9th Physics Chapter # 1 - (physical quantities and measurements) - Important Longs (New Book 2026)

📌 Topics for Long Questions – Chapter 1 (Physical Quantities and Measurements)

In this chapter, the following topics are important for long questions in board exams:


1. Physical and Non-Physical Quantities

Define physical and non-physical quantities with examples. Explain the difference between them.

Key Points to Cover:

  • Physical Quantity: A quantity that can be measured (e.g., length, mass, time, temperature)

  • Non-Physical Quantity: A quantity that cannot be measured (e.g., love, beauty, happiness)

  • Physical quantities are measurable and have numerical values with units

  • Non-physical quantities are subjective and cannot be quantified


2. Base and Derived Physical Quantities

Define base and derived physical quantities. List the seven base quantities with their SI units.

Key Points to Cover:

  • Base Quantities: Fundamental quantities that cannot be derived from other quantities

  • Seven Base Quantities:

    • Length (meter)

    • Mass (kilogram)

    • Time (second)

    • Electric Current (ampere)

    • Temperature (kelvin)

    • Amount of Substance (mole)

    • Luminous Intensity (candela)

  • Derived Quantities: Quantities that are derived from base quantities (e.g., speed, force, pressure, volume)


3. Measurement of a Physical Quantity

Define measurement. Explain how a physical quantity is measured.

Key Points to Cover:

  • Measurement: The comparison of an unknown quantity with a standard quantity

  • Every measurement has two parts: Numerical Value and Unit

  • Example: Length = 5 m (5 is numerical value, m is unit)

  • Accuracy and precision are important in measurements


4. International System of Units (SI)

Explain the International System of Units (SI). Describe its advantages.

Key Points to Cover:

  • SI Units: Modern metric system adopted internationally

  • Advantages:

    • Internationally accepted

    • Coherent and consistent

    • Decimal-based for easy conversion

    • Based on fundamental constants


5. Derived Units

Define derived units with examples. Explain how derived units are formed from base units.

Key Points to Cover:

  • Derived Units: Units derived from base quantities

  • Examples:

    • Speed = m/s

    • Force = kg·m/s² (Newton)

    • Pressure = kg/(m·s²) (Pascal)

    • Volume = m³

    • Density = kg/m³


6. SI Prefixes

Explain SI prefixes used to express very large or very small quantities.

Key Points to Cover:

  • Prefixes: Added before units to represent multiples or fractions

  • Common Prefixes:

    • Giga (G) = 10⁹

    • Mega (M) = 10⁶

    • Kilo (k) = 10³

    • Hecto (h) = 10²

    • Deca (da) = 10¹

    • Deci (d) = 10⁻¹

    • Centi (c) = 10⁻²

    • Milli (m) = 10⁻³

    • Micro (μ) = 10⁻⁶

    • Nano (n) = 10⁻⁹

    • Pico (p) = 10⁻¹²


7. Scientific Notation

Explain scientific notation. Describe how to convert numbers into scientific notation.

Key Points to Cover:

  • Scientific Notation: Expressing numbers in the form a × 10ⁿ where 1 ≤ a < 10

  • Examples:

    • 1500 = 1.5 × 10³

    • 0.00025 = 2.5 × 10⁻⁴

  • Helps in writing very large or very small numbers conveniently

  • Useful in physics calculations


8. Length Measuring Instruments

Explain the instruments used to measure length.

Key Points to Cover:

  • Ruler/Meter Scale: For measuring length up to 1 mm accuracy

  • Vernier Callipers: For measuring length up to 0.01 mm accuracy

  • Micrometer Screw Gauge: For measuring length up to 0.001 mm accuracy

  • Choice of instrument depends on required precision


9. Vernier Callipers

Describe the construction and working of vernier callipers. Explain how to take a measurement.

