Properties of Matter

Coastal States, Gulfs, Straits, Islands and Maritime Zones of India

Indian Geography • Coastal Geography • PYQs Included

Introduction

Properties of Matter covers how materials behave under force, how fluids exert pressure, and why some objects float while others sink. It connects everyday physics — ships floating, soap bubbles forming, water rising in thin tubes — to the quantitative laws that explain them.

In NDA Physics, this chapter contributes a steady stream of questions spread across its sub-topics. It is not as equation-heavy as Kinematics or Gravitation, but it tests a wider range of phenomena. The examiner favours Archimedes’ Principle and buoyancy above all else, followed by pressure in fluids, surface tension, and density comparisons. Elasticity (stress, strain, Young’s modulus) appears less frequently but is tested through units and definitions.

NDA Exam Pattern Insight:

  • Most frequently tested: Archimedes’ Principle (floating/sinking conditions), buoyancy as an upward force, density comparisons, pressure in fluids at rest
  • Major conceptual traps: Buoyancy is a force not a pressure; strain has no unit; stress has the same unit as pressure; a body sinks when its density > fluid density — not because it is heavy
  • Numerical focus: Density from mass and volume, relative density calculations, mixing liquids of different densities, finding density from weight and displaced volume

Understand the Topic

Understand the Topic

Topic FamilyKey ConceptsPrimary NDA Test Mode
ElasticityStress, Strain, Hooke’s Law, Young’s Modulus, elastic limitDefinition MCQ + unit identification
PressureP = F/A, fluid pressure P = ρgh, Pascal’s LawConceptual MCQ + numerical
Archimedes’ PrincipleBuoyant force = weight of displaced fluidConceptual MCQ (very high frequency)
Floating and SinkingDensity comparison — float if ρ_object < ρ_fluidConceptual MCQ (very high frequency)
Density & Relative Densityρ = m/V, RD = ρ_substance/ρ_water, no unitNumerical
Surface TensionCohesion, surface energy, effects, temperature effectConceptual MCQ
Capillary ActionWater rises, mercury falls, angle of contactConceptual MCQ
ViscosityResistance to flow, coefficient η, temperature effectConceptual MCQ
Streamline FlowSteady flow, no crossing of streamlines, BernoulliConceptual MCQ
CompressibilitySolid < Liquid < GasRanking MCQ

Highest Yield Areas: Archimedes’ Principle and buoyancy questions together constitute about one-third of all NDA questions in this chapter. Surface tension (what it causes, temperature dependence) and fluid pressure statements are the next most common. Mastering these three areas covers over 65% of the chapter’s NDA question load.


Core Concepts

Elasticity

When a force is applied to a solid and the solid returns to its original shape after the force is removed, the material is said to be elastic. If it does not return, it is plastic.

  • Elastic limit — the maximum stress a material can withstand and still return to its original shape. Beyond this, permanent deformation occurs.
  • Hooke’s Law — within the elastic limit, stress is directly proportional to strain. This gives us the linear region on a stress-strain graph.
  • Elastic material — steel, rubber (within limits)
  • Plastic material — clay, putty, lead (above elastic limit)

💡 Key Fact Steel is more elastic than rubber. This surprises many students — elasticity means the ability to return to original shape, not the ability to stretch. Steel deforms very little under stress and returns perfectly. Rubber deforms a lot but also returns, making it elastic but less “perfectly” so.


Stress and Strain

Stress is the restoring force per unit area developed inside a material when external forces are applied.

Stress = Force / Area → Unit: Pascal (Pa) = N/m²

Strain is the fractional change in dimension (length, volume, or shape) relative to the original dimension.

Strain = Change in dimension / Original dimensionNo unit (dimensionless)

⚠️ NDA Trap — NDA 2025-I Q. 139 “Which is dimensionless?” with options: Stress, Strain, Pressure, Force. Strain is dimensionless — it is a ratio of two lengths (ΔL/L) or two volumes (ΔV/V). Stress and Pressure both have units of Pascal (N/m²). Force has units of Newton. Tested directly — the answer is Strain.

