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New answer posted
a year agoContributor-Level 10
This is a Long Answer Type Question as classified in NCERT Exemplar
Explanation – Tsand=

= 50
Time taken Toutside=
AR=
RC= AR=
Toutside= 2AR= 50
Tsand
New answer posted
a year agoContributor-Level 10
This is a Long Answer Type Question as classified in NCERT Exemplar
Explanation – r=cos ?…….1
…….2
Multiplying eq1 by sin and 2 with cos and adding
Rsin
= ?( )=j
= rsin
n(rcos )=i
b)r
= -cos
c)r=cos
dr/dt=d/dt(cos )=w[-cos ]
d)L= MoLT0
e)a=1unit , r=
v= dr/dt=
v=
= w
a=
a=
=
New answer posted
a year agoContributor-Level 10
This is a Long Answer Type Question as classified in NCERT Exemplar
Explanation- a) for x direction ux= u+vocos

uy=velocity in y direction= v0sin
now tan
b) let t be the time flight y =0 uy=vosin
y= uyt+1/2 ayt2
0= vosin +
So T =
c) horizontal range R, = (u+vocos T= (u+vocos )
d) for range to be maximum dR/d
4vocos2
So cos =
e) cos =
so
f) if u=0 0
New answer posted
a year agoContributor-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=
tan so 'N

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

(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/
so t
New answer posted
a year agoContributor-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=
New answer posted
a year agoContributor-Level 10
This is a Long Answer Type Question as classified in NCERT Exemplar
Explanation- y=O, uy= Vocos
ay=-gcos , t =T
applying equation of kinematics
y=uyt+ t2
0 = Vocos +T2
T=

T= 2V0/g
X= L, ux=Vosin , ax= gsin , t=T=
X=uxt+
L= Vosin
L= sin
New question posted
a year agoNew answer posted
a year agoContributor-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 ,ay= -gcos
y=uyt +

0= Vosin
T[Vosin T]=0
T = time of flight =
Motion along OX
x= L ,ux= Vocos , ax= -gsin
t =T =
x= uxt+
L= V0cos +
L= T[V0cos ]
L= [Vocos ]
L=
Z= sin
= sin
=
= ½ [sin2]
=
= [sin(2 )-sin ]
For z maximum
2 ,
New question posted
a year agoNew answer posted
a year agoContributor-Level 10
This is a Long Answer Type Question as classified in NCERT Exemplar
Explanation – target T is at horizontal distance x= R+ and between point of projection y= -h
Maximum horizontal range R= …………1
Horizontal component of initial velocity = Vocos
Vertical component of initial velocity = -Vosin
So h = (-Vosin )t + 2………….2
R+ = Vocos
So t=
Substituting value of t in 2 we get
So h = (-V0sin )
H = -(R+ )tan +
, h = -(R+ )tan +
So h = -(R+ ) +
So h = -(R+ )+
So h = -R- +(R+ )
h=
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