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Question 1 Review Exercise 3: 9 Hits, Last modified: 5 months ago; (d) $3$ \\ <btn type="link" collapse="a1">See Answer</btn><collapse id="a1" collapsed="true">(a): $0$... osceles \\ <btn type="link" collapse="a2">See Answer</btn><collapse id="a2" collapsed="true">(a): Equ... %% $-2$ \\ <btn type="link" collapse="a3">See Answer</btn><collapse id="a3" collapsed="true">(d): $-2... of these \\ <btn type="link" collapse="a4">See Answer</btn><collapse id="a4" collapsed="true">(b): $\v
Question 3 & 4, Exercise 3.2: 8 Hits, Last modified: 5 months ago; Solution==== Given $$\vec{r}=p\vec{a}+q\vec{b}.$$ We put the values of $\vec{r},\vec{a}$ and $\vec{b}$ in the given equation. We get $$\hat{i}-9\hat{j}=p(\hat{i}+2\hat{j})+q(5\ha... paring the coeffients of $\hat{i}$ and $\hat{j}$, we have, $$p+5q=1…(i)$$ $$2p-q=-9 …(ii)$$ Multiply $2$ by (i) and subtract (ii) from (i). We have \[\begin{array}{ccc} 2p&+10q&=2 \\ \mathop
Question 9 Exercise 3.4: 8 Hits, Last modified: 5 months ago; -2 \hat{i}+3 \hat{j}+4 \hat{k}$. ====Solution==== We are give the diagonal as shown in figure, instead... t{j}+2 \hat{k}\end{align} From $\triangle A E B$, we have\\ \begin{align}\vec{c}&=\overrightarrow{A E}... dots \ldots(1)\end{align} From $\triangle A E D$. we have\\ \begin{align}\vec{d}&=\overrightarrow{A E}... ext {. }....(2) \end{align} By using (1) and (2), we have,\\ \begin{align}\vec{c} \times \vec{d}&=\lef
Question 2 and 3 Exercise 3.3: 7 Hits, Last modified: 5 months ago; }=2 \hat{i}+\hat{j}-7 \hat{k}$$. ====Solution==== We first find the sum \begin{align}\vec{a}+\vec{b}&=... lign} =====Question 3(i)===== Find the angles between the pairs of vectors: $\hat{i}-\hat{j}+\hat{k},... +\hat{j}+2 \hat{k}$. Let $\theta$ be the angle hetween $\vec{a}$ and $\vec{b}$ \begin{align}\text { th... }$$. =====Question 3(ii)===== Find the angles between the pairs of vectors: $3 \hat{i}+4 \hat{j}, \qu
Question 12 & 13, Exercise 3.3: 7 Hits, Last modified: 5 months ago; in a semicircle is right angle. ====Solution==== We are considering a triangle inside a semicircle as shown. We have to show $\overrightarrow{B A} \cdot \overrightarrow{A C}=0$. We see in figure that: $|\vec{a}|=\vec{b}|=| \vec{c}... ut opposile in direction. From $\triangle A B O$, we have \begin{align}\overrightarrow{O B}+\overright
Question 1, Exercise 3.2: 6 Hits, Last modified: 5 months ago; nd $2(\vec{a}-\vec{b})$. ====Solution==== First we have, \begin{align}\vec{a}-\vec{b}&=3\hat{i}-5\ha... }-8\hat{j}\end{align} Multiply both sides by $2$. We have, $$2(\vec{a}-\vec{b})=10\hat{i}-16\hat{j}$$... then find $|\vec{a}+\vec{b}|$. ====Solution==== We have, \begin{align}\vec{a}+\vec{b}&=3\hat{i}-5\ha... 2\hat{j}\end{align} Taking modulus of both sides. We have, $$|\vec{a}+\vec{b}|=\sqrt{(1)^2+(-2)^2}=\sq
Question 7 & 8 Exercise 3.4: 6 Hits, Last modified: 5 months ago; vec{C}=\vec{C} \times \vec{A}.$$ ====Solution==== We are given\\ $$\vec{A}+\vec{B}+\vec{C}=\vec{O} \te... s product of $\vec{A}$, of both sides with above. we get\\ $$\vec{A} \times(\vec{A}+\vec{B}+\vec{C})=0... }$$\\ Taking cross product of $\vec{B}$ with (1), we get\\ \begin{align}\vec{B} \times(\vec{A}+\vec{B}... c{C}=\vec{A} \times \vec{B}$$\\ From (2) and (3), we get\\ $$\vec{A} \times \vec{B}=\vec{B} \times \ve
Question 9 & 10, Exercise 3.2: 5 Hits, Last modified: 5 months ago; rrow{b}+3\overrightarrow{c}.$ ====Solution==== We compute that\\ \begin{align}2\overrightarrow{a}-\... 1$ internally and externally. ====Solution==== We find the position vector of a point $R$ which div... ng the points internally. By using ratio theorem, we have \begin{align}\overrightarrow{OR}&=\dfrac{1\c... c{4}{3}\hat{j}+\dfrac{1}{3}\hat{k}\end{align} Now we find the position vector of a point $\vec{R}$, wh