⚠️ NDA Trap — NDA 2017-I Q. 108 “Which physical quantity has the same unit as pressure?” with options: Angular momentum, Stress, Strain, Work. Stress has the same unit as Pressure — both are force per unit area, both measured in Pascal (Pa = N/m²). Angular momentum is kg⋅m²/s; work is Joule. Answer: Stress.


Young’s Modulus

Young’s Modulus (Y) measures a material’s resistance to being stretched or compressed along one direction. It is the ratio of longitudinal stress to longitudinal strain.

Y = Longitudinal Stress / Longitudinal Strain

  • A higher Young’s Modulus means the material is stiffer — harder to stretch
  • Steel has a much higher Young’s Modulus than rubber
  • Young’s Modulus is a property of the material, not of the object’s size or shape

💡 Key Fact The speed of sound in a medium depends on both the elastic property (such as Young’s Modulus) and the inertia property (density) of the medium. This was directly tested in NDA 2016-II Q. 108 — the correct statement is that sound speed depends on both elastic and inertia properties.


Pressure in Fluids

Pressure is force per unit area. In a fluid at rest, pressure acts equally in all directions at any given depth.

Fluid pressure at depth h: P = ρgh

where ρ is the density of the fluid, g is gravitational acceleration, and h is the depth.

Key properties of pressure in a fluid at rest:

  • Pressure increases with depth
  • Pressure at the same depth is the same in all directions
  • Pressure does not depend on the shape of the container or the area of the base
  • Pressure depends only on height of the fluid column and density of the fluid

⚠️ NDA Trap — NDA 2020 Q. 74 “Pressure exerted by a liquid at the base of a beaker depends on the area of the base.” — Wrong. Fluid pressure at the base = ρgh. It depends on the height of the liquid column and the density — not on the area of the base. A wide beaker and a narrow beaker with the same liquid height exert the same pressure at the base.

⚠️ NDA Trap — NDA 2018-I Q. 82 “Pressure is the same at all points in a fluid at rest.” — Wrong. Pressure increases with depth (P = ρgh). It is the same only at the same depth (same horizontal level). Statements 2 and 3 are correct — pressure is exerted on walls, and pressure exists everywhere in the fluid. Correct answer: 2 and 3 only.


Compressibility

Compressibility is how easily a material’s volume can be reduced by applying pressure.

Correct ranking: Solid < Liquid < Gas

Gases are the most compressible; solids are the least. This was tested directly in NDA 2016-I Q. 100.

⚠️ NDA Trap — NDA 2016-I Q. 100 The option “Solid < Gas < Liquid” is wrong. Gases are far more compressible than liquids. The correct order from least to most compressible: Solid < Liquid < Gas.


Archimedes’ Principle

Statement: When a body is partially or completely immersed in a fluid, the fluid exerts an upward force (buoyant force) on the body equal to the weight of the fluid displaced by it.

Buoyant Force = Weight of displaced fluid = ρ_fluid × V_submerged × g

This upward force is called buoyancy or upthrust.

⚠️ NDA Trap — NDA 2021-II Q. 114 and NDA 2022-I Q. 95 “Buoyancy is an upward pressure.” — Wrong. This was tested in two separate papers. Buoyancy is an upward force — not pressure. It has units of Newtons, not Pascals. Tested directly in NDA 2021-II and 2022-I with identical question intent.

⚠️ NDA Trap — NDA 2025-I Q. 137 “The buoyant force equals the mass of the body.” — Wrong. Statement 1 in this question was incorrect. The buoyant force equals the weight of the displaced fluid — not the mass of the body. Statement 2 (buoyant force = weight of displaced fluid) is correct. Answer: 2 only.

💡 Key Fact An object submerged in water has an apparent loss of weight equal to the buoyant force. Weight in air minus apparent weight in water = buoyant force = weight of water displaced. This was tested in NDA 2012-I Q. 106 and NDA 2017-II Q. 109.


