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Practice Paper – 632
Senior Inter ✦ Physics
SECTION – ASECTION – ASECTION – ASECTION – ASECTION – A
1.1.1.1.1. WhWhWhWhWhat is the principle of superposition of waves ?at is the principle of superposition of waves ?at is the principle of superposition of waves ?at is the principle of superposition of waves ?at is the principle of superposition of waves ?
Ans.Ans.Ans.Ans.Ans. When two or more waves are acting simultaneously on the particleof the medium, the resultant displacement is equal to the algebraic sumof individual displacements of all the waves. This is the principle ofsuperposition of waves.
If y1, y2, ........ yn be the individual displacements of theparticles,then resultant displacement y = y1 + y2 + ...... + yn.
2.2.2.2.2. What is Malus law ?What is Malus law ?What is Malus law ?What is Malus law ?What is Malus law ?
Ans.Ans.Ans.Ans.Ans. Malus' law : Malus' law : Malus' law : Malus' law : Malus' law : It states that the intensity of polarised light transmittedthrough the analyser varies as a square of cosine of the angle between theplane of transmission of analyser and polariser.
I ∝ cos2 θ; I = I0 cos2 θ.
3.3.3.3.3. The electric field in a region is given by The electric field in a region is given by The electric field in a region is given by The electric field in a region is given by The electric field in a region is given by ������� +=
→. Here a. Here a. Here a. Here a. Here a
and b are constants. Find the net flux passing through a squareand b are constants. Find the net flux passing through a squareand b are constants. Find the net flux passing through a squareand b are constants. Find the net flux passing through a squareand b are constants. Find the net flux passing through a square
area of side L parallel to Yarea of side L parallel to Yarea of side L parallel to Yarea of side L parallel to Yarea of side L parallel to Y-Z plane.-Z plane.-Z plane.-Z plane.-Z plane.
Sol.Sol.Sol.Sol.Sol. Given � � � � �→ ∧ ∧
= +
�� � �→ ∧
=
�� � � � � �� � �→ → ∧ ∧ ∧
φ = = +
∴ φ = aL2 � � � ��� � � ��∧ ∧ ∧ ∧
= =
4.4.4.4.4. ThreThreThreThreThree capacitors of capacitances 1 e capacitors of capacitances 1 e capacitors of capacitances 1 e capacitors of capacitances 1 e capacitors of capacitances 1 µµµµµFFFFF, 2 , 2 , 2 , 2 , 2 µµµµµF and 3 F and 3 F and 3 F and 3 F and 3 µµµµµF areF areF areF areF areconnected in series.connected in series.connected in series.connected in series.connected in series.
(a)(a)(a)(a)(a) What is the ratio of charges ?What is the ratio of charges ?What is the ratio of charges ?What is the ratio of charges ?What is the ratio of charges ?
(b)(b)(b)(b)(b)What is the ratio of potential differences ?What is the ratio of potential differences ?What is the ratio of potential differences ?What is the ratio of potential differences ?What is the ratio of potential differences ?Ans.Ans.Ans.Ans.Ans. When capacitors are connected in series
q1 : q2 : q3 = q : q : q = 1 : 1 : 1
SOLUTIONS
PRACTICE PAPER – 6
SENIOR INTER ✦ Physics
Practice Paper – 633
Senior Inter ✦ Physics
V1 : V2 : V3 = � �
� � � � � � �
� � � � �=
∴ V1 : V2 : V3 = 6 : 3 : 2
5.5.5.5.5. Why are household appliances connected in parallel ?Why are household appliances connected in parallel ?Why are household appliances connected in parallel ?Why are household appliances connected in parallel ?Why are household appliances connected in parallel ?
Ans.Ans.Ans.Ans.Ans. In parallel, the voltage (V) across each appliance is same. The
current (I) through them depends upon the power (P) of the appliance.
The higher power appliance draws more current and lower power
appliance draws less current.
