Tuesday, December 16, 2025

12th PHYSICS IMP PRACTICE QUESTIONS - 2026 FOR MAHARASHTRA HSC BOARD


12th PHYSICS IMP PRACTICE QUESTIONS - 2026

FOR MAHARASHTRA HSC BOARD 

IMPORTANT PRACTICE QUESTION for 12TH PHYSICS 


● PRACTICE THEORY QUESTIONS FOR 12TH PHYSICS ●
IMPORTANT NOTE: 
1) Please read the board Textbook in detail.
2) Prepare all Definitions, Concepts, Laws,  
     Rules, Properties/ Characteristics,  
     Assumptions Formulae.
3) Prepare all diagrams, constructional  
    diagrams, circuit diagrams, ray diagrams.
4) Following are the practice questions for 
     your board study.

# For Numerical Problems study the Solved Problems from Balbharti PHYSICS Textbook and Solve all Unsolved problems from exercise given in the Textbook.

PART 1
Chapter 1 To 5
CHAPTER 1.  Rotational Dynamics 

1. Distinguish Between Centripetal force and       Centrifugal force.
2. What is the banking of road and obtain an       expression for the maximum/minimum           safety speed of vehicles moving along             curve horizontal road.
3. Draw the neat labelled diagram of the              conical pendulum state the expression for      its periodic time and the term of length.
4. A bob tied to a string is whirled in a non-        uniform vertical circular motion. Derive        the expression for tension in the string at        uppermost and lowermost position.
 5. Show that the difference in tensions in           the string at the highest and lowest                  positions is 6 mg.
 6. Show that the K.E of a rotating body                 about  a given axis is equal to 1/2 lω².
7. State and prove the theorem of                          parallel/perpendicular axes 
8. State and prove the law of conservation of      angular momentum.
9. Show that / prove that τ =I𝛼.          
             ## ******** ##
Chapter 2.
Mechanical Properties of Fluids
1. Define a) Intermolecular force b) adhesive       force c) Cohesive force d) Range of                   molecules e) Surface Film.

2. Explain the phenomenon of surface                  tension on the basis of molecular theory. 

3. What is Surface energy? Obtain the                  relation between Surface Tension and              surface energy.

4. Define surface tension. State its SI unit            and dimensions.

5. Define angle of contact? State its four              characteristics.

6. Explain the effect of impurity on Surface        tension?

7. Derive Laplace's law for the spherical              membrane of the bubble due to surface          tension.

8. Define capillary and capillarity.Obtain the      expression for capillary rise or fall ?

9. Define critical velocity. Write the                       expression for the Reynolds Number.

10. Define Velocity gradient and coefficient of viscosity?

11. Explain Newton’s law of viscosity. Hence define coefficient of viscosity.

12. State the Stokes law. State its formula for Terminal Velocity.

13. Obtain an expression for terminal velocity of a spherical object falling through a viscous fluid.

14. Explain the formation of concave and convex surface of a liquid on the basis of molecular theory.

###*******###
PART 2
Chapter 3. Kinetic Theory of Gases and Radiation

1. On the basis of kinetic theory of gases. Derive an expression for the  
   pressure exerted by a gas.
2. Define R.M.S velocity / speed.
3. Explain Mayers relation for  a) Monoatomic Gas b) Dia-atomic c) polyatomic molecules.
4. Define a) coefficient of absorption b) coefficient of reflection c) coefficient of  
transmission?
5. What is perfectly black body and Draw the labelled diagram?
6. Explain Ferry's black body.
7. Explain black body radiation spectrum in term of wavelength?
8. State and explain a) Wien's displacement law b) Stefan law ?
9. Define emissive power and coefficient of emission of a body?
###*********###

Chapter 4. Thermodynamics 

1. State first law of thermodynamics.

2. State Zeroth law of thermodynamics.

3. Define internal energy. 

4. What is meant by thermal equilibrium? 
OR What is meant by the expression ‘two systems are in thermal equilibrium?

5. Work Done during a thermodynamics process.

6. Explain classification of thermodynamic systems.

7. What is a thermodynamic process? Give an exmple.

8. On the basis of the kinetic theory of gases, explain 
(i) positive work done by a system (ii) negative work done by a system.