Floating and Sinking

Whether an object floats or sinks depends entirely on a comparison of densities:

  • Object density < Fluid density → Object floats
  • Object density > Fluid density → Object sinks
  • Object density = Fluid density → Object is in neutral equilibrium (neither rises nor sinks)

When an object floats:

  • The weight of fluid displaced = weight of the floating object
  • The object displaces only as much fluid as needed to support its weight

⚠️ NDA Trap — NDA 2025-II Q. 67 “A body sinks in water when it is heavy.” — Wrong. A body sinks when its density is greater than the density of the fluid. A heavy ship made of steel floats because its average density (total mass / total volume, including air spaces) is less than water. The body being “heavy” is irrelevant — density comparison is what determines floating or sinking.

⚠️ NDA Trap — NDA 2018-I Q. 59 “Whether an object floats or sinks depends on its mass and density of liquid.” — Wrong. It depends on the difference in densities of the object and the liquid. Mass alone does not determine floating — a massive but hollow steel ship floats; a small iron nail sinks.

💡 Key Fact — NDA 2010-II Q. 130 When a ship floats on water, the mass of water displaced equals the mass of the ship. This is a direct consequence of Archimedes’ Principle applied to floating bodies. The displaced water supports the ship’s full weight.

💡 Key Fact — NDA 2023-II Q. 108 An iron nail sinks but an iron ship floats. Both are made of iron. The difference: the average density of the ship (steel hull + large air spaces inside) is less than water. The average density of a solid iron nail is much greater than water. Correct statements: 2 (nail density > water) and 3 (ship density < water). Answer: 2 and 3.


Stable Floating — Centre of Buoyancy

A floating body is in stable equilibrium when its centre of gravity is below its metacentre. The metacentre is the point through which the buoyant force acts when the body is slightly tilted. If the centre of gravity is above the metacentre, the body topples. This was tested in NDA 2026-I Q. 59.


Density and Relative Density

Density (ρ) = mass per unit volume.

ρ = m/V → Unit: kg/m³ or g/cm³

Relative Density (RD) = density of a substance relative to the density of water at 4°C.

RD = ρ_substance / ρ_waterNo unit (dimensionless)

💡 Key Fact Density of water is maximum at 4°C (277 K) = 1000 kg/m³. This was directly tested in NDA 2021-I Q. 52 and NDA 2024-II Q. 114. The answer is 4°C, not 0°C. At 0°C, ice forms and density drops.

💡 Key Fact Relative Density has no unit — it is a pure ratio. This is a common NDA question in units-and-dimensions format. It is sometimes called specific gravity.


Surface Tension

Surface tension is the tendency of a liquid’s surface to contract to the smallest possible area. It arises because molecules at the surface experience a net inward pull from molecules below (cohesive forces), while having no molecules above to balance.

Effects of surface tension (results):

  • Nearly spherical raindrops — the sphere minimises surface area for a given volume
  • Capillary rise of water
  • Insects walking on water
  • Soap and detergent cleaning action (lowers surface tension, helps spread)
  • Formation of soap bubbles and films

NOT a result of surface tension:

  • Flow of a liquid — flow is due to gravity and pressure differences, not surface tension

⚠️ NDA Trap — NDA 2015-I Q. 62 “Which one is NOT a result of surface tension?” with options including spherical raindrops, capillary rise, soap cleaning action, and flow of a liquid. The answer is flow of a liquid — flow happens due to pressure gradient and gravity, not surface tension.

⚠️ NDA Trap — NDA 2025-II Q. 66 “Surface tension increases when temperature increases.” — Wrong. Surface tension decreases with increasing temperature. As temperature rises, molecules have more kinetic energy and the cohesive forces weaken, reducing surface tension. Answer: (b) It decreases when temperature increases.


Capillary Action

When a narrow tube (capillary) is placed in a liquid, the liquid may rise or fall in the tube depending on the interaction between the liquid and the tube material.

Water in a glass capillary tube → rises (adhesive force > cohesive force, angle of contact < 90°)

Mercury in a glass capillary tube → falls (depressed) (cohesive force > adhesive force, angle of contact > 90°)

Length of liquid column when capillary is inclined: When a capillary tube containing a risen liquid column is inclined, the length of the liquid column increases, but the vertical height remains the same. The vertical component of the column length is constant — inclined at 45°, the column is longer but the height is unchanged. Tested in NDA 2011-I Q. 70 — length increases when inclined.

