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This section includes 7 InterviewSolutions, each offering curated multiple-choice questions to sharpen your Current Affairs knowledge and support exam preparation. Choose a topic below to get started.
| 1. |
cost of the Cow.7. Mr Kannan had deposited 2,500 in a bank at 12% per annum. After3 years, he withdraws this amount. Out of this money, he wants to buya dressing table costing R 4,000. How much more money does he need?2 |
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Answer» Amount after 3.5 yearsimple interest= PTR/100Amount = SI + principal amountSI= 2500*3.5*12/100= 1050Amount = 2500+10503550he needs 4000-3550= 450 rupees |
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| 2. |
1 + \frac { x ^ { 3 } } { 729 } |
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Answer» 1 + x³/7291 + (x/9)³(1+ x/9) ( 1 + x²/81 - x/9) |
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| 3. |
pter covers 600 km. in 1 hour. How much distance will it cover in 4 hougyour answer in meters. |
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| 4. |
Find the value of m 3^(2m)*81=729 |
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Answer» 3²ⁿ x 3⁴= 9³3²ⁿ⁺⁴= 3⁶2m+4= 6 base is same so power will be equal too2m=2m =1 |
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| 5. |
\frac { \sin 30 ^ { \circ } + \tan 45 ^ { \circ } - \csc 60 ^ { \circ } } { \sec 30 ^ { \circ } + \cos 60 ^ { \circ } + \cot 45 ^ { \circ } } |
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| 6. |
18 \times [ - \frac { 2 } { 3 } ] ^ { n - 1 } = \frac { 512 } { 729 } |
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| 7. |
x=2+\sqrt{3}2 \text { (b) } 2 \sqrt{3} \text { (c) } 4 \text { (d) } 2-\sqrt{3} |
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| 8. |
\begin{array} { l } { \text { Which of the following form an AP? } } \\ { \text { (A) } 1,1,2,2,3 , \dots } \\ { \text { (B) } 0.3,0.33,0.333 , \dots } \\ { \text { (C) } \sqrt { 2 } , 2,2 \sqrt { 2 } , 4 , \ldots } \\ { \text { (D) } 9,9 + \sqrt { 3 } , 9 + 2 \sqrt { 3 } , 9 + 3 \sqrt { 3 } , \ldots } \end{array} |
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Answer» 1. D) is an APwith common difference√3 |
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| 9. |
\left. \begin array l l \text (a) \sqrt 3 & \text (b) \frac 1 \sqrt 3 & \text (c) \frac 2 \sqrt 3 \end array \right. \quad \text (d) 1 |
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Answer» tan60=sin60/cos60=(√(3)/2)/(1/2)=√(3) |
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| 10. |
\left. \begin{array} { l } { \text { If } \sqrt { 2 + \sqrt { x } } = 3 , \text { then } x = } \\ { \text { (A) } 1 } & { \text { (B) } \sqrt { 7 } } \\ { \text { (C) } 7 } & { \text { (D) } 49 } \end{array} \right. |
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| 11. |
EXERCISE 11A1. Find the amount and the compound interest on2500 for 2 years at 10% per annumcompounded annuallyuseo5 for 3 vears at 12% per annun |
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| 12. |
-n/227n/ 223. If(3" x2)3729then, prove that m-2 |
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Answer» 9^(n+1)*(3^-n/2)^-2 - 27^n/(3^m * 2)^3 = 1/729 27^n(9 - 1)/27^m*8 = 1/729 27^n*8/27^m*8 = 1/27^2 1/27^[m - n] = 1/27^2 Since base is same then powers are equal Therefore,m - n = 2 |
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| 13. |
I. In sequence an-2n2-1 the second term is,A) IB) 7C) 17D) 3 |
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Answer» a(n) = 2n² - 1 a(2) = 2 × 2² - 1 = 8 - 1 = 7 (B) is correct yah option B is correct |
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| 14. |
- \frac { \sin 30 ^ { \circ } + \tan 45 ^ { \circ } - \csc 60 ^ { \circ } } { \sec 30 ^ { \circ } + \cos 60 ^ { \circ } + \cot 45 ^ { \circ } } |
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Answer» sin30=1/2Tan45=1cosec60=2/√3sec30=2/√3 cos60=2 cot 45=1put in expressionhence1/2+1-2/2/√3+2+11/2-1/2/√3+3-1/2/2+3√3/√3-√3/2(2+3√3) |