9. Obtain an expression for the work done by a gas. OR Show that the work done by a gas is given by.
             
10. What is an isothermal process? Obtain an expression for the work done by a gas in an isothermal process.

11. Explain a) Reversible / Irreversible process 
b) Isothermal process. 
c) Isobaric process. 
d) Isochoric process. 
e ) adiabatic  process /  
      cyclic process.
###********###

PART 3
Chapter 5. Oscillations

1. Define linear S.H.M ? Obtain an expression for differential Equation of linear SHM.

2. From differential equation of linear SHM, obtain an expression for acceleration, velocity and displacement of particle in SHM ?

3. Discuss the composition of two SHM along the same path having same period and find the resultant amplitude and initial phase?

4. Deduce the expressions for Kinetic Energy and Potential Energy and total energy of a particle performing SHM.

5. Define Simple pendulum. Derive expression for the period of motion of simple pendulum. Also state on which factor it depends?

6. Define Angular SHM and obtain its differential equation?

PART 2

Chapter 6 to 10

Chapter 6. Superposition of Waves 

1. State the equation of  stationary wave on stretched string and condition of nodes and antinodes ?

2. State the properties of Stationary wave.

3. Distinguish between a) progressive wave and stationary wave 

b) Free and Force vibration?

4. Obtain the expression for the frequency of the first three modes of vibration of stretched string between two rigid support with the help of neat labelled diagram. Hence show that all harmonics are present in these vibrations.

5. Draw the neat labelled diagram of the first three modes of vibration of air column in a pipe open at one end (or closed at one end). 

Obtain the formule for the frequency of the first three modes of vibration of air column in the same pipe. Also in this case show that odd harmonics are present. 

6. Obtain an expression for the frequency of the first three modes of vibration of air column in the pipe open at both end with neat labelled diagram. Also in this case show that even harmonics are present. 

7. Show that the fundamental frequency of vibration of the air column in a pipe open at both ends is double that of a pipe of the same length and closed at one end.

8. Two organ pipes closed at one end have the same diameters but different lengths. Show that the end correction at each end is where the symbols have their usual meanings.

9. What are beats? Define (1) the period of beats (2) beat frequency.

10. Explain the production of beats and deduce analytically the expression for beat frequency.

                    OR 

 Discuss analytically the formation of beats and show that 

(1) the beat frequency equals the difference in frequencies of two interfering waves

(2) the waxing and waning occur alternately and with the same period.

11. Explain any two applications of beats.

          ###*********###



Chapter 7. Wave Optics

1 Give a brief account of Huygens’ wave theory of light. State its merits and demerits.

2. State Huygens’ principle.

3. Explain the construction and propagation of a plane wavefront using Huygens’ principle.

4. Explain the construction and propagation of a spherical wavefront using Huygens’ principle.

5.Explain the phenomenon of polarization of light by reflection. 

                      OR 

   Explain Brewster’s law.

6. Describe with a neat labelled ray diagram the Fraunhofer diffraction pattern due to a single slit. Obtain the expressions for the positions of the intensity minima and maxima. Also obtain the expression for the width of the central maximum.

7. In Young’s double-slit experiment, a glass slide of refractive index ng and thickness b is placed in front of one of the slits. 

What happens to the interference pattern and fringe width ?

 Derive an expression for the positions of the bright fringes in the interference pattern.

8. State and explain Rayleigh’s criterion for minimum resolution.

              ###********###



Chapter 8. Electrostatics 

1.Obtain an expression for the electric field intensity at a point outside a charged conducting spherical shell.

Hence, obtain an expression for the electric intensity 

(i) on the surface of (i.e. just outside) the spherical conductor. 

(ii) inside the spherical conductor.

2. Obtain an expression for the electric field intensity at a point outside an infinitely long charged cylindrical conductor.

3. Obtain an expression for the electric field intensity at a point outside a uniformly charged thin infinite plane sheet.