(... P = VI or I ∝ P)
6.6.6.6.6. Distinguish between ammeter and voltmeterDistinguish between ammeter and voltmeterDistinguish between ammeter and voltmeterDistinguish between ammeter and voltmeterDistinguish between ammeter and voltmeter.....
Ans.Ans.Ans.Ans.Ans.
7.7.7.7.7. Magnetic lines from continous closed loops. Why ?Magnetic lines from continous closed loops. Why ?Magnetic lines from continous closed loops. Why ?Magnetic lines from continous closed loops. Why ?Magnetic lines from continous closed loops. Why ?
Ans.Ans.Ans.Ans.Ans. Magnetic lines of force always start from north pole and forming
curved path, enter south pole and travel to north pole inside the magnet.
Thus lines of force are forming closed loops.
q qV1 V2 V3
C1 C2C3
V
+q +q–q –q+q –q
AmmeterAmmeterAmmeterAmmeterAmmeter VVVVVoltmeteroltmeteroltmeteroltmeteroltmeter
1) It is used to measure current.
2) Resistance of an ideal Ammeter
is zero.
3) It is connected in series in the
circuits.
1) It is used to measure P.D
between two points.
2) Resistance of ideal volt meter
is infinity.
3) It is connected in parallel in
the circuits.
Practice Paper – 634
Senior Inter ✦ Physics
8.8.8.8.8. WWWWWrite the expression for the reactance ofrite the expression for the reactance ofrite the expression for the reactance ofrite the expression for the reactance ofrite the expression for the reactance of
i) an inductor and i) an inductor and i) an inductor and i) an inductor and i) an inductor and ii) a capacitorii) a capacitorii) a capacitorii) a capacitorii) a capacitor.....
Ans.Ans.Ans.Ans.Ans. i)i)i)i)i) Inductive reactance (XL) = ωL
ii)ii)ii)ii)ii) Capacitive reactance (Xc) = ωC
9.9.9.9.9. If the wavelength of Electromagnetic radiation is doubled, whatIf the wavelength of Electromagnetic radiation is doubled, whatIf the wavelength of Electromagnetic radiation is doubled, whatIf the wavelength of Electromagnetic radiation is doubled, whatIf the wavelength of Electromagnetic radiation is doubled, what
happens to the energy of photon ?happens to the energy of photon ?happens to the energy of photon ?happens to the energy of photon ?happens to the energy of photon ?
Ans.Ans.Ans.Ans.Ans. Photon energy (E) = hν = ��
λ
E ∝
λGiven λ1 = λ, λ2 = 2λ, E1 = E
�
�
�
�
λ=λ
�
� �
�
λ=λ
E2 = E/2.
∴ The energy of photon reduces to half of its initial value
10.10.10.10.10. Define Modulation. Why is it necessary ?Define Modulation. Why is it necessary ?Define Modulation. Why is it necessary ?Define Modulation. Why is it necessary ?Define Modulation. Why is it necessary ?
Ans.Ans.Ans.Ans.Ans. Modulation : Modulation : Modulation : Modulation : Modulation : The process of combining low frequency audio signal
with high frequency carrier wave is called modulation.
SECTION – BSECTION – BSECTION – BSECTION – BSECTION – B
11.11.11.11.11. What are beats ? When do they occur ? Explain their use if anyWhat are beats ? When do they occur ? Explain their use if anyWhat are beats ? When do they occur ? Explain their use if anyWhat are beats ? When do they occur ? Explain their use if anyWhat are beats ? When do they occur ? Explain their use if any.....
Ans.Ans.Ans.Ans.Ans. Two sound waves of nearly same frequency are travelling in the
same direction and interfere to produce a regular waxing (maximum)
and waning (minimum) in the intensity of the resultant sound waves at
regular intervals of time is called beats.
It two vibrating bodies have slightly difference in frequencies, beats
can occur.
