Maths NCERT Exemplar Solutions Class 11th Chapter Eleven

This is a Short Answer Type Questions as classified in NCERT Exemplar

Sol:

$\begin{array}{l}Givenequationofthecircleis\\ x^2+y^2-6x+12y+15=0\dots \left(i\right)\\ Centre=\left(-g,-f\right)=\left(3,-6\right)\left[\begin{array}{l}?2g=-6\Rightarrow g=-3\\ 2f=12\Rightarrow f=6\end{array}\right]\\ \text{\hspace{0.17em}Since}thecircleisconcentricwiththegivencircle\\ \therefore Centre=\left(3,-6\right)\\ Nowlettheradiusofthecircleisr\\ \therefore r=\sqrt[]{g^2+f^2-c}=\sqrt[]{9+36-15}=\sqrt[]{30}\\ Areaofthegivencircle\left(i\right)=\pi r^2=30\pi sq.unit\\ Areaoftherequiredcircle=2*30\pi =60\pi sq.unit\\ If{r}_{1}betheradiusoftherequiredcircle\\ \pi r_1^2=60\pi \Rightarrow r_1^2=60\\ So,therequiredequationofthecircleis\\ {\left(x-3\right)}^2+{\left(y+6\right)}^2=60\\ \Rightarrow x^2+9-6x+y^2+36+12y-60=0\\ \Rightarrow x^2+y^2-6x+12y-15=0\\ Hence,therequiredequationis{x}^2+y^2-6x+12y-15=0.\end{array}$

This is a Short Answer Type Questions as classified in NCERT Exemplar

Sol:

$\begin{array}{l}Givencircleis{x}^2+y^2=16\\ Perpendicularfromtheorigintothegivenliney=\sqrt[]{3}x+kisequaltotheradius.\\ \therefore 4=\left|\frac{0-0-k}{\sqrt[]{{\left(1\right)}^2+{\left(\sqrt[]{3}\right)}^2}}\right|=\left|\frac{-k}{4}\right|\\ \Rightarrow 4=\pm \frac{k}{2}\Rightarrow k=\pm 8\\ Hence,therequiredvaluesofkare\pm 8.\end{array}$

This is a Short Answer Type Questions as classified in NCERT Exemplar

Sol:

$\begin{array}{l}Givenequationsare\\ 3x+y=14\dots \left(i\right)\\ and2x+5y=18\dots \left(ii\right)\\ Fromeq.\left(i\right)weget\\ y=14-3x\dots \left(iii\right)\\ Puttingthevalueofyineq.\left(ii\right)weget\\ \Rightarrow 2x+5\left(14-3x\right)=18\\ \Rightarrow 2x+70-15x=18\\ \Rightarrow -13x=-70+18\\ \Rightarrow -13x=-52\Rightarrow x=4\\ Fromeq.\left(iii\right)weget,y=14-3*4=2\\ \therefore \text{\hspace{0.17em}point}o\mathrm{fintersection}is\left(4,2\right)\\ Now,radiusr=\sqrt[]{{\left(4-1\right)}^2+{\left(2+2\right)}^2}=\sqrt[]{{\left(3\right)}^2+{\left(4\right)}^2}=\sqrt[]{9+16}=5\\ So,theequationofcircleis\\ {\left(x-h\right)}^2+{\left(y-k\right)}^2=r^2\\ \Rightarrow {\left(x-1\right)}^2+{\left(y+2\right)}^2={\left(5\right)}^2\\ \Rightarrow x^2-2x+1+y^2+4y+4=25\\ \Rightarrow x^2+y^2-2x+4y-20=0\\ Hence,therequiredequationis{x}^2+y^2-2x+4y-20=0.\end{array}$

This is a Short Answer Type Questions as classified in NCERT Exemplar

Sol:

$\begin{array}{l}Lettheotherendofthediameteris\left(x_1,y_1\right).\\ Equationofthegivencircleis\\ x^2+y^2-4x-6y+11=0\\ Centre=\left(-g,-f\right)=\left(2,3\right)\\ \therefore \frac{x_1+3}{2}=2\Rightarrow x_1+3=4\Rightarrow x_1=1\\ and\frac{y_1+4}{2}=3\Rightarrow y_1+4=6\Rightarrow y_1=2\\ Hence,therequiredcoordinatesare\left(1,2\right).\end{array}$

This is a Short Answer Type Questions as classified in NCERT Exemplar

Sol:

Sol:

$\begin{array}{l}Letabetheradiusofthecircle.\\ Centreofthecircle=\left(-a,-a\right)\\ \text{\hspace{0.17em}Distance}oftheline3x-4y+8=0\\ Fromthecentre=Radiusofthecircle\\ \left|\frac{-3a+4a+8}{\sqrt[]{{\left(3\right)}^2+{\left(-4\right)}^2}}\right|=a\\ \Rightarrow \left|\frac{a+8}{5}\right|=\frac{3}{2}\\ \Rightarrow \pm \left(\frac{a+8}{5}\right)=a\\ \Rightarrow \frac{a+8}{5}=aand-\left(\frac{a+8}{5}\right)=a\\ \Rightarrow a=5a-8\\ \Rightarrow 4a=8\Rightarrow a=2\\ and\frac{a+8}{5}=-a\Rightarrow a+8=-5a\\ \Rightarrow 6a=-8\Rightarrow a=-\frac{4}{3}\\ \therefore a=2anda\ne -\frac{4}{3}\\ \therefore Theequationofthecircleis\\ {\left(x+2\right)}^2+{\left(y+2\right)}^2={\left(2\right)}^2\\ \Rightarrow x^2+4x+4+y^2+4y+4=4\\ \Rightarrow x^2+y^2+4x+4y+4=0\\ Hence,therequiredequationofthecircleis{x}^2+y^2+4x+4y+4=0.\end{array}$

This is a Short Answer Type Questions as classified in NCERT Exemplar

Sol: 

Sol:

$Givenequationare3x-4y+4=0\\ and6x-8y-7=0\Rightarrow 3x-4y-\frac{7}{2}=0$
$\begin{array}{l}\text{Since}\frac{3}{6}=\frac{-4}{-8}=\frac{1}{2}thenthelinesareparallel.\\ So,thebetweentheparallellines=\left|\frac{c_1-c_2}{\sqrt[]{a^2+b^2}}\right|=\left|\frac{4+\frac{7}{2}}{\sqrt[]{{\left(3\right)}^2+{\left(-4\right)}^2}}\right|\\ =\left|\frac{\frac{15}{2}}{5}\right|=\frac{3}{2}\\ Diameter=\frac{3}{2}\\ \therefore Radius=\frac{3}{4}\\ Hence,therequiredradius=\frac{3}{4}.\end{array}$

This is a long answer type question as classified in NCERT Exemplar

$\begin{array}{l}Givenequationare3x-4y+4=0\\ and6x-8y-7=0\Rightarrow 3x-4y-\frac{7}{2}=0\\ Since\frac{3}{6}=\frac{-4}{-8}=\frac{1}{2}thenthelinesareparallel.\\ So,thedistancebetweentheparallellines=\left|\frac{c_1-c_2}{\sqrt[]{a^2+b^2}}\right|=\left|\frac{4+\frac{7}{2}}{\sqrt[]{{\left(3\right)}^2+{\left(-4\right)}^2}}\right|\\ =\left|\frac{\frac{15}{2}}{5}\right|=\frac{3}{2}\\ Diameter=\frac{3}{2}\\ \therefore Radius=\frac{3}{4}\\ Hence,therequiredradius=\frac{3}{4}.\end{array}$