2n (a+l)= 2
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16⇒n=17Therefore,Required sum = 2n (a+l)= 217
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16⇒n=17Therefore,Required sum = 2n (a+l)= 217
The odd integers between 2 and 100 which are divisible by 3 are 3, 9, 15, 21, ..., 99.Here, a=3 and d=6.a n =99⇒a+(n−1)d=99⇒3+(n−1)×6=99⇒6(n−1)=96⇒n−1=16⇒n=17Therefore,Required sum = 2n (a+l)= 217 (3+99)=867