4. Obtain an expression for the electric potential energy of a system of two isolated point charges.

5. Obtain an expression for the electric potential at a point due to an isolated point charge.

6. Derive an expression for the electric potential at a point due to a short electric dipole. Hence, write the expression for the electric potential at a point 

(i) on the dipole axis 

(ii) on the dipole equator.

7. Derive an expression for the potential energy of a system of two point charges.

8. Obtain an expression for the potential energy of a configuration of N point charges.

9. Derive an expression for the electric potential energy of an electric dipole in a uniform electric field. 

                        OR

Derive an expression for the total work done in rotating an electric dipole through an angle θ in a uniform electric field.

10. Derive an expression for the effective or equivalent capacitance (capacity) of a combination of a number of capacitors connected in series. OR

Derive an expression for the effective capacitance of three capacitors connected in series.

11. Explain the effect of a dielectric on the capacitance of a isolated charged parallel-plate capacitor.

Hence, show that if a dielectric of relative permittivity (dielectric constant) k completely fills the space between the plates, the capacitance increases by a factor k.

12. Show that the energy of a charged capacitor is 1/2 CV². Also, express this in other forms. 

                         OR

Derive an expression for the energy stored in a charged capacitor. Express it in different forms.

              ###********###



Chapter 9. Current Electricity 

1 State Kirchhoff’s first law or current law or junction law.

2. What is the sign convention used for Kirchhoff’s first law? Explain with an example.

3. What is the sign convention used for Kirchhoff’s first law? Explain with an example.

4. What is the sign convention used for Kirchhoff’s second law ? Explain with an example.

5. Obtain the balancing condition in case of Wheatstone’s network.

6. Explain with the help of neat circuit diagram, how you determine the unknown resistance by using a meter-bridge.

7. Describe how a potentiometer is used to compare the emfs of two cells by combination method.

8. Describe with the help of a neat circuit diagram how you will determine the internal resistance of a cell by using a potentiometer.

9. State the advantages of a potentiometer over a voltmeter.

10. Explain how a moving-coil galvanometer is converted into an ammeter. Derive the necessary formula.

11. Explain how a moving-coil galvanometer is converted into a voltmeter. Derive the necessary formula.

12. Distinguish between an ammeter and a voltmeter.

           ###*********####


Chapter 10. Magnetic Fields due to Electric Current 


1 (a) State the factors which the magnetic force on a charge depends upon and write its vector cross product relationship. 

    (b) Hence state the expression for the Lorentz force on a charge due to an electric field as well as a magnetic field.

    (c) Hence discuss the magnetic force on a charged particle which is

(i) moving parallel to the magnetic field (ii) stationary.

2. Define the SI unit of magnetic induction from Lorentz force.

3. Obtain an expression for the magnetic force acting on the straight wire carrying a current. Also extend this formula for a wire of arbitrary shape. 

4. Derive an expression for the net torque on a rectangular current-carrying loop placed in a uniform magnetic field with its rotation axis perpendicular to the field.

5. Describe the construction of a suspended-type moving-coil galvanometer with a neat labelled diagram.

6. State working of a moving- coil galvanometer (suspended-coil type).

7. State the Biot-Savart law (Laplace law) for the magnetic induction produced by a current el-ement. Express it in vector form.

8. Using Biot-Savart’s law, obtain the expression for the magnetic induction near a straight infinitely long current-carrying wire.

9. Show that currents in two long, straight, parallel wires exert forces on each other. Derive the expression for the force. 

                      OR

    Derive an expression for the force per unit length between two infinitely long parallel conductors carrying current and hence define the ampere.

10. Obtain an expression for the magnetic induction produced by a current in a wire in the shape of a circular arc at its centre of curvature. 

Hence obtain an expression for the magnetic induction at the centre of a circular coil carrying a current.

11. Derive an expression for the magnetic induction at a point on the axis of a circular coil carrying a current.

12. State and explain Ampere’s circuital law.

13. Using Ampere’s law, obtain an expression for the magnetic induction near a current-carrying straight, infinitely long wire.

