Last visit was: 16 Nov 2024, 00:57 It is currently 16 Nov 2024, 00:57

Close

GRE Prep Club Daily Prep

Thank you for using the timer - this advanced tool can estimate your performance and suggest more practice questions. We have subscribed you to Daily Prep Questions via email.

Customized
for You

we will pick new questions that match your level based on your Timer History

Track
Your Progress

every week, we’ll send you an estimated GRE score based on your performance

Practice
Pays

we will pick new questions that match your level based on your Timer History

Not interested in getting valuable practice questions and articles delivered to your email? No problem, unsubscribe here.

Close

Request Expert Reply

Confirm Cancel
Verbal Expert
Joined: 18 Apr 2015
Posts: 29961
Own Kudos [?]: 36241 [26]
Given Kudos: 25911
Send PM
Most Helpful Community Reply
avatar
Director
Director
Joined: 03 Sep 2017
Posts: 518
Own Kudos [?]: 702 [19]
Given Kudos: 0
Send PM
General Discussion
avatar
Intern
Intern
Joined: 24 Sep 2018
Posts: 31
Own Kudos [?]: 3 [0]
Given Kudos: 0
Send PM
Verbal Expert
Joined: 18 Apr 2015
Posts: 29961
Own Kudos [?]: 36241 [4]
Given Kudos: 25911
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
4
Expert Reply
Picking numbers

Consecutive even integers

2 < 4 < 6 < 8

4,6, and 8 actually are = \(2^6 * 3\)

The largest divisor of b*c*d is 48.

Hope this helps.
avatar
Manager
Manager
Joined: 02 Dec 2018
Posts: 74
Own Kudos [?]: 31 [0]
Given Kudos: 0
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
IlCreatore wrote:
b, c and d are consecutive even integers such that 2<b<c<d.
Let's assume b = 2n, then c = 2n+2 , d = 2n+4 and n>1 since 2<b<c<d.

Then the expression bcd = 2n(2n+2)(2n+4)= 8n(n+1)(n+2). Now n(n+1)(n+2) is the product of 3 consecutive integers which is always divisible by 6. Therefore 8n(n+1)(n+2) is always divisible by 6*8 or 48.


Why is it always divisible by 6? Please explain with those not great with number property problems such as myself.
Verbal Expert
Joined: 18 Apr 2015
Posts: 29961
Own Kudos [?]: 36241 [0]
Given Kudos: 25911
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
1
Expert Reply
n(n+1)(n+2) and n=1

1*2*3=6 divisible by 6

n=2

2*3*4=24 divisible by 6

And so forth
avatar
Manager
Manager
Joined: 02 Dec 2018
Posts: 74
Own Kudos [?]: 31 [0]
Given Kudos: 0
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
Carcass wrote:
n(n+1)(n+2) and n=1

1*2*3=6 divisible by 6

n=2

2*3*4=24 divisible by 6

And so forth


Thank you, that is reminiscent of another problem I have done, I should definitely remember it now for the GRE.
Verbal Expert
Joined: 18 Apr 2015
Posts: 29961
Own Kudos [?]: 36241 [3]
Given Kudos: 25911
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
3
Expert Reply
What you did say right now could be a huge problem.

In your preparation for the GRE, GMAT , LSAT or whatever it would be if you do not gain experience from a previous problem, then you will not climb the learning curve.

In other words, you will stay always on the ground.

Regards
avatar
Manager
Manager
Joined: 02 Dec 2018
Posts: 74
Own Kudos [?]: 31 [0]
Given Kudos: 0
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
Carcass wrote:
What you did say right now could be a huge problem.

In your preparation for the GRE, GMAT , LSAT or whatever it would be if you do not gain experience from a previous problem, then you will not climb the learning curve.

In other words, you will stay always on the ground.

Regards


True, I need to stay on my toes and redo problems I have gotten wrong in the past. I usually wait a couple days to make sure I have understood what I missed or did wrong rather than just having it memorized.
avatar
Director
Director
Joined: 09 Nov 2018
Posts: 505
Own Kudos [?]: 133 [1]
Given Kudos: 0
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
1
Carcass wrote:
Picking numbers

Consecutive even integers

2 < 4 < 6 < 8

4,6, and 8 actually are = \(2^6 * 3\)

The largest divisor of b*c*d is 48.