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| 15. |
\frac{\sin 30^{\circ}+\tan 45^{\circ}-\csc 60^{\circ}}{\sec 30^{\circ}+\cos 60^{\circ}+\cot 45^{\circ}} |
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Answer» sin30=1/2 tan45=1 cosec60=2/√3sec30=2/√3 cos60=1/2 cot45=11/2+1-2/√3/2/√3+1/2+13/2-2/√3/2/√3+3/23√3-4/√3/3√3+4/√33√3-4/3√3+4 |
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| 16. |
5*(sqrt(3)*(text*(sqrt(2)*(a*(d*n))))) %2B 3*sqrt(2) - 3*sqrt(3) |
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Answer» first 3√2+5√3=12.9028now, √2-3√3=-3.7819now, according to the question, on adding both12.9028+(-3.7819)12.9028-3.7819=9.1208 (3√2+5√3) + (√2-3√3)=3√2-√2+5√3-3√3=2√2+2√3 |
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| 17. |
\left. \begin array l \text in \theta ) \text and n = ( \operatorname cos \theta %2B \operatorname sin \theta ) \\ \sqrt \frac m n %2B \sqrt \frac n m = \frac 2 \sqrt 1 - \operatorname tan ^ 2 \theta \end array \right. |
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Answer» Like if you find it useful |
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| 18. |
Y, Ariftook a loan of 80000 from abank, Iftherateofínterest is 10% per annumyears if the interest isfind the difference in amounts he would be paying after 10) compounded annually.ii) compounded half yearly |
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| 19. |
In sequence anA) I= 2n2-1 the second term is,B) 7I.C) 17D) 3 |
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Answer» a(n) = 2n² - 1 a(2) = 2 × 2² - 1 = 8 - 1 = 7 (B) is correct |
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| 20. |
o lorge Mo = xsmall No ydifferentbetweentuonois 26.:large No isthreetimesmall mox=3420 a 390B1= 26+y |
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Answer» x-y=26 x+y=180' by elmn method x=103 , y =77 is correct answar |
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| 21. |
अति लघु उत्तरीय प्रश्न || हर समीकरण 227 + ke + 1 =0 90 मूल हो तो 4 ज्ञात क |
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Answer» For this put X=-1/22(-1/2)^2+k(-1/2)+1=02*1/4-k/2+1=01/2-k/2+1=01-k+2=0k=3 |
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| 22. |
6)Arif took a loan of80,000 from a bank. If the rate of interest is 10%per annunfind the difference in amounts he would be paying after 1yersifthe interesti0) compounded annually(i) compounded half yearly. |
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| 23. |
5*sin(30**circ) %2B 3*tan(45**circ) |
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Answer» 5sin30+3tan455*1/2+3*15/2+311/2 |
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| 24. |
((5*sqrt(2) %2B 5*sqrt(3))*(x - 2*sqrt(6)))/(-5*sqrt(2) %2B 5*sqrt(3))=1 |
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Answer» (x - 2root(6))(5root(3) + 5root(2))/(5root(3) - 5root((2)) = 1 (x - 2root(6))= (root(3) - root(2))/ (root(3) + root(2)) (x - 2root(6)) = (root(3)-root(2))^2 / (3 - 2) x - 2root(6) = 3 + 2 - 2root(6) x = 5 |
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| 25. |
N=-sqrt(-2*sqrt(2) %2B 3) %2B (sqrt(-2 %2B sqrt(5)) %2B sqrt(2 %2B sqrt(5)))/sqrt(1 %2B sqrt(5)) |
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Answer» 1 is the correct answer. |
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| 26. |
(i) Show that number of the form 7". n ⏠N cannot have unit digit 0. [CBSE 2010] |
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Answer» can you please help me on whatsapp |
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| 27. |
(sqrt(-2 %2B sqrt(5)) %2B sqrt(2 %2B sqrt(5)))/sqrt(1 %2B sqrt(5)) |
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| 28. |
The sum of a number and it's positive square root is 6/25, find the number |
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Answer» thanks |
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| 29. |
Prove that the sequence root7, root(7+root7), root(7+root (7+root7)) tends to have positive roots |