14. Using Ampere’s law, derive an expression for the magnetic induction inside an ideal solenoid carrying a steady current.

15. Using Ampere’s law, derive an expression for the magnetic induction inside an ideal toroid carrying a steady current.

              ###********###

PART 3

 CHAPTER 11 TO 16

Chapter 11. Magnetic Materials 



1. Explain the directional characteristic of a bar magnet. State its use.

2. Obtain an expression for orbital magnetic moment of an electron revolving about the nucleus of an atom. 

                   OR

Show that orbital magnetic moment of an electron revolving about the nucleus of an atom is proportional to its angular momentum

3. State formula for gyromagnetic ratio. Find the gyromagnetic ratio of Electron. ( Given: me = 9.1 ×10⁻³¹kg, and e= 1.6 × 10⁻¹⁹ C).

4. What is the gyromagnetic ratio of an orbital electron ? State its dimensions and the SI unit.

5. State the vector form of the formula of orbital magnetic moment of an electron revolving about the nucleus of an atom. State why it is Negative? 

6. Obtain the expression for Bohr Magneton. State its value with unit.

7. Explain magnetization of a material.

8. Define magnetization. State its dimensions and the SI unit. OR

   Define magnetization. State its formula and SI unit.

9. Define magnetic intensity. State its dimensions and the SI unit.

10. What is the magnetic susceptibility of a medium?

11. Is magnetic susceptibility a dimensionless quantity? Why?

                *************



CHAPTER 12. ELECTROMAGNETIC INDUCTION 

1) Express Faraday-Lenz’s law of electromagnetic induction in an equation form.

2) Determine the motional emf induced in a straight conductor moving in a uniform magnetic field with constant velocity.

3) Find an expression for the power expended in pulling a conducting loop out of a magnetic field.

4) What are eddy currents? State applications of eddy currents.

5) Explain and define the self inductance of a coil.

6) State and define the SI unit of self inductance. Give its dimensions.

7) Obtain an expression for the self inductance of a solenoid.

8) Derive the expression for the energy stored in the magnetic field of an inductor.

9) Obtain an expression for the self inductance of a solenoid.

10) Explain and define mutual inductance of a coil with respect to another coil.

11) Show that the mutual inductance for a pair of inductively coupled coils/circuits of self inductances L1 and L₂ is given by M = K√L1L₂ , where K is the coupling coefficient.

12) What is a transformer? State the principle of working of a transformer.

13) Describe the construction and working of a transformer with a neat labelled diagram.

14) Distinguish between a step-up and a step-down transformers.  

           *****************
      Chapter 13 AC CIRCUITS 

1) What is the average or mean value of an alternating emf? Obtain the expression for it. 
2) What is the rms value of an alternating current? Find the relation between the rms value and peak value of an alternating current that varies sinusoidally with time.
3) What is a phasor? What is a phasor diagram ? Illustrate it with an example.
4) An alternating emf e = e₀ sin ωt is applied to a resistor of resistance R. 
Write the expression for the current through the resistor. Show the variation of emf and current with ωt. 
Draw a phasor diagram to show emf and current.
5) Draw a Phasor diagram showing e and i in the case of a purely inductive circuit.
6) An alternating emf is applied to an LR circuit. Assuming the expression for the current, obtain the expressions for the applied emf and the effective resistance of the circuit. Assume the inductor and resistor to be ideal. 
Draw the phasor diagram showing the emf and current.
7) Draw the impedance triangle for a series LCR AC circuit and write the expressions for the impedance and the phase difference between the emf and the current.
8) What is an acceptor circuit ? State its use.
9) Explain electrical resonance in an LC parallel circuit. Deduce the expression for the resonant frequency of the circuit.
10) What is a rejector circuit? State its use.
11) How are oscillations produced using an inductor and a capacitor?
12) Explain electrical resonance in an LCR series circuit. 
Deduce the expression for the resonant frequency of the circuit.
             **************
Chapter 14 Dual Nature of Radiation and Matter