Key Points to Cover:

  • Construction:

    • Main Scale (fixed)

    • Vernier Scale (movable)

    • Jaws (outer and inner)

    • Strip (depth measurement)

  • Least Count: Smallest value that can be measured

    • LC = 1 MSD – 1 VSD

    • For standard vernier: LC = 0.01 cm = 0.1 mm

  • How to Measure:

    1. Place object between jaws

    2. Read main scale reading

    3. Read vernier scale reading

    4. Total = MSR + (VSR × LC)


10. Measurement Using Vernier Callipers

Explain the step-by-step method of measuring length using vernier callipers.

Key Points to Cover:

  • Step 1: Check for zero error

  • Step 2: Place object between jaws and gently close

  • Step 3: Note main scale reading (MSR)

  • Step 4: Note vernier scale reading (VSR) – where lines coincide

  • Step 5: Apply formula: Length = MSR + (VSR × LC)

  • Step 6: If zero error exists, apply correction


11. Micrometer Screw Gauge

Describe the construction and working of micrometer screw gauge.

Key Points to Cover:

  • Construction:

    • U-shaped frame

    • Fixed stud (anvil)

    • Movable spindle (screw)

    • Main scale (on sleeve)

    • Circular scale (on thimble)

    • Ratchet

  • Least Count: LC = Pitch / Total divisions on circular scale

    • For standard micrometer: LC = 0.01 mm = 0.001 cm


12. Checking for Zero Error

Explain how to check for zero error in measuring instruments.

Key Points to Cover:

  • Zero Error: Error when instrument reads non-zero when measuring nothing

  • Positive Zero Error: When reading is positive with no object

  • Negative Zero Error: When reading is negative with no object

  • Correction: Subtract zero error from measured reading

  • Formula: Actual Reading = Observed Reading – Zero Error


13. Measurement Using Screw Gauge

Explain the step-by-step method of measuring length using screw gauge.

Key Points to Cover:

  • Step 1: Check for zero error

  • Step 2: Place object between anvil and spindle

  • Step 3: Turn ratchet until it clicks

  • Step 4: Note main scale reading (MSR)

  • Step 5: Note circular scale reading (CSR)

  • Step 6: Apply formula: Diameter = MSR + (CSR × LC)

  • Step 7: If zero error exists, apply correction


14. Mass Measuring Instruments

Explain the instruments used to measure mass.

Key Points to Cover:

  • Physical Balance: For measuring mass accurately

  • Beam Balance: Common laboratory balance

  • Electronic Balance: Digital balance for precise measurement

  • Triple Beam Balance: For measuring mass of objects


15. Physical Balance

Describe the construction and working of a physical balance.

Key Points to Cover:

  • Construction:

    • Beam

    • Two pans (left and right)

    • Pointer

    • Scale

    • Pillars

    • Leveling screws

  • Principle: Works on the principle of equal arms

  • How to Use:

    1. Check zero position

    2. Place object on left pan

    3. Add standard masses on right pan until balanced

    4. Read the total mass


16. Time Measuring Instruments

Explain the instruments used to measure time.

Key Points to Cover:

  • Stopwatch: For measuring time intervals accurately

  • Digital Stopwatch: Precise time measurement up to 0.01 seconds

  • Analog Clock: For general time reading

  • Digital Clock: For accurate time display


17. Stopwatch

Describe the construction and use of a stopwatch.

Key Points to Cover:

  • Analog Stopwatch: Has start, stop, and reset buttons

  • Digital Stopwatch: Displays time digitally with high precision

  • Least Count: 0.01 seconds for digital, 0.1 seconds for analog

  • Uses: Measuring time intervals in experiments


18. Volume Measuring Instruments

Explain the instruments used to measure volume.

Key Points to Cover:

  • Measuring Cylinder: For measuring liquid volume

  • Beaker: For approximate volume measurement

  • Pipette: For accurate transfer of liquids

  • Burette: For dispensing liquids accurately

  • Displacement Can: For measuring volume of irregular objects


19. Measuring Cylinder

Describe the construction and use of a measuring cylinder.