💡 Key Fact Capillary rise is a result of surface tension. The smaller the radius of the capillary tube, the greater the rise. This is why water climbs higher in thinner tubes.


Viscosity

Viscosity is the property of a fluid that resists flow — the internal friction between fluid layers. A more viscous fluid flows more slowly.

  • High viscosity: honey, glycerine, thick oil
  • Low viscosity: water, petrol

Effect of temperature on viscosity:

  • Liquids: viscosity decreases with increasing temperature (hot honey flows more easily)
  • Gases: viscosity increases with increasing temperature

💡 Key Fact Viscosity is not the same as surface tension. Viscosity relates to resistance to flow through the bulk of the liquid; surface tension is a property of the surface layer only.


Streamline (Laminar) Flow

In streamline (or laminar) flow, every fluid particle at a given point follows the same path as the particle before it. The velocity at any given point remains constant over time.

Key facts about streamline flow:

  • Also called steady flow or laminar flow
  • Velocity of particles at a given fixed point is the same at all times
  • Two streamlines never cross each other
  • In steady flow, each particle passing through a point follows the same path

⚠️ NDA Trap — NDA 2015-II Q. 119 “In steady flow, each particle may not follow the same path as a previous particle through the same point.” — Wrong. This is the defining feature of streamline flow: every particle at a given point follows the same path as preceding particles. This statement is the NOT correct statement in that question.

⚠️ NDA Trap — NDA 2016-II Q. 103 “In streamline flow, the velocity of all fluid particles at a given instant is the same.” — Wrong. In streamline flow, the velocity at a given fixed point remains constant over time — but different points in the fluid can have different velocities. The velocity of a particle reaching a given position is constant, not the velocity of all particles at the same instant.


Bernoulli’s Principle

Bernoulli’s Principle states that for a fluid in steady flow, an increase in the speed of flow leads to a decrease in pressure.

It is based on the law of conservation of energy. The total energy (pressure energy + kinetic energy + potential energy) remains constant along a streamline.

💡 Key Fact — NDA 2014-I Q. 99 Bernoulli’s Principle is based on conservation of energy — not conservation of mass or momentum. This was tested directly with all four conservation laws as options. Answer: Conservation of energy.


Tables & Comparisons

Stress vs Strain

PropertyStressStrain
DefinitionForce per unit area inside materialFractional change in dimension
FormulaStress = F/AStrain = ΔL/L (or ΔV/V)
SI UnitPascal (Pa) = N/m²No unit — dimensionless
Same unit asPressureNothing (pure ratio)
NDA testedUnit identification — same as pressureDimensionless — NDA 2025-I

Elasticity vs Plasticity

PropertyElastic MaterialPlastic Material
Behaviour after force removedReturns to original shapeDoes not return
ExampleSteel, rubber (within limits)Clay, putty, lead
Elastic limitDeforms below this and recoversDeforms permanently above this

Floating vs Sinking

ConditionWhat HappensReason
ρ_object < ρ_fluidObject floatsBuoyant force > weight
ρ_object > ρ_fluidObject sinksWeight > buoyant force
ρ_object = ρ_fluidObject in neutral equilibriumWeight = buoyant force
Hollow steel shipFloatsAverage density < water (includes air spaces)
Solid iron nailSinksDensity > water (no air spaces)

Water vs Mercury in a Capillary Tube

PropertyWater in GlassMercury in Glass
BehaviourRises in capillaryFalls (depressed) in capillary
Dominant forceAdhesion > CohesionCohesion > Adhesion
Angle of contact< 90° (acute)> 90° (obtuse)
Meniscus shapeConcave (curves up at edges)Convex (curves down at edges)
Practical consequenceWater wets glassMercury does not wet glass

Density vs Relative Density

PropertyDensity (ρ)Relative Density (RD)
DefinitionMass per unit volumeRatio of density to density of water
Formulaρ = m/VRD = ρ_substance / ρ_water
Unitkg/m³ or g/cm³No unit (dimensionless)
ReferenceWater at 4°C (1000 kg/m³)
Also calledSpecific gravity