1) With a neat diagram, describe the apparatus to study the characteristics of photoelectric effect.
2) In the experiment to study photoelectric effect, describe the effects of the frequency and intensity of the incident radiation on the photoelectric current, for a given emitter material and potential difference across the photoelectric cell.
3) Define (1) Threshold frequency (2) Threshold wavelength (3) Stopping potential.
4) State the characteristics of photoelectric effect.
5) Define photoelectric work function of a metal.
6) Write Einstein’s photoelectric equation and explain its various tends. How does the equation explain the various features of the photoelectric effect?
7) Explain wave-particle duality of electromagnetic radiation.
8) State the de Broglie hypothesis and the de Broglie equation.
9) Derive an expression for the de Broglie wavelength associated with an electron accelerated from rest through a potential difference V. Consider the non relativistic case.
10) Derive an expression for the de Broglie wavelength.
            ************

Chapter 15 Structure of Atoms and Nuclei 

1) Explain Thomson’s model of the atom. What are its drawbacks?
2) Explain Rutherford’s model of the atom. State the difficulties faced by Rutherford’s model of the atom.
3) State and explain the formula that gives wavelengths of lines in the hydrogen spectrum.
4) State the Postulates of Bohr’s atomic model.
5) speed of an electron in a Bohr orbit. Hence, show that it is inversely proportional to the principal quantum number.
6) Derive an expression for the radius of the nth Bohr orbit in an atom. Hence, show that the radius of the orbit is directly proportional to the square of the principal quantum number.
7) Show that the energy of the electron in the nth stationary orbit in the hydrogen atom is Eₙ = -RHch/n².
8) Draw a neat, labelled energy level diagram for the hydrogen atom. Hence explain the different series of spectral lines for hydrogen.
9) Obtain the ratio of the longest wavelength of spectral line in the Paschen series to the longest wavelength of spectral line in the Brackett series.
10) State the limitations of Bohr’s atomic model.
11) On the basis of the de Broglie hypothesis, obtain Bohr’s condition of quantization of angular momentum.
12) State the law of radioactive decay and express it in the exponential form.
OR 
State the law of radioactive decay. Hence derive the relation N = N₀e-λt, where the symbols have their usual meanings.
13) Define half-life a radioactive element and obtain the relation between half-life and decay constant.
14) What is meant by average life or mean life of a radioactive species ? How is it related to the half-life?
               ************
Chapter 16 Semiconductor Devices 

1) Draw a neat block diagram of a dc power supply and state the function of each part.
                      OR 
With the help of a block diagram, explain the scheme of a power supply for obtaining dc output voltage from ac line voltage.
2) Explain full wave rectifier. State advantages of it.
3) Distinguish between a half-wave rectifier and full-wave rectifier.
4) Explain ripple in the output of a rectifier. What is ripple factor?
5) Explain the action of a capacitive filter with necessary diagrams.
6) What is a photodiode? Explain the I-V characteristics of a photodiode.
7) What is (i) dark current (ii) dark resistance of a photodiode?
8) State any advantages and disadvantages of a photodiode.
9) State any two applications of photodiodes.
10) What is a solar cell ? State the principle of its working. State any four uses of solar cells.
11) State the material selection criteria for solar cells.
12) What is a light-emitting diode (LED)? Describe with a neat diagram the construction of an LED.
13) State any four disadvantages of an LED. State any four applications of LEDs.
14) Explain the working of an npn transistor with a neatly labelled circuit diagram.
15) Draw a neat labelled circuit diagram to study the characteristics of a transistor in common- emitter configuration.
16) What is an amplifier? Draw a neat circuit diagram of a transistor CE- amplifier and explain its working. 
17) Define the following logic gates :
(1) AND
(2) OR
(3) NOT.
Give the logic symbol, Boolean expression and truth table of each.
18) Define the logic gates (1) NAND (2) NOR.
Give the logic symbol, Boolean expression and truth table of each.
How are the above gates realized from the basic gates?
*****************************
       ALL THE BEST

HSC PHYSICS BOARD EXAM ♡ TIPS – 26 ♡

 HSC PHYSICS BOARD EXAM -TIPS-26


HSC PHYSICS BOARD EXAM 

        TIPS – 26

IMPORTANT PRACTICE QUESTIONS FOR HSC PHYSICS BOARD EXAM (2025–26)

FOR CHAPTERS 1 TO 16

Click the Links

https://ravindrawaykolesciphy.blogspot.com/2025/12/12th-physics-imp-practice-questions.html

Do it Compulsory While Solving HSC (12th Std) Physics Question Paper

Special Guidance for HSC Students

While solving the HSC Board Physics paper, students should carefully follow the points given below.


