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Re: The sum of n consecutive positive integers, where n > 1, is 2020. [#permalink]
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Bunuel
The sum of n consecutive positive integers, where n > 1, is 2020. If n is odd, what is the value of n ?

A. 3
B. 5
C. 7
D. 101
E. 505

Somehow, initially I thought the question is asking for minimum value of n, so it is important to read the question clearly.
Edited the solution accordingly

Sum of consecutive numbers = Average*number of terms.
Here, as there are odd number of terms, the average has to be an integer and Sum=n*Average

2020=n*Average=1*2020=5*404 and so on
The above shows n can take any value that is factor of 2020.
Here, B, D and E will fit in.
Let us check each separately-
B) 5: 2020=5*404, so numbers are 402,403,404,405,406…..Fits in perfectly.
D) 101: 2020=101*20. If the median is 20 and terms are consecutive, surely all are not positive terms.
There are only 19 positive terms less than 20, but we require 50 terms less than 20……..Not Possible
E) 505: 2020=505*4. If the median is 4 and terms are consecutive, surely all are not positive terms.
There are only 3 positive terms less than 4, but we require 252 terms less than 4……..Not Possible


B
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Re: The sum of n consecutive positive integers, where n > 1, is 2020. [#permalink]
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chetan2u
Bunuel
The sum of n consecutive positive integers, where n > 1, is 2020. If n is odd, what is the value of n ?

A. 3
B. 5
C. 7
D. 101
E. 505


Sum of consecutive numbers = Average*number of terms.
Here, as there are odd number of terms, the average has to be an integer and Sum=n*Average

2020=n*Average=1*2020=5*404 and so on
The above shows n can take any value that is factor of 2020.
The smallest odd value is 1 and then 5.
Since n>1, the least value of n is 5.


B

The question does not asks about the least value of n. It asks about the value of n. Not clear how you got 5, and how you discarded say 101.
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Re: The sum of n consecutive positive integers, where n > 1, is 2020. [#permalink]
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Bunuel
chetan2u
Bunuel
The sum of n consecutive positive integers, where n > 1, is 2020. If n is odd, what is the value of n ?

A. 3
B. 5
C. 7
D. 101
E. 505


Sum of consecutive numbers = Average*number of terms.
Here, as there are odd number of terms, the average has to be an integer and Sum=n*Average

2020=n*Average=1*2020=5*404 and so on
The above shows n can take any value that is factor of 2020.
The smallest odd value is 1 and then 5.
Since n>1, the least value of n is 5.


B

The question does not asks about the least value of n. It asks about the value of n. Not clear how you got 5, and how you discarded say 101.

My mistake. I thought question asking least value of n without reading it completely, :( and so discarded all higher values.
Edited now.
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Re: The sum of n consecutive positive integers, where n > 1, is 2020. [#permalink]
The sum of n consecutive positive integers, where n > 1, is 2020. If n is odd, what is the value of n ?

A. 3
B. 5
C. 7
D. 101
E. 505
1. Odd + Odd = Even
2. Odd + Odd + Odd = Odd
3. Odd + Even = Odd
4. Odd + Even + Odd = Even

Case 4. is what we are dealing with here since n is odd numbers of consecutive positive integers.

Testing numbers help but in a longer manner.

A. 3 - Here one of the three numbers must be even. It would be such that 2020 is dived in three ALMOST equal parts. So, 2020/3 =~ 666. Hence 666,667 and 668 but it does not suffice our condition even after checking with more possibilities.
B. 5 - Again similarly, 2020/5 = 404. 402,403,404,405,406 satisfy.
Although we have reached the required answer, do check for other options.
Others, ofcourse, don't satisfy. IMPORTANTLY, best see which of the options divide 2020, leaving an integer.

Answer B.
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Re: The sum of n consecutive positive integers, where n > 1, is 2020. [#permalink]
Take numbers as
x+1,x+2…, x+n

Sum = (n/2)(x+1+x+n)=2020
n(2x+n+1)=4040=2^3.5.101

Take n=101, 2x+102=2^3.5 gives x negative (eliminate)

Take n=505, same as above (eliminate)

Take n=5, you get x=401 (possible)

Hence n=5 and series is 402, 404….

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Re: The sum of n consecutive positive integers, where n > 1, is 2020. [#permalink]
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not able to solve this question using the formula n(n+1)/2. Can anyone pls suggest?
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Re: The sum of n consecutive positive integers, where n > 1, is 2020. [#permalink]
tanishqgirotra
not able to solve this question using the formula n(n+1)/2. Can anyone pls suggest?
I took the same approach, and marked 101, but realised that the question does not tell us that the n positive numbers are the first n positive numbers. n(n+1)/2 is applicable incase of first n positive numbers.
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Re: The sum of n consecutive positive integers, where n > 1, is 2020. [#permalink]
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