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| 30. |
13. S andare the zeroes of the polynomial 1or' -6'+ 40 +0x -75. Find the other22zeroes of the polynomial. |
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| 31. |
BSE 2010]18. If R(x, y) is a point on the line segment joining the points P (a, b) and Q (b a), then prove[CBSE 2010]that x + y = a + b. |
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| 32. |
6.Find an integer which gives -13 on division by 5. |
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Answer» -65 is an integer which gives -13 on division by 5. -65 is integer which give -13 on divided by 5 -65 is interger which give -13 on divided by 5 -65 is a integer which give -13 when divided by 5 -65 is the integers which gives -13 on division by 5.please like my -65 is the integers which gives -13 on division by 5.please like my answer -65; is the correct answer of the given question -65 is the integer which gives -13 on division by 5 |
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| 33. |
13.What is that fraction which when multiplied by itself gives 227.798649? |
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| 34. |
x^2 %2B 5*(sqrt(5)*x) %2B 30 |
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| 35. |
(((x - 2)*(x - 1))*(2*x %2B 5))*(2*x %2B 3)=30 |
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| 36. |
यदि \frac{d}{d x} f(x)=4 x^{3}-\frac{3}{x^{4}} जिस f(2)=0, then f(x) हैः |
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| 37. |
A number exceeds its positive square root by 12. Find the number |
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Answer» thanks |
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| 38. |
n/2log (tan x)0 |
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| 39. |
\left. \begin{array} { l } { f ( x ) = 2 x + 3 } \\ { f ( x ) = \frac { x + 2 } { 5 x - 1 } } \end{array} \right. |
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| 40. |
y=log(tan(pi/4 %2B x/2), 10) |
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| 41. |
2x3 + 3y2 + 5xy,the function f(x,y)af0xGivenfind. |
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| 42. |
3. 4 subtracted from a number and then divided by7, gives 13 as the quotient. Find the number, |
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| 43. |
Find a rational number which when multiplied withgives the product 45.13 |
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| 44. |
レ1 nandycm30 um |
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| 45. |
-80*x - 48*y %2B 30*(x*y) %2B 25*x^2 %2B 9*y^2 %2B 64 |
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| 46. |
HOTS The length of the side of one squareexceeds the length of the side of the othersquare by 6 cm. If the sum of the areas of thetwo squares is 666 cm^2, then find the lengthof the sides of both the squares |
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Answer» Let the length of square be xthen length of another is x + 6(x)^2 + (x + 6)^2 = 666x^2 + x^2 + 36 + 12x = 6662x^2 + 12x + 36 = 666dividing eqn by 2x^2 + 6x + 18 - 333 = 0 x^2 + 6x - 315 = 0x^2 + 21x - 15x -315 = 0x(x+21) -15(x+21)=0so x=15hence the length one 1 □ is 15and of another is 21 |
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| 47. |
2/45+ 3/202V513. Write whetheron simplification gives a rational or an irrational numberCBSE 2010] |
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Answer» simply it is in the form of p/q but your wrong |
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| 48. |
S 1575 Hhon рдкреА:Value &f 0779 ' |
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Answer» well it is short one😅 Thanks |
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| 49. |
2 f(x) + 3 f(-x) = 15-4x find the value of f(2) |
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| 50. |
2 aff (a) : 2x + 3xt2then find the value of f(2). |
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Answer» f(2)= 2(2)^2+3(2)+2= 8+6+2= 16 |
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