What to Do 2 Month Before the HSC Physics Exam

1) Revise the Following Points From Every Chapter

Understand, remember, and memorize all the following:


2) Importance of Diagrams


3)   Derivations Writing Technique:

  • Draw the related diagram neatly by pencil.

  • Write explanation/Discription based on the diagram.

  •  Use  Physics, Mathematics, Geometry, and Trigonometry concepts / formulae/ equations properly in required steps.

  • Derive the final formula / equation clearly and put it in a rectangular box.


4) Practice Maximum 1-Mark and 2-Mark Questions


Important Information About the Question Paper

The Physics question paper is divided into four sections: A, B, C, and D.
Read the General Instructions carefully before starting.


5) Section A (18 Marks)

  • Q.1: 10 MCQs

    • 7 Theory + 3 Numerical

  • Q.2: 8 VSA (Very Short Answer)

    • 6 Theory + 2 Numerical


6) Section B

  • Questions from Q.3 to Q.14

  • Total: 12 questions (2 marks each)

    • 7 Theory + 5 Numerical

  • Solve any 8 questions (16 marks compulsory)


7) Section C

  • Questions from Q.15 to Q.26

  • Total: 12 questions (3 marks each)

    • 7 Theory + 5 Numerical

  • Solve any 8 questions (24 marks compulsory)


8) Section D

  • Questions from Q.27 to Q.31

  • 2 Pure Theory questions (4 marks each)

  • 3 Mixed questions (2 marks theory + 2 marks numerical)

  • Solve any 3 questions (12 marks compulsory)


9) Marks Strategy

By preparing 1-mark and 2-mark questions well, a student can score up to 46 marks easily.


About Numerical Problems

Technique for Solving Numericals

  • Thoroughly study all Physics concepts, terms, and formulae.

  • Practice all solved and unsolved textbook problems.

  • For extra practice, solve problems from other standard reference books.


How to Write Numerical Answers in the Answer Sheet

  1. Read the question carefully.

  2. Note down given values.

  3. Convert all quantities into the same system of units.

  4. Identify the required Physics concept.

  5. Write the correct formula.

  6. Substitute values properly.

  7. Simplify only if necessary.

  8. Use logarithms when required.

  9. Write the final answer with proper unit and put it in a box.


Practice of Question Papers

  • Solve last 5 years’ HSC Board question papers (Feb & July).

  • Solve at least 5 sample/model papers with a stopwatch.

  • Get them checked by your subject teacher.

  • Initially, solve 2–3 papers using the textbook to understand presentation.


On the Day of Physics Board Exam

Important Instructions

  • Draw diagrams wherever necessary.

  • Solve questions section-wise in order.


10) MCQ Writing Rules

  • Write only the option letter and answer.

  • Example:
    Q.1 (i) (c) conservation of energy 
    Q.2 (ii) (a) 20 m/s

  • No overwriting or corrections in MCQs.

  • Do not repeat MCQ answers. Only the first attempt is evaluated.


11) VSA Questions

  • Answers must be exact and in one line.

  • Sometimes, only one word or one number with unit is expected.

  • No half-mark provision for MCQ and VSA.