No. of beats can be heard ∆υ = υ1 ∼ υ2
Importance :Importance :Importance :Importance :Importance : 1. It can be used to tune musical Instruments
2. Beats are used to detect dangerous gases.
Practice Paper – 635
Senior Inter ✦ Physics
Explanation for tuning musical instruments with beats :Explanation for tuning musical instruments with beats :Explanation for tuning musical instruments with beats :Explanation for tuning musical instruments with beats :Explanation for tuning musical instruments with beats :
Musicians use the beat phenomenon in tuning their musical
instruments. If an instrument is sounded against a standard frequency
and tuned until the beats disappear then the instrument is in tune with
the standard frequency.
12.12.12.12.12. Derive an expression for the intensity of the electric field at aDerive an expression for the intensity of the electric field at aDerive an expression for the intensity of the electric field at aDerive an expression for the intensity of the electric field at aDerive an expression for the intensity of the electric field at a
point on the axial line of an electric dipole.point on the axial line of an electric dipole.point on the axial line of an electric dipole.point on the axial line of an electric dipole.point on the axial line of an electric dipole.
Ans.Ans.Ans.Ans.Ans. Electric field at a point on the axis of a dipole :Electric field at a point on the axis of a dipole :Electric field at a point on the axis of a dipole :Electric field at a point on the axis of a dipole :Electric field at a point on the axis of a dipole :
1) Consider an electric dipole consisting of two charges –q and
+q separated by a distance '2a' with centre 'O'.
2) We shall calculate electric field E at point P on the axial line
of dipole, and at a distance OP = r.
3) Let E1 and E2 be the intensities of electric field at P due to
charges +q and –q respectively.
4) Therefore, E1 = � �� �
� �
� ���� � ��× = ×
πε πε − along AP
and E2 = � �� �
� �
� ���� � ��× = ×
πε πε + along PB
The resultant intensity at P is E = E1 – E2
[... They are opposite and E1 > E2]
⇒ E = � �� �
� �
� �� �� � ��× − ×
πε πε− +
= � �
�
�
� � �� � ��
−
πε − +
= � �
� � ��
� � �� � ��
� � � �
+ − −
π ε −
= � � ��
� ���
� � � �×
πε −
–q+qr →→
E1
E2PO AB→→
Practice Paper – 636
Senior Inter ✦ Physics
∴ E = � � ��
���
� � �πε − � Where P = 2 aq
If r >> a then a2 can be neglected in comparision to r2.
∴ E = � �
� �
��� ��
� �� �× = ×
π ε π ε
In vector form, ��
���
� �
→→
=πε
13.13.13.13.13. Derive an expression for the energy stored in a capacitorDerive an expression for the energy stored in a capacitorDerive an expression for the energy stored in a capacitorDerive an expression for the energy stored in a capacitorDerive an expression for the energy stored in a capacitor.....
Ans. Expression for the energy stored in a capacitor :Ans. Expression for the energy stored in a capacitor :Ans. Expression for the energy stored in a capacitor :Ans. Expression for the energy stored in a capacitor :Ans. Expression for the energy stored in a capacitor : Consider an
uncharged capacitor of capacitance 'c' and its initial will be zero. Now it is
connected across a battery for charging then the final potential difference
across the capacitor be 'v' and final charge on the capacitor be 'Q'
∴ Average potential difference VA = + =� � �
� �
Hence workdone to move the charge Q = W = VA × Q = ��
�
This is stored as electrostatic potential energy 'U'
∴ U = ��
�
We know Q = CV then 'U' can be written as given below.
U = ��
� �= CV2 =
��
��
∴ Energy stored in a capacitor
U = ��
� �= CV2 =
� �
� �
14.14.14.14.14. A potentiometer wire is 5m long and a potential difference of 6A potentiometer wire is 5m long and a potential difference of 6A potentiometer wire is 5m long and a potential difference of 6A potentiometer wire is 5m long and a potential difference of 6A potentiometer wire is 5m long and a potential difference of 6
V is maintained between its ends. Find the emf of a cell whichV is maintained between its ends. Find the emf of a cell whichV is maintained between its ends. Find the emf of a cell whichV is maintained between its ends. Find the emf of a cell whichV is maintained between its ends. Find the emf of a cell which
balances against a length of 180 cm of the potentiometer wire.balances against a length of 180 cm of the potentiometer wire.balances against a length of 180 cm of the potentiometer wire.balances against a length of 180 cm of the potentiometer wire.balances against a length of 180 cm of the potentiometer wire.
