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New answer posted

a year ago

0 Follower 2 Views

V
Vishal Baghel

Contributor-Level 10

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

Explanation – Tsand= A P + Q C 1 + P Q v = 25 2 + 25 2 1 + 50 2 v

 = 50 2 + 50 2 v = 50 2 1 v + 1

Time taken Toutside= A R + R C 1 s

AR= 75 2 + 25 2 = 25 10 m

RC= AR= 25 10 m

Toutside= 2AR= 50 10 s

Tsandoutside  . so After solving we get velocity is greater v= 0.81m/s

New answer posted

a year ago

Motion in two dimensions, in a plane can be studied by expressing position, velocity and acceleration as vectors in Cartesian co-ordinates where are unit vector along x and y directions, respectively and Ax and Ay are corresponding components of (Fig). Motion can also be studied by expressing vectors in circular polar co-ordinates as  A=Arr + A θ θ  where ? =r/r=cos θ i + s i n θ j  and θ = - s i n θ i + c o s θ j are unit vectors along direction in which 'r' and 'q ' are increasing. 

(a) Express in terms of q.

(b) Show that both q are unit vectors and are perpendicular to each other.

(c) Show that d(r)/dt , where w =dq/dt q and dq/dt = -wr

(d) For a particle

...more
0 Follower 4 Views

V
Vishal Baghel

Contributor-Level 10

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

Explanation – r=cos θ ? + s i n θ ?…….1

θ = - s i n θ ? + c o s θ ? …….2

Multiplying eq1 by sin θ  and 2 with cos θ and adding

Rsin θ + θ c o s θ = s i n θ c o s θ ? + s i n 2 θ j + c o s 2 θ ? - s i n θ c o s θ ?

= ?( c o s 2 θ + s i n 2 θ )=j

= rsin θ + θ c o s θ = j

 n(rcos θ - θ s i n θ )=i

b)r θ = c o s θ ? + s i n θ ? ( - s i n θ ? + c o s θ ? )

 = -cos θ s i n θ + s i n θ . c o s θ = 0 θ = 90

c)r=cos θ ? + s i n θ ?

dr/dt=d/dt(cos θ ? + s i n θ ? )=w[-cos θ ? + s i n θ ? ]

d)L= MoLT0

e)a=1unit , r= θ r = θ [ c o s θ ? + s i n θ ? ]

v= dr/dt= d θ d t r + θ d d t [ c o s θ ? + s i n θ ? ]

v= d θ d r r + θ [ - c o s θ ? + s i n θ ? ] d θ d t

= d θ d t r + θ w θ = w r + w θ θ

a= d d t w r + w θ θ = d d t d θ d t r + d θ d t θ θ

a= d 2 θ d t 2 r + d θ d t d r d t + d 2 θ d t 2 θ θ + d θ d t d d t θ θ

= d 2 θ d t 2 r + w 2 θ + d 2 θ d t 2 θ θ + w 2 θ + w 2 θ ( - r )

New answer posted

a year ago

0 Follower 5 Views

V
Vishal Baghel

Contributor-Level 10

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

Explanation- a) for x direction ux= u+vocos θ

uy=velocity in y direction= v0sin θ

now tan θ = u y u x = u o s i n θ u + u o c o s θ

θ = t a n - 1 u o s i n θ u + u o c o s θ

b) let t be the time flight y =0 uy=vosin θ , a y = - g , t = T

y= uyt+1/2 ayt2

0= vosin θ T + 1 2 - g T 2

So T = 2 u o s i n θ g

c) horizontal range R, = (u+vocos θ T= (u+vocos θ ) 2 u o s i n θ g

d) for range to be maximum dR/d θ = 0

v o g 2 u c o s θ + v o c o s 2 θ * 2 = 0

2 u c o s θ + 2 v o 2 c o s 2 θ - 1 = 0

4vocos2 θ + 2 u c o s θ - 2 v o = 0

So cos θ = - u ? u 2 + 8 v o 2 4 v o

θ = c o s - 1 - u ± u 2 + 8 v o 2 4 v o

e) cos θ = - v o ? u 2 + 8 v o 2 4 v o = - 1 + 3 4 = 1 2

so θ = 60

f) if u=0 θ m a x = c o s - 1 - 0 ± u 2 + 8 v o 2 4 v o = c o s - 1 1 2 = 45 0

New answer posted

a year ago

0 Follower 8 Views

V
Vishal Baghel

Contributor-Level 10

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

Explanation – speed of river Vr= 3m/s

Speed of swimmer Vs= 4m/s

(a) when swimmer starts swimming due north then its resultant velocity

V= v r 2 + v s 2 = 3 2 + 4 2 = 5 m / s

tan so 'N

(b) to reach at point B resultant velocity will be

V= v s 2 - v r 2 = 4 2 - 3 2 = 7 m / s

tan θ = v r v = 3 7

(c) time taken by swimmer t =d/v= d/4s

in case b time taken by swimmer to cross the river

t1=d/v=d/ 7

so t

New answer posted

a year ago

0 Follower 4 Views

V
Vishal Baghel

Contributor-Level 10

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

Explanation – Vr= a? +b?

