हिंदी

Find an AP whose 4th term is 9 and the sum of its 6th and 13th terms is 40.

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प्रश्न

Find an AP whose 4th term is 9 and the sum of its 6th and 13th terms is 40.

योग
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उत्तर

Let a be the first term and d be the common difference of the AP. Then,

a4 = 9 

⇒ a + (4-1) d = 9                        [ an = a + (n-1) d]

⇒ a +3d = 9         ....................(1)

Now,

a6 +a13 = 40           (Given) 

⇒ (a +5d ) + (a +12d) = 40

⇒ 2a + 17d = 40            ...............(2)

From (1) and (2), we get

2(9-3d ) +17d = 40

⇒ 18-6d + 17d = 40

⇒ 11d = 40 - 18 =22

⇒ d =2

Putting d = 2 in (1), we get

a +3 × 2 = 9

⇒ a = 9-6=3

Hence, the AP is 3, 5, 7, 9, 11,…….

 

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अध्याय 5: Arithmetic Progression - EXERCISE 5D [पृष्ठ २९४]

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आर.एस. अग्रवाल Mathematics [English] Class 10
अध्याय 5 Arithmetic Progression
EXERCISE 5D | Q 25. | पृष्ठ २९४
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