Sol.Sol.Sol.Sol.Sol. Length of potentiometer wire L = 5m
Potential difference V = 6 Volt
Practice Paper – 637
Senior Inter ✦ Physics
Potential gradient �
�� !"� #
φ = = =
Balancing length l = 180cm = 1.80m
Emf of the cell E = φl = 1.2 × 1.8 = 2.16V.
15.15.15.15.15. State and explain Biot-Savart lawState and explain Biot-Savart lawState and explain Biot-Savart lawState and explain Biot-Savart lawState and explain Biot-Savart law.....
Ans.Ans.Ans.Ans.Ans. Consider a very small element of length dl of a conductor carrying
current (i). Magnetic induction due to small element at a point p distance
r form the element.
Magnetic induction (dB) is
directly proportional to i) current (i)
ii) Length of the element (dl) iii) sine
angle between r and dl and iv) In-
versely proportional to the square of
the distance from small element to
point P.
dB ∝ �
� � $��
�
θl
dB = �
�
µπ
.�
� � $��
�
θl
where µ0 = permeability in free space.
�
�
µπ = 10–7 Wb m–1 A–1
In vector form ��
� ��
� �� �
→ →
→
×
µ =π
�
16.16.16.16.16. What is Green house effect and its contribution towards theWhat is Green house effect and its contribution towards theWhat is Green house effect and its contribution towards theWhat is Green house effect and its contribution towards theWhat is Green house effect and its contribution towards the
surface temperature of earth ?surface temperature of earth ?surface temperature of earth ?surface temperature of earth ?surface temperature of earth ?
Ans.Ans.Ans.Ans.Ans. Green house effect :Green house effect :Green house effect :Green house effect :Green house effect : Temperature of the earth increases due to
the radiation emitted by the earth is trapped by atmospheric gases like
CO2, CH4, N2, Chlorofluoro carbons etc is called green house effect.
i) Radiation from the sun enters the atmosphere and heat the
objects on the earth. These heated objects emit infrared rays.
P
i
θ
dl
Practice Paper – 638
Senior Inter ✦ Physics
ii) These rays are reflected back to Earth's surface and trapped
in the Earth's atmosphere. Due to this temperature of the earth
increases.
iii) The layers of carbon dioxide (CO2) and low lying clouds pre-
vent infrared rays to escape Earth's atmosphere.
iv) Since day–by–day the amount of carbondioxide in the atmo-
sphere increases, more infrared rays are entrapped in the at-
mosphere.
v) Hence the temperature of the Earth's surface increases day by
day.
17.17.17.17.17. Explain the different types of spectral series.Explain the different types of spectral series.Explain the different types of spectral series.Explain the different types of spectral series.Explain the different types of spectral series.
Ans.Ans.Ans.Ans.Ans. The atomic hydrogen emits a line spectrum consisting of five series.
1) Lyman series : υ = Rc � �
�
−
where n = 2, 3, 4, ........
2) Balmer series : υ = Rc � �
� �
−
where n = 3, 4, 5, ........
3) Paschen series : υ = Rc � �
� �
−
where n = 4, 5, 6, ........
4) Brackett series : υ= Rc � �
� �
−
where n = 5, 6, 7, ........
5) Pfund series : υ= Rc � �
# �
−
where n = 6, 7, 8, ........
18.18.18.18.18. Distinguish between zener breakdown and avalancheDistinguish between zener breakdown and avalancheDistinguish between zener breakdown and avalancheDistinguish between zener breakdown and avalancheDistinguish between zener breakdown and avalanche
breakdown.breakdown.breakdown.breakdown.breakdown.
Ans.Ans.Ans.Ans.Ans. Zener break downZener break downZener break downZener break downZener break down AAAAAvalanche break downvalanche break downvalanche break downvalanche break downvalanche break down
1. Zener break down occurs at
heavily doped diodes.