Velocity vg= 5m/s

Velocity of rain w.r.t girl = Vr-Vg= a? +b? -5?

= (a-5)? +b?

a-5=0, a=5

case II 

vg = 10m/s?

Vrg= Vr - Vg

 = a? +b? -10? = (a-10)? +b?

Rain appear to be fall at 45 degree so = b/a-10 =1

So b =-5

Velocity of rain = a? +b?

Vr = 5? -5?

Speed of rain Vr= 5 2 + ( - 5 ) 2 = 5 2 m / s

New answer posted

a year ago

0 Follower 2 Views

V
Vishal Baghel

Contributor-Level 10

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

Explanation- y=O, uy= Vocos θ

ay=-gcos θ , t =T

applying equation of kinematics

y=uyt+ 1 2 a y t2

0 = Vocos θ T +T2 1 2 ( - g c o s θ )

T= 2 V o c o s θ g c o s θ

T= 2V0/g

X= L, ux=Vosin θ  , ax= gsin θ  , t=T= 2 V o g

X=uxt+ 1 2 a x t 2

L= Vosin θ T + 1 2 g s i n θ T 2

L= 4 v o 2 g sin θ

New question posted

a year ago

0 Follower 8 Views

New answer posted

a year ago

0 Follower 5 Views

V
Vishal Baghel

Contributor-Level 10

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

Explanation – particle is projected from the point O.

Let time taken in reaching from point O to point P is T.

for journey O to P

y=0,uy= Vosin β ,ay= -gcos α , t = T

y=uyt + 1 2 a y t 2

0= Vosin β T + 1 2 - g c o s α T 2

T[Vosin β - g c o s α 2 T]=0

T = time of flight = 2 V o s i n β g c o s α

 

Motion along OX

x= L ,ux= Vocos β , ax= -gsin α

t =T = 2 V o s i n β g c o s α

x= uxt+ 1 2 a x t 2

L= V0cos β T + 1 2 ( - g s i n α ) T 2

L= T[V0cos β - 1 2 g s i n α T ]

L=  2 V o s i n β g c o s α [Vocos β - V o s i n α s i n β c o s α ]

L= 2 v o 2 s i n β g c o s 2 α c o s ? α + β

Z= sin β c o s ? α + β

 = sin β [ c o s α c o s β - s i n α s i n β ]

= 1 2 ( c o s α + s i n 2 β - 2 s i n α . s i n 2 β )

= ½ [sin2] β c o s α - s i n α ( 1 - c o s 2 β )

= 1 2 [ s i n 2 β c o s α + c o s 2 β . s i n α - s i n α ]

= 1 2  [sin(2 β + α )-sin α ]

For z maximum

2 β + α = π 2  , β = π 4 - α 2

New question posted

a year ago

0 Follower 6 Views

New answer posted

a year ago

0 Follower 6 Views

V
Vishal Baghel

Contributor-Level 10

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

Explanation – target T is at horizontal distance x= R+ ? x and between point of projection y= -h

Maximum horizontal range R= v o 2 g θ = 45 …………1

Horizontal component of initial velocity = Vocos θ

Vertical component of initial velocity = -Vosin θ

So h = (-Vosin θ )t + 1 2 g t 2………….2

R+ ? x  = Vocos θ * t

So t= R + ? x v o c o s θ

Substituting value of t in 2 we get

So h = (-V0sin θ ) R + ? x v o c o s θ + 1 2 g ( R + ? x v o c o s θ ) 2

H = -(R+ ? x )tan θ + 1 2 g ( R + ? x ) 2 v o 2 c o s 2 θ

θ = 45 ,  h = -(R+ ? x )tan 45 + 1 2 g ( R + ? x ) 2 v o 2 c o s 2 45

So h = -(R+ ? x ) 1 + 1 2 g ( R + ? x ) 2 v o 2 1 2

So h = -(R+ ? x )+ ( R + ? x ) 2 R

So h = -R- ? x +(R+ ? x 2 R + 2 ? x )

 h= ? x + ? x 2 R

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