Class 12th

Explanation -Given threshold frequency of A is given by v_0A= 5 $*{10}^{14}$ hz

V_OB= 10 $*$ 10¹⁴hz

$?=h{v}_0$

$\frac{{?}_{OA}}{{?}_{OB}}=\frac{5*{10}^{14}}{10*{10}^{14}}1$

${?}_{OA}$ < ${?}_{OB}$

$\left(ii\right)$  for metal A slope=h/e= $\frac{2}{(10-5){10}^{14}}$

$h=\frac{2e}{5*{10}^{14}}=\frac{2*1.6*{10}^{-19}}{5*{10}^{14}}$ = 6.4 $*{10}^{-34}$ js

$\mathrm{f}\mathrm{o}\mathrm{r}\mathrm{}\mathrm{m}\mathrm{e}\mathrm{t}\mathrm{a}\mathrm{l}\mathrm{}\mathrm{B}$ slope=h/e= $\frac{2.5}{(15-10){10}^{14}}$ = 8 $*{10}^{-34}$ js

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

Sol.

$\begin{array}{l}Ballofsaltisspherical\\ \therefore Volumeofball,V=\frac{4}{3}\pi r^3,wherer=radiusoftheball.\\ AsperQuestion,\frac{dV}{dt}\propto S,whereS=surfaceareaoftheball\\ \Rightarrow \frac{d}{dt}\left(\frac{4}{3}\pi r^3\right)\propto 4\pi r^2\left[?S=4\pi r^2\right]\\ \Rightarrow \frac{4}{3}\pi .3r^2.\frac{d}{dt}\propto 4\pi r^2\\ \Rightarrow 4\pi r^2.\frac{dr}{dt}={\rm K}.4\pi r^2\left[K=constantofproportionality\right]\\ \Rightarrow \frac{dr}{dt}={\rm K}.\frac{4\pi r^2}{4\pi r^2}\\ \Rightarrow \frac{dr}{dt}={\rm K}.1=K\\ Hence,theradiusoftheballisdecreasingatconstantrate.\end{array}$

This is a Long Answer Type Question as classified in NCERT Exemplar

Sol:

$\begin{array}{l}Let\text{'}r\text{'}betheradiusofthesphere.\\ \therefore Surfaceareaofthesphere=4\pi r^2\\ Volumeofthesphere=\frac{4}{3}\pi r^3\\ Thesidesoftheparallelopipedarex,2xand\frac{x}{3}\\ \therefore Itssurfacearea=2\left[x*2x+2x*\frac{x}{3}+x*\frac{x}{3}\right]\\ =2\left[2x^2+\frac{2x^2}{3}+\frac{x^2}{3}\right]=2\left[2x^2+x^2\right]\\ =2\left[3x^2\right]=6x^2\\ Volumeoftheparallelopiped=x*2x*\frac{x}{3}=\frac{2}{3}{x}^3\\ Aspertheconditionsofthequestion,\\ surfaceareaoftheparallelopiped+surfaceareaofthesphere=constant\\ \Rightarrow 6x^2+4\pi r^2=K\left(constant\right)\Rightarrow 4\pi r^2=K-6x^2\\ \therefore r^2=\frac{K-6x^2}{4\pi }\dots \left(i\right)\\ NowletV=Volumeoftheparallelopiped+Volumeofthesphere\\ \Rightarrow V=\frac{2}{3}{x}^3+\frac{4}{3}\pi r^3\\ \Rightarrow V=\frac{2}{3}{x}^3+\frac{4}{3}\pi {\left[\frac{K-6x^2}{4\pi }\right]}^{3/2}\left[Fromeq.\left(i\right)\right]\\ \Rightarrow \text{\&thins}\end{array}$