12) SA- I ,SA-II & LA Type Questions

Theory Questions- 2 Marks
Definitions (each of 1 mark) , 
Explain the term or Short Note -2 Marks, Distinguish between Question - 2 points for both term
Properties/Assumptions/Applications/etc- 2- 1 Mark each  or 4 points- ½ mark each

Derivations: 2 Marks / 3 Marks/ 4 marks 
½ or 1 Marks for Diagram/ Discription/ Stepwise marking scheme for Step containing Physics & Mathematical concepts, formulae and equations

 Numerical- 2 or 3 Marks Questions, Diagram Questions- 2 Marks,

13) Numerical Constants

  • Always take π = 3.142, otherwise marks will be deducted.

  • Use given values of the physical constants.


14) Read Physical Constants Carefully

  • Provided before Section A in the question paper. See the Instructions.


15) Marks Distribution in Numericals

# For 2 Marks Numerical:
  •  Formula: ½ mark

  • Substitution: ½ mark

  • Calculation Part: (Use log for complication)  and Final Answer with Proper /Standard Unit: 1 mark 

  • Correct unit is compulsory; for wrong unit or not unit → ½ mark will be deducted.      

# For 3 Marks Numerical:  If two quantities are asked then

  •  Formula: ½  + ½ mark

  • Substitution: ½  + ½ mark

  • Calculation Part: (Use log for complication) and Final Answer with Proper /Standard Unit: ½ + ½ mark 

  • Correct unit is compulsory; for wrong unit or not unit → ½ mark will be deducted.

# OR# For single quantity is asked:
  • Formula: 1 Mark
  • Substitution: 1 Mark
  • Calculation and  Final answer with Unit : 1 Mark
  • Correct unit is compulsory; for wrong unit or not unit → ½ mark will be deducted.                            

16) Smart Question Selection:

       If you are

  • Strong in theory → attempt theory questions first.

  • Good in numericals → prioritize numericals.

  • Fully prepared students should attempt derivations and numericals first.


17) Do Not Mix Sections:

  • Write answers of each section only in the same section. Do not mix the questions in different sections.


18) Choice of Questions Is Crucial

  • Section B & C: Solve 8 out of 12

  • Section D: Solve 3 out of 5

  • Attempt 1–2 extra sub-questions per section if time permits.


19) Presentation Matters

  • Write headings like:

    • Definition

    • Statement

    • Figure

    • Construction

    • Working

    • Uses

  • Underline headings.


20) Highlight Key Words

  • Underline important terms.

  • Box or underline numerical answers.


21) Derivations

  • Expect:

    • Section B: At least 2 small derivations

    • Section C: 2–3 big derivations

  • Diagram, explanation, and final equation carry ½ mark each.


22) Numerical Problems

  • Even partial steps (formula + substitution) fetch marks.

  • Fully solved problems can score full marks.


23) Distinguish Between Questions

  • Write in tabular form.

  • Use same parameters on both sides.

  • Both columns must be correct to get full marks.

  • No ½ mark provision 


24) Diagram-Specific Instructions

  • Correct diagram: ½ or 1 mark

  • Correct labeling (4 labels): remaining marks

  • Ray diagrams must show correct direction arrows.

  • Brewster’s law diagram must show 90° between reflected and refracted rays.

  • Vector components must be at exact 90°.

  • Circuit diagrams must show:

    • Correct current direction with Plug -Key symbol  

    • Battery terminals with +ve and –ve signs


Very Important

25) Answer Sheet Handling

  • Fill your information properly with the help of  hall ticket.
  • Take care of the Front page of answersheet, Do not make it dirty.
  • Do not fold it.
  • Do not write questions.

  • Write only titles and answers.

  • MCQs: one answer per line, leave one line gap.

  • Start each section on a new page.

  • Do not mix answers of different sections.


26) Log Table and Supplement

  • Ask for log table in advance if needed.

  • Ask for supplementary answer sheet before finishing the main sheet.

  • Fill all the details on the suppliment.


🌟 ALL THE BEST 🌟


12th PHYSICS IMP PRACTICE QUESTIONS - 2026 FOR MAHARASHTRA HSC BOARD

12th PHYSICS IMP PRACTICE QUESTIONS - 2026 FOR MAHARASHTRA HSC BOARD  IMPORTANT PRACTICE QUESTION for 12TH PHYSICS  ● PRACTICE THEORY QUESTI...