2. This occurs at low reverse bias
voltages.
1. Avalanche break down
occurs at lightly doped
diodes.
2. This occurs at high reverse
bias voltages.
Practice Paper – 639
Senior Inter ✦ Physics
SECTION – CSECTION – CSECTION – CSECTION – CSECTION – C
19.19.19.19.19. Draw a neat labelled diagram of a compound microscope andDraw a neat labelled diagram of a compound microscope andDraw a neat labelled diagram of a compound microscope andDraw a neat labelled diagram of a compound microscope andDraw a neat labelled diagram of a compound microscope and
explain its working. Derive an expression for its magnification.explain its working. Derive an expression for its magnification.explain its working. Derive an expression for its magnification.explain its working. Derive an expression for its magnification.explain its working. Derive an expression for its magnification.
Ans.Ans.Ans.Ans.Ans. Description :Description :Description :Description :Description : It consists of two convex lenses separated by a dis-tance. The lens near the object is called objective and the lens near theeye is called eye piece. The objective lens has small focal length and eyepiece has of larger focal length. The distance of the object can be adjusted
by means of a rack and pinion arrangement.
WWWWWorking :orking :orking :orking :orking : The object OJ is placed outside the principal focus of the
objective and the real image is formed on the other side of it. The image I1
G1 is real, inverted and magnified.
This image acts as the object for the eyepiece. The position of theeyepiece is so adjusted that the image due to the objective is between the opticcentre and principal focus to form the final image at the near point. Thefinal image IG is virtual, inverted and magnified.
Magnifying PMagnifying PMagnifying PMagnifying PMagnifying Power :ower :ower :ower :ower : It is defined as the ratio of the angle subtended
3. This occurs due to field
emission.4. Width of depletion layer is
small.
3. This occurs due to ioni-sation by collision.
4. Width of depletion layer isalso small.
Ray diagram of compound microscope
ObjectiveEyepiece
J'
I
G
G1
α β
V0
0 F0
F0
2F0 fe µ
0' 0''
J
Practice Paper – 640
Senior Inter ✦ Physics
by the final image at the eye when formed at near point to the angle
subtended by the object at the eye when imagined to be at near point.
Imagining that the eye is at the optic centre, the angle subtended
by the final image is α. When the object is imagined to be taken at near
point it is represented by I J' and OJ = I J'. The angle made by I J' at the eye
is β. Then by the definition of magnifying power.
m = %��&
%��
α θ−β β
for small angles
=β⇒∆
=α⇒∆
"'"'..."
"...
IOIJ
tanOIJ
IOIG
tanIGO
= '(! ')* '( '(
'+, ! ')* '+, )+
= = (... IJ' = OJ)
Dividing and multiplying by I1 G1 on the right side, we get
m =
'( ' (
' ( )+
Magnifying power of the objective (m0) = I1 G1 / OJ = Height of the
image due to the objective. Height of its object.
Magnifying power of the eye piece (me) = IG/I1G1 = Height of the
final image / Height of the object for the eyepiece.
∴ m = m0 × me ..... (1)
TTTTTo find mo find mo find mo find mo find m0 0 0 0 0 ::::: In figure OJ O' and I1 G1 O' are similar triangles.
' ( ),'
)+ ),)
= .
Using sign convention, we find that O'I1 = + v0 and O'O = –u where
v0 is the image distance due to the objective and u is the object distance
for the objective or the compound microscope. I1G1 is negative and OJ is
positive.
Practice Paper – 641
Senior Inter ✦ Physics
∴ m0 = uv0 .
�
(-
)+
=
I
TTTTTo find mo find mo find mo find mo find meeeee : : : : : The eyepiece behaves like a simple microscope. So
the magnifying power of the eye piece.
∴ me = .
/
0
+
Where fe is the focal length of the eyepiece.
Substituting m0 and me in equation (1),
m = + �
.