Question 12, 13 & 14, Exercise 3.2: 5 Hits, Last modified: 5 months ago; \alpha +1)\hat{j}+2\hat{k}|=3$. ====Solution==== We are given \begin{align}|\alpha \hat{i}+(\alpha +1... 2)^2}&=3.\end{align} Taking square on both sides, we have, \begin{align}&{\alpha ^2+(\alpha +1)^2}+4=9... on 13}} By head to tail rule of vectors addition, we have\\ \begin{align}\vec{u}+\vec{v}&=\vec{w}\\ (... } By comparison $\hat{i},\hat{j}$ and $\hat{k}.$ we have,\\ $$3=-z$$ $$-z=3$$ $$\Rightarrow \,\,\,z=-
Question 7 & 8 Exercise 3.3: 5 Hits, Last modified: 5 months ago; at{k}\quad$ $\vec{b}=\hat{i}-2 \hat{j}-2 \hat{k}$ We compute the dot product \begin{align}\vec{a} \cdo... {b}$ and $\vec{b}$ on $\vec{a}$. ====Solution==== We compute the dot product\\ \begin{align}\vec{a} \c... ector along $y-a x i s$.\\ The cosine of angie between the given vector and $y-a x i s$ is now actually cosine of angle between $\vec{d}$ and $\vec{b}$.\\ Now $\vec{a} \cdot \
Question 6 & 7 Review Exercise 3: 5 Hits, Last modified: 5 months ago; mes \vec{b}$ is a unit vector. Write the angle between $\vec{a}$ and $\vec{b}$. ====Solution==== Let $\theta$ be the angle between two vectors. We are given\\ $$|\vec{a} \times \vec{b}|=1,|\vec{a}|=\sqrt{3} \text { and }|\vec{c}|=\dfrac{2}{3} \text {. }$$ We know that $$|\vec{a} \times \vec{b}|=|\vec{a}||\v
Question 2, Exercise 3.2: 4 Hits, Last modified: 5 months ago; le\rightharpoonup}{a}|=\sqrt{{{(3)}^{2}}}=3$$ Now we know that $$\hat{a}=\dfrac{{\overset{\scriptscrip... onup}{a}|=\sqrt{{{(3)}^{2}}+{{(-4)}^{2}}}=5$$ Now we know that $$\hat{a}=\dfrac{{\overset{\scriptscrip... }{a}|=\sqrt{(1)^2+(1)^2+(-2)^2}=\sqrt{6}$$ \\ Now we know that\\ $$\hat{a}=\dfrac{{\overset{\scriptscr... {3}}{2})}^{2}}+{{(\dfrac{1}{2})}^{2}}}=1$$ \\ Now we know that\\ $$\hat{a}=\dfrac{{\overset{\scriptscr
Question 5(iii) & 5(iv) Exercise 3.5: 4 Hits, Last modified: 5 months ago; {b})-(\vec{a} \cdot \vec{b})^2$. ====Solution==== We have already calculated L.H.S in (ii) that\\ \be... 1^2, a_2^2 b_2^2$ and $ a_3^2 b_3^2$ in the above we get\\ \begin{align}| \vec{a} \times \vec{b}|^2&=a... _2 b_3+2 a_1 a_3 b_1 b_3)....(1)\end{align}\\ Now we know that\\ \begin{align}\vec{a} . \vec{a}&=|\vec... b_1 b_3\end{align}\\ Putting (3) and (2) in (1), we get the desired that is: $$| \vec{a} \times \vec{
Question 5 & 6, Exercise 3.2: 3 Hits, Last modified: 5 months ago; $$\overrightarrow{OB}=7\hat{i}+9\hat{j}.$$ Thus we have \begin{align}\overrightarrow{AB}&=\overright... \hat{i}+y\hat{j}$. Since $ABCD$ is parallelogram, we have that $$\overrightarrow{AB}=\overrightarrow{D... =-x\hat{i}+(5-y)\hat{j}\end{align} By comparison, we have $$3=-x \text{ and } 7=5-y$$ This gives $$x=-
Question 11, Exercise 3.3: 3 Hits, Last modified: 5 months ago; angle and they form right angle triangle. Also if we see \begin{align}\vec{a} \cdot \vec{c}&=-(3 \hat{... orms a right isosceles triangle. ====Solution==== We find vectors representing the sides of triangle f... {P R}|&=\sqrt{(1)^2+(-1)^2}=\sqrt{2} .\end{align} We observe that\\ \begin{align}|\overrightarrow{P Q}
Question 3 Exercise 3.4: 3 Hits, Last modified: 5 months ago
Question 3 & 4 Exercise 3.5: 3 Hits, Last modified: 5 months ago
Question 10 Review Exercise 3: 3 Hits, Last modified: 5 months ago
Question 7, Exercise 3.2: 2 Hits, Last modified: 5 months ago
Question 7, Exercise 3.2: 2 Hits, Last modified: 5 months ago
Question 4 and 5 Exercise 3.3: 2 Hits, Last modified: 5 months ago
Question 5(i) & 5(ii) Exercise 3.5: 2 Hits, Last modified: 5 months ago
Question 6 Exercise 3.5: 2 Hits, Last modified: 5 months ago
Question 9 Exercise 3.5: 2 Hits, Last modified: 5 months ago
Question 4 & 5 Review Exercise 3: 2 Hits, Last modified: 5 months ago
Question 8 & 9 Review Exercise 3: 2 Hits, Last modified: 5 months ago
Question 11, Exercise 3.2: 1 Hits, Last modified: 5 months ago
Question 6 Exercise 3.3: 1 Hits, Last modified: 5 months ago
Question 9 & 10, Exercise 3.3: 1 Hits, Last modified: 5 months ago
Question 2 Exercise 3.4: 1 Hits, Last modified: 5 months ago
Question 1 & 2 Exercise 3.5: 1 Hits, Last modified: 5 months ago
Question 8 Exercise 3.5: 1 Hits, Last modified: 5 months ago
Question 2 & 3 Review Exercise 3: 1 Hits, Last modified: 5 months ago