Surface Tension vs Viscosity

PropertySurface TensionViscosity
LocationProperty of the surface onlyProperty of the bulk of the fluid
CauseNet inward cohesive force on surface moleculesInternal friction between fluid layers
Decreases with temperatureYesYes (for liquids)
Increases with temperatureNoOnly for gases
SI UnitN/mPa⋅s
ExamplesSoap films, capillarity, spherical dropsHoney flowing slowly, motor oil

Formulas

Formula 1 — Stress

Stress = F/A

FApplied force (N)
ACross-sectional area perpendicular to force (m²)
StressInternal restoring force per unit area (Pa = N/m²)

Used when: Analysing how much force per unit area a material is experiencing under an applied load.

⚠️ NDA Trap: Stress has the same unit as pressure (Pa). Students often confuse this. Stress = N/m² = Pa, exactly like pressure. Strain is the dimensionless partner — it has no unit at all.


Formula 2 — Strain

Strain = ΔL / L

ΔLChange in length (m)
LOriginal length (m)
StrainDimensionless (pure ratio)

Used when: Determining how much a material has deformed relative to its original size.

⚠️ NDA Trap: Strain has no unit. It is a ratio of two lengths. Students sometimes write Pa or N/m² for strain — this is wrong. Only stress and pressure have those units.


Formula 3 — Young’s Modulus

Y = Stress / Strain = (F/A) / (ΔL/L)

YYoung’s Modulus (Pa = N/m²)
F/ALongitudinal stress (Pa)
ΔL/LLongitudinal strain (dimensionless)

Used when: Comparing stiffness of materials (higher Y = stiffer material).

⚠️ NDA Trap: Since Young’s Modulus = Stress/Strain and strain has no unit, Young’s Modulus has the same unit as stress: Pa (N/m²). It is not dimensionless despite involving a dimensionless quantity in the denominator.


Formula 4 — Density

ρ = m/V

ρDensity (kg/m³)
mMass (kg)
VVolume (m³)

Used when: Finding the density of any substance, or checking whether an object will float or sink by comparing densities.

Key value: Density of water = 1000 kg/m³ = 1 g/cm³ (at 4°C)

⚠️ NDA Trap: When mixing equal volumes of liquids with densities D, 2D, and 3D: average density = (D + 2D + 3D)/3 = 6D/3 = 2D. Not 6D (that would be sum, not average). Tested in NDA 2014-II Q. 121.


Formula 5 — Relative Density

RD = ρ_substance / ρ_water

Also: RD = Weight of substance in air / Loss of weight in water

RDRelative Density (dimensionless)
ρ_substanceDensity of the material (kg/m³)
ρ_waterDensity of water = 1000 kg/m³

Used when: Comparing densities without needing absolute values, or in buoyancy problems.

⚠️ NDA Trap: Relative density has no unit — it is a ratio. Also, relative density of silver with respect to iron (NDA 2013-I) is NOT simply silver’s specific gravity. It is 11/8 = 1.375 ≈ 1.4, not 3.0 or 2.8.


Formula 6 — Buoyant Force (Archimedes’ Principle)

F_b = ρ_fluid × V_submerged × g

Also stated as: F_b = Weight of fluid displaced

F_bBuoyant force (N) — always upward
ρ_fluidDensity of the fluid (kg/m³)
V_submergedVolume of object submerged in the fluid (m³)
gGravitational acceleration (m/s²)

Used when: Finding the upward force on a submerged or partially submerged object.

⚠️ NDA Trap: Buoyant force depends on the volume of fluid displaced and the density of the fluid — not on the density or mass of the object itself. Two objects of equal volume submerged in the same fluid experience the same buoyant force, regardless of their materials.


Formula 7 — Fluid Pressure

P = ρgh

PPressure at depth h (Pa = N/m²)
ρDensity of the fluid (kg/m³)
gGravitational acceleration (m/s²)
hDepth below the free surface (m)

Used when: Finding the pressure at a specific depth in a fluid, or comparing pressures at different depths.

⚠️ NDA Trap: Pressure in a fluid at a given depth does not depend on the area of the container base or the total volume of fluid. A tall narrow column and a wide shallow basin with the same fluid height exert the same pressure at the bottom.