Hope this helps.


Please make it clear-

I thought like this
consecutive integers are 2,4,6,8
hence The largest divisor of b*c*d is 4*6*8= 192
I am really confuse why 192 is not a divisor of 192.
Please let me know why I am wrong.

Originally posted by AE on 01 Jan 2019, 05:52.
Last edited by AE on 01 Jan 2019, 10:30, edited 1 time in total.
avatar
Supreme Moderator
Joined: 01 Nov 2017
Posts: 371
Own Kudos [?]: 470 [1]
Given Kudos: 0
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
1
Expert Reply
AE wrote:
Carcass wrote:
Picking numbers

Consecutive even integers

2 < 4 < 6 < 8

4,6, and 8 actually are = \(2^6 * 3\)

The largest divisor of b*c*d is 48.

Hope this helps.


Please make it clear-

I though like this
consecutive integers are 2,4,6,8
hence The largest divisor of b*c*d is 4*6*8= 192
I am really confuse why 192 is not a divisor of 192.
Please let me know why am I wrong.



Hi..

The numbers chosen 4,6,8 are not the correct choice for answering this question, as you say why not 192 then...
Ok let us see..
We have three consecutive even integers, so atleast one will be multiple of 3, but what about number of 2s in it.
Since we are looking for MUST, we will look for least number of 2s that will always be there.

Ok for that I have to ensure that there is no multiple of 8, because a multiple of 4 is surely there..
So let the numbers be 8n+2, 8n+4, 8n+6...
So the product becomes (8n+2)(8n+4)(8n+6)=\(2(4n+1)*2(4n+2)*2(4n+3)=8(4n+1)(4n+2)(4n+3)\)..
Now (4n+1)(4n+2)(4n+3) is a product of three consecutive numbers. So the product of three consecutive numbers will be multiple of 2 and 3..

So overall 8*2*3=48..

For example ..
26*28*30=48*13*7*5
And 4*6*8=48*4
So you see both of the above are necessarily multiple of 48..
User avatar
Manager
Manager
Joined: 01 Nov 2018
Posts: 87
Own Kudos [?]: 144 [0]
Given Kudos: 0
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
Expert Reply
chetan2u wrote:
AE wrote:
Carcass wrote:
Picking numbers

Consecutive even integers

2 < 4 < 6 < 8

4,6, and 8 actually are = \(2^6 * 3\)

The largest divisor of b*c*d is 48.

Hope this helps.


Please make it clear-

I though like this
consecutive integers are 2,4,6,8
hence The largest divisor of b*c*d is 4*6*8= 192
I am really confuse why 192 is not a divisor of 192.
Please let me know why am I wrong.



Hi..

The numbers chosen 4,6,8 are not the correct choice for answering this question, as you say why not 192 then...
Ok let us see..
We have three consecutive even integers, so atleast one will be multiple of 3, but what about number of 2s in it.
Since we are looking for MUST, we will look for least number of 2s that will always be there.

Ok for that I have to ensure that there is no multiple of 8, because a multiple of 4 is surely there..
So let the numbers be 8n+2, 8n+4, 8n+6...
So the product becomes (8n+2)(8n+4)(8n+6)=\(2(4n+1)*2(4n+2)*2(4n+3)=8(4n+1)(4n+2)(4n+3)\)..
Now (4n+1)(4n+2)(4n+3) is a product of three consecutive numbers. So the product of three consecutive numbers will be multiple of 2 and 3..

So overall 8*2*3=48..

For example ..
26*28*30=48*13*7*5
And 4*6*8=48*4
So you see both of the above are necessarily multiple of 48..