Key Points to Cover:

  • Construction: Graduated glass cylinder with markings

  • Use: To measure volume of liquids

  • Reading: Read at eye level, at the bottom of the meniscus

  • Least Count: Varies depending on cylinder size

  • Unit: Usually in milliliters (mL) or cubic centimeters (cm³)


20. Displacement Can Method

Explain the displacement can method for measuring volume of irregular objects.

Key Points to Cover:

  • Principle: Objects displace their own volume of water

  • Method:

    1. Fill displacement can with water until it overflows

    2. Place measuring cylinder under spout

    3. Gently lower irregular object into water

    4. Collect displaced water in measuring cylinder

    5. Read volume of displaced water = Volume of object

  • This method works for irregular shapes


21. Errors in Measurements

Define measurement errors. Explain the different types of errors.

Key Points to Cover:

  • Error: Difference between measured and true value

  • Types of Errors:

    • Human Errors

    • Systematic Errors

    • Random Errors

  • Errors affect the accuracy and precision of measurements


22. Human Errors

Explain human errors in measurements.

Key Points to Cover:

  • Definition: Errors due to mistakes by the observer

  • Examples:

    • Parallax error (wrong angle of viewing)

    • Reading error (misreading scale)

    • Calculation error

    • Carelessness

  • How to Minimize: Careful observation, proper techniques


23. Systematic Errors

Explain systematic errors and their causes.

Key Points to Cover:

  • Definition: Errors that occur consistently in the same direction

  • Causes:

    • Faulty instruments (zero error)

    • Environmental conditions

    • Poor calibration

  • Characteristics: Always have same sign (positive or negative)

  • How to Minimize: Calibrate instruments, use correction factors


24. Random Errors

Explain random errors and their causes.

Key Points to Cover:

  • Definition: Errors that occur randomly with no fixed pattern

  • Causes:

    • Variations in environmental conditions

    • Observer’s personal limitations

    • Unpredictable fluctuations

  • Characteristics: Can be positive or negative

  • How to Minimize: Take multiple readings and calculate average


25. Uncertainty in a Measurement

Define uncertainty in measurements. Explain how to determine uncertainty.

Key Points to Cover:

  • Uncertainty: The doubt or lack of precision in a measurement

  • Absolute Uncertainty: Smallest division of the instrument

  • Relative Uncertainty: (Absolute Uncertainty / Measured Value) × 100

  • How to Express: Value ± Uncertainty (e.g., 5.0 ± 0.1 cm)


26. Significant Figures

Define significant figures. Explain the rules for counting significant figures.

Key Points to Cover:

  • Significant Figures: Digits that carry meaningful information

  • Rules:

    1. Non-zero digits are always significant

    2. Zeros between non-zero digits are significant

    3. Leading zeros are NOT significant

    4. Trailing zeros after decimal are significant

    5. Trailing zeros without decimal are NOT significant

  • Examples:

    • 2.5 has 2 SF

    • 0.025 has 2 SF

    • 2500 has 2 SF (unless specified)

      1. has 4 SF


27. Precision and Accuracy

Differentiate between precision and accuracy with examples.

Key Points to Cover:

  • Precision: Closeness of repeated measurements to each other

  • Accuracy: Closeness of a measurement to the true value

  • Difference:

    • High precision but low accuracy: Consistent but wrong

    • Low precision but high accuracy: Inconsistent but correct

    • High precision and high accuracy: Consistent and correct


28. Rounding Off the Digits

Explain the rules for rounding off numbers to significant figures.

Key Points to Cover:

  • Rules:

    1. If digit after last significant digit is < 5, keep it (round down)

    2. If digit after last significant digit is ≥ 5, increase by 1 (round up)

  • Examples:

    • 2.346 → 2.35 (3 SF)

    • 2.341 → 2.34 (3 SF)

    • 2.345 → 2.35 (3 SF)

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