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​​​​​​ColumnIColumnII(I) A circle x2+y26x10y+k=0 doesn't touch or intersect the coordinate axes and the point (2,4) lies inside the circle then the number of integral value of k is (P) 5(II) If V1=^i2^j+3^k,V2=a^i+b^j+c^kV2 is non-zero vectors & a,b,c{1,0,1,2,3},a,b,c are choosen such that V1V2=0 then the maximum of (a+b+c) is (Q) 2(III)If a circle having radius r described on a normal chord of y2=4x as diameter and passes through the vertex of the parabola, then [r] is ([ ] denotes G.I.F.)(R) 6(IV) Consider f(x)=sin1(x+32x+5)andg(x)=sin1(ax2+bx2+5)&limx(f(x)g(x))=0,limx0(f(x)+g(x))=π4, then 10b2 is (S) 7

Which of the following is only "CORRECT" combination?

A
(I)(P)
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B
(II)(S)
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C
(III)(Q)
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D
(IV)(R)
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Solution

The correct option is B (II)(S)
(I)
x2+y26x10y+k=0(x3)2+(y5)2=34k
For the circle to exist
34k>0k<34
Now we know that it will not intersect or touch the coordinate axis so,
34k<334k<9k>25
We know that (1,4) is inside the circle so,
r>234k>2k<32
Hence k(25,32) so the number of integral values of k will be 6
(I)(R)

(II)
V1V2=0a2b+3c=0
Case 1:
a=1,b=1,c=1a+b+c=1
Case 2:
a=2,b=1,c=0a+b+c=3
Case 3:
a=1,b=1,c=1a+b+c=1
Case 4:
a=1,b=2,c=1a+b+c=4
Case 5:
a=3,b=0,c=1a+b+c=2
Case 6:
a=3,b=3,c=1a+b+c=7
Hence the maximum of a+b+c is 7
(II)(S)

(III)
Let the coordinates of
P=(t21,2t1) and Q=(t22,2t2)
We know that,
t2=t12t1(i)
PQ is the diameter so it will subtends 90 at the vertex,
2t10t210×2t20t220=1t1t2=4t212=4t1=±2t2=±22
P=(2,22),Q=(8,42),PQ=63
Hence the radius will be 33
[r]=5
(III)(P)

(IV)
limxsin1(x+32x+5)=π6limxsin1(ax2+bx2+5)=π6a=12
limx0(f(x)+g(x))=π4sin1(35)+sin1(b5)=π4b5=sin(sin1(35)+π4)b5=12×4512×35b=1210b2=5
(IV)(P)

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