Son of a gun this is a brilliant answer
User avatar
Manager
Manager
Joined: 01 Nov 2018
Posts: 87
Own Kudos [?]: 144 [0]
Given Kudos: 0
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
1
Expert Reply
since 2<b<c<d
why not try 2 < 4< 6< 8??

this is the smallest possible value right?

lets rewrite it this way

2<(2*2)<(3*2)<(4*2) replace 2 with N since these numbers are multiples of 2

dont think to rewrite the expression like this

2< 2n <3n <4n because once n is greater than 2 the numbers wont be consecutive.

rewrite as

2 < 2n < 2(n+1)< 2(n+2)

then multiply 2n*2(n+1)*2(n+2)=

8(n^3+3n^2+2n) plug in 1 for n and you get 8(1+3+2)= 8*6=48
User avatar
Manager
Manager
Joined: 01 Nov 2018
Posts: 87
Own Kudos [?]: 144 [0]
Given Kudos: 0
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
1
Expert Reply
I was looking at this problem again, and just thought,

what if instead of all the fancy number property stuff, why not try this shortcut?
If you have a string of consecutive even numbers, the greatest common factor of the last three numbers will just be the two lesser numbers times the number immediately preceding the last string of 3 numbers.
avatar
Intern
Intern
Joined: 17 May 2020
Posts: 14
Own Kudos [?]: 5 [0]
Given Kudos: 0
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
I tried a lot of combinations and all of them are divisible by 96
could it be the correct answer (96)!!!
Retired Moderator
Joined: 10 Apr 2015
Posts: 6218
Own Kudos [?]: 12189 [2]
Given Kudos: 136
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
2
mageed wrote:
I tried a lot of combinations and all of them are divisible by 96
could it be the correct answer (96)!!!


(10)(12)(14) = 1680, and 1680 it's not the visible by 96
avatar
Intern
Intern
Joined: 17 May 2020
Posts: 14
Own Kudos [?]: 5 [0]
Given Kudos: 0
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
THANKS
Intern
Intern
Joined: 05 Jul 2022
Posts: 34
Own Kudos [?]: 31 [0]
Given Kudos: 13
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
b>2 and it is even. So it must have a multiple of 2. Same goes for c and d.
Now since there are 3 consecutive integers. So they must be a multiple of 3.
Since we are having 3 integers. So it must be a multiple of another 2.
So total 2*2*2*2*3 = 48.
I hope this helps
Moderator
Moderator
Joined: 02 Jan 2020
Status:GRE Quant Tutor
Posts: 1111
Own Kudos [?]: 961 [1]
Given Kudos: 9
Location: India
Concentration: General Management
Schools: XLRI Jamshedpur, India - Class of 2014
GMAT 1: 700 Q51 V31
GPA: 2.8
WE:Engineering (Computer Software)
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
1
Given that b, c, and d are consecutive even integers such that 2 < b < c < d and we need to find What is the largest positive integer that must be a divisor of bcd

As b, c and d are consecutive even numbers so one of them will be a multiple of 2, one will be a multiple of 4 and one will be a multiple of 6

Ex: 4, 6, 8. 4 -> multiple of 2 and 4, 6 -> multiple of 6, 8 -> multiple of 2 and 4

=> b*c*d will be a multiple of 2*4*6 = 48

So, Answer will be 48
Hope it helps!

Watch the following video to learn How to Sequence problems

User avatar
GRE Prep Club Legend
GRE Prep Club Legend
Joined: 07 Jan 2021
Posts: 5014
Own Kudos [?]: 74 [0]
Given Kudos: 0
Send PM
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
Hello from the GRE Prep Club BumpBot!

Thanks to another GRE Prep Club member, I have just discovered this valuable topic, yet it had no discussion for over a year. I am now bumping it up - doing my job. I think you may find it valuable (esp those replies with Kudos).

Want to see all other topics I dig out? Follow me (click follow button on profile). You will receive a summary of all topics I bump in your profile area as well as via email.
Prep Club for GRE Bot
Re: b, c, and d are consecutive even integers such that 2 < b < [#permalink]
Moderators:
GRE Instructor
78 posts
GRE Forum Moderator
37 posts
Moderator
1111 posts
GRE Instructor
234 posts

Powered by phpBB © phpBB Group | Emoji artwork provided by EmojiOne