1 /
2 0
+
When the object is very close to the principal focus F0 of the
objective, the image due to the objective becomes very close to the eyepiece.
u ≈ – f0 and v0 ≈ L
Where L is the length of the microscope. Then
m ≈ –� .
� /
0 0
+
20.20.20.20.20. Describe the working of a AC generator with the aid of simpleDescribe the working of a AC generator with the aid of simpleDescribe the working of a AC generator with the aid of simpleDescribe the working of a AC generator with the aid of simpleDescribe the working of a AC generator with the aid of simple
diagram and necessary expressions.diagram and necessary expressions.diagram and necessary expressions.diagram and necessary expressions.diagram and necessary expressions.
Ans.Ans.Ans.Ans.Ans. "An electrical machine used to convert mechanical energy into
electrical energy is known as A.C generator/alternator".
PPPPPrinciple : rinciple : rinciple : rinciple : rinciple : It works on the principle of electromagnetic induction.
Construction :Construction :Construction :Construction :Construction :
i) Armature : i) Armature : i) Armature : i) Armature : i) Armature : Armature coil (ABCD) consists of a large number of
turns of insulated copper wire wound over a soft iron core.
ii) Strong field magnet : ii) Strong field magnet : ii) Strong field magnet : ii) Strong field magnet : ii) Strong field magnet : A strong permanent magnet (or) an
electromagnet whose poles (N and S) are cylindrical in shape used as a
Practice Paper – 642
Senior Inter ✦ Physics
field magnet. The armature coil rotates between the pole pieces of the
field magnet.
iii) Slip rings : iii) Slip rings : iii) Slip rings : iii) Slip rings : iii) Slip rings : The two ends of the armature coil are connected to
two brass slip rings R1 and R2. These rings rotate along with the armature
coil.
iv) Brushes : iv) Brushes : iv) Brushes : iv) Brushes : iv) Brushes : Two carbon brushes B1 and B2 are pressed against
the slip rings. The brushes remain fixed while slip rings rotate along with
the armature. These brushes are connected to the load through which the
out put is obtained.
WWWWWorking : orking : orking : orking : orking : When the armature coil ABCD rotates is the magnetic
field provided by the strong field magnet, it cuts the magnetic line of force.The magnetic flux linked with the coil changes due to the rotation of thearmature and hence induced e.m.f is set up in the coil.
B C
Iron core
SN
A D
B1R1
R2B2
Output
Practice Paper – 643
Senior Inter ✦ Physics
The current flows out through the brush B, in one direction of halfof revolution and through the brush B2 in the next half revolution in thereverse direction. This process is repeated, therefore e.m.f produced is of
alternating nature.
Theory :Theory :Theory :Theory :Theory :
i) When the coil is rotated with
a constant angular velocity (ω)
ii) The angle between the normal
to the coil and magnetic field→� at any instant is given by
θ = ωt —— (1)
iii) The component of magnetic field normal to the plane of the coil
= B cos θ = B cosωt —— (2)
iv) Magnetic flux linked with the single turn of the coil
= (B cos ωt) A —— (3)
where A is the area of the coil, if the coil has n turns
v) Total magnetic flux linked with the coil
(φ) = n(B cos ωt) A —— (4)
According to Faraday's law,
ε = – � �
�% �%
φ = − (nBA cos ωt)
= – nBA (–ω sin ωt)
ε = nBA ω sin ωt —— (5)
Where nBAω is the maximum value of e.m.f (ε0)
ε = ε0 sin ωt —— (6) ( ... ω = 2πυ)
Instantaneous current is the circuit is given by
I = �
3 3
ε ε= sin ωt � �3
ε =
N SB
θ
θ
Practice Paper – 644
Senior Inter ✦ Physics
I = I0 sin ωt —— (7)
The direction of the current changes periodically and therefore the
current is called alternating current (a.c.).
21.21.21.21.21. Explain the principle and working of a nuclear reactor with theExplain the principle and working of a nuclear reactor with theExplain the principle and working of a nuclear reactor with theExplain the principle and working of a nuclear reactor with theExplain the principle and working of a nuclear reactor with the
help of a labelled diagram.help of a labelled diagram.help of a labelled diagram.help of a labelled diagram.help of a labelled diagram.