$\begin{array}{l}Squaringbothsides,weget\\ \Rightarrow 4\pi x^2=9\left(K-6x^2\right)\Rightarrow 4\pi x^2=9K-54x^2\\ \Rightarrow 4\pi x^2+54x^2=9K\\ \Rightarrow K=\frac{4\pi x^2+54x^2}{9}\left(ii\right)\\ \Rightarrow 2x^2\left(2\pi +27\right)=9K\\ \therefore x^2=\frac{9K}{2\left(2\pi +27\right)}=3\\ Nowfromeq.\left(i\right)wehave\\ r^2=\frac{K-6x^2}{4\pi }\\ \Rightarrow r^2=\frac{\frac{4\pi x^2+54x^2}{9}-6x^2}{4\pi }\\ \Rightarrow r^2=\frac{4\pi x^2+54x^2-54x^2}{9*4\pi }=\frac{4\pi x^2}{9*4\pi }=\frac{x^2}{9}\Rightarrow r=\frac{x}{3}\therefore x=3r\\ Nowwehave\frac{dV}{dx}=2x^2-\frac{3x}{}{\left(K-6x^2\right)}^{1/2}\end{array}$

$\begin{array}{l}=12-\frac{3}{}\frac{\frac{4K\pi +54K-108K}{4\pi +54}}{}\\ =12-\frac{3}{}\left[\frac{\frac{4K\pi -54K}{4\pi +54}}{}\right]\\ =12-\frac{3}{}\left[\frac{4K\pi -54K}{.}\right]\\ =12-\frac{6}{}\left[\frac{2\pi -27}{.}\right]\\ =12+\frac{6K}{}\left[\frac{27-2\pi }{.}\right]>0\left[?27-2\pi >0\right]\\ \therefore \frac{d^{2}V}{d{x}^2}>0So,itisminima.\\ Hence,thesumofvolumeismin\end{array}$

This is a Long Answer Type Question as classified in NCERT Exemplar

Sol:

This is a Long Answer Type Question as classified in NCERT Exemplar

Sol: 

Explanation- F_x= $\frac{1}{4}\frac{q^2}{4?{?}_0{x}^2}$

W= ${?}_d^{?}fdx$ = ${?}_d^{?}\frac{q^{2}dx}{4*4?{?}_0}\frac{1}{x^2}$

= $\frac{q^2}{4*4?{?}_0}\frac{1}{d}$

= $\frac{{(1.6*{10}^{-19})}^2*9*{10}^9}{4*{10}^{-10}}$ J= 3.6eV 

This is a Long Answer Type Question as classified in NCERT Exemplar

Sol:

$\begin{array}{l}NowputtingthevalueofKineq.\left(i\right)weget\\ 6x^2+4\pi r^2=x^2\left(\pi +6\right)\\ \Rightarrow 6x^2+4\pi r^2=\pi x^2+6x^2\Rightarrow 4\pi r^2=\pi x^2\Rightarrow 4r^2=x^2\\ \therefore 2r=x\\ \therefore x:2r=1:1\\ Nowdifferentiatingeq.\left(ii\right)w.r.t.,x,wehave\\ \frac{d^{2}V}{d{x}^2}=6x-\frac{3}{}\frac{d}{dx}\left[x{\left(K-6x^2\right)}^{1/2}\right]\\ =6x-\frac{3}{}\left[x.\frac{1}{2}*\left(-12x\right)+{\left(K-6x^2\right)}^{1/2}.1\right]\\ =6x-\frac{3}{}\left[\frac{-6x^2}{}+\right]\\ =6x-\frac{3}{}\left[\frac{-6x^2+K-6x^2}{}\right]=6x+\frac{3}{}\left[\frac{12x^2-K}{}\right]\\ =6+\frac{3}{}\left[\frac{\frac{12K}{\pi +6}-K}{}\right]\left[Putx=\right]\\ =6+\frac{3}{}\left[\frac{12K-\pi K-6K}{}\right]=6+\frac{3}{}\left[\frac{6K-\pi K}{}\right]\\ =6+\frac{3}{\pi }\left[\left(6K-\pi K\right)\right]>0soitisminima.\\ Hence,therequiredratiois1:1whenthecombinedvolumeisminimum.\end{array}$

Minimum