How much How much How much How much How much 235235235235235U is consumed in a day in an atomic powerU is consumed in a day in an atomic powerU is consumed in a day in an atomic powerU is consumed in a day in an atomic powerU is consumed in a day in an atomic power
house operating at 400MWhouse operating at 400MWhouse operating at 400MWhouse operating at 400MWhouse operating at 400MW, provided the whole of mass , provided the whole of mass , provided the whole of mass , provided the whole of mass , provided the whole of mass 235235235235235U isU isU isU isU is
converted into energy ?converted into energy ?converted into energy ?converted into energy ?converted into energy ?
Ans.Ans.Ans.Ans.Ans. PPPPPrinciple : rinciple : rinciple : rinciple : rinciple : A nuclear reactor works on the principle of achieving
controlled chain reaction in natural Uranium 238U enriched with 235U,
consequently generating large amounts of heat.
A nuclear reactor consists of (1) Fuel (2) Moderator (3) Control
rods (4) Radiation shielding (5) Coolant.
1.1.1.1.1. FFFFFuel and clad :uel and clad :uel and clad :uel and clad :uel and clad : In reactor the nuclear fuel is fabricated in the
form of thin and long cylindrical rods. These group of rods treated as a
fuel assembly. These rods are surrounded by coolant, which is used to
transfer of heat produced in them. A part of the nuclear reactor which use
to store the nuclear fuel is called the core of the reactor. Natural uranium,
enriched uranium, plutonium and uranium – 233 are used as nuclear fuels.
Nuclear Reactor
ModeratorControl Rods
Con
cret
e w
all
U235 in Aluminium Cylinders
Coolant
CoolantWater
Steamto
TurbainsCoolant
Practice Paper – 645
Senior Inter ✦ Physics
2. Moderator : 2. Moderator : 2. Moderator : 2. Moderator : 2. Moderator : The average energy of neutrons released in fissionprocess is 2 MeV. They are used to slow down the velocity of neutrons.Heavy water or graphite are used as moderating materials in reactor.
3. Control Rods : 3. Control Rods : 3. Control Rods : 3. Control Rods : 3. Control Rods : These are used to control the fission rate in reactorby absorbing the neutrons. Cadmium and boron are used as controllingthe neutrons, in the form of rods.
4. Shielding : 4. Shielding : 4. Shielding : 4. Shielding : 4. Shielding : During fission reaction beta and gamma rays areemitted in addition to neutrons. Suitable shielding such as steel, lead,concrete etc are provided around the reactor to absorb and reduce theintensity of radiations to such low levels that do not harm the operatingpersonnel.
5. Coolant : 5. Coolant : 5. Coolant : 5. Coolant : 5. Coolant : The heat generated in fuel elements is removed byusing a suitable coolant to flow around them. The coolants used are waterat high pressures, molten sodium etc.
WWWWWorking : orking : orking : orking : orking : Uranium fuel rods are placed in the aluminium cylinders.The graphite moderator is placed in between the fuel cylinders. To controlthe number of neutrons, a number of control rods of cadmium or berylliumor boron are placed in the holes of graphite block. When a few 235U nucleiundergo fission fast neutrons are liberated. These neutrons pass throughthe surrounding graphite moderator and loose their energy to becomethermal neutrons. These thermal neutrons are captured by 235U. The heatgenerated here is used for heating suitable coolants which in turn heatwater and produce steam. This steam is made to rotate steam turbine andthere by drive a generator of production for electric power.
PPPPProblem :roblem :roblem :roblem :roblem : P = 400 MW = 400 × 106 W,
c = 3 × 108 m/s
t = 24 hours = 24 × 60 × 60 sec
E = mc2
-�
�%�
= � �%
=
m =
��� � �� � �
4 �
−× × × ××
= 384 × 10–6 kg
∴ Mass required = 384 ×10–6 × 103 g = 0.384 g
❖ ❖ ❖ ❖ ❖
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