Worked NDA Numericals

NDA PaperGivenFormulaAnswer
NDA 2013-I Q. 138: Specific gravity of silver = 11, iron = 8. Relative density of silver w.r.t. iron?RD_Ag = 11, RD_Fe = 8RD_Ag/RD_Fe = 11/8 = 1.375 ≈ 1.4≈ 1.4
NDA 2014-II Q. 121: Three liquids D, 2D, 3D mixed in equal volumes. Average density?Equal volumes → average = (D+2D+3D)/3 = 6D/3Arithmetic mean of densities2D
NDA 2019-II Q. 65: Mixed in equal volumes: RD = 4. Mixed in equal masses: RD = 3. Find ρ₁ and ρ₂.Equal volumes: (ρ₁+ρ₂)/2 = 4 → ρ₁+ρ₂ = 8. Equal masses: 2ρ₁ρ₂/(ρ₁+ρ₂) = 3 → 2ρ₁ρ₂ = 24 → ρ₁ρ₂ = 12. Solve: sum=8, product=12 → ρ=2,6Harmonic and arithmetic meanρ₁=6, ρ₂=2
NDA 2022-II Q. 134: Packet: volume = 1L = 1000 cm³, mass = 800g. Float or sink in water (1 g/cm³) and liquid B (1.5 g/cm³)?Density of packet = 800/1000 = 0.8 g/cm³. Compare: 0.8 < 1 (water) → floats; 0.8 < 1.5 (B) → floatsρ_object vs ρ_fluidFloats in both
NDA 2024-II Q. 92: Pumpkin weighs 7.5 N. Submerged: displaces ¾ L = 0.75 L = 0.00075 m³. g = 10. Find density.Mass = W/g = 7.5/10 = 0.75 kg. Volume = 0.00075 m³. ρ = m/V = 0.75/0.00075 = 1000 kg/m³ρ = m/V1000 kg/m³
NDA 2024-II Q. 114: Water maximum density temperature?Water density is maximum at 4°C = 277 K (not 0°C, not 100°C)Direct recall277 K (4°C)

Memory Trick to remember the States name

Stress vs Strain — “S has a Unit, s doesn’t”

  • Stress → has a unit → Pascal (same as Pressure)
  • strain → dimensionless → no unit (just a ratio)

STRESS has STRESS — Pascals. Strain stays calm — no unit.


Floating and Sinking — “Light Floats, Dense Sinks”

  • Density Lighter than fluid → floats (L for Light, L for Loat)
  • Density Denser than fluid → sinks (D for Dense, D for Down)
  • It’s not about mass — a heavy ship floats; a tiny nail sinks

Water vs Mercury in Capillary — “WAter Wants to Rise, Mercury Wants to Move Away”

  • WAter: Wets glass → Adhesion wins → Ascends (rises)
  • Mercury: Doesn’t wet glass → Cohesion wins → Dips (falls)

Surface Tension and Temperature — “Heat Kills Surface Tension”

Surface tension decreases when temperature increases. Think: heating a soap bubble — it pops (surface tension gone). “The Hotter, the Higher the drop in tension.”


Compressibility Ranking — “Soft Gas, Hard Rock”

Solid < Liquid < Gas (from least to most compressible)

Solids are Stiff. Gases Give way completely.”


Buoyancy — “It’s Always UP and Always FORCE”

Buoyancy = upward force (not upward pressure — force, measured in Newtons).

Buoyancy = Big push Upward — Force, not Pressure.”

Previous Year Questions

Q1. The Gulf of Mannar is situated along the coast of: [NDA 2011-II]

  1. Tamil Nadu
  2. Kerala
  3. Karnataka
  4. Andhra Pradesh

Answer: (A) Tamil Nadu

Q2. Which one of the following states in India has the longest coastline? [NDA 2017-II]

  1. Odisha
  2. Tamil Nadu
  3. Karnataka
  4. West Benal

Answer: (B) Tamil Nadu

Q1. Which waterway separates India from Sri Lanka? [CDS 2008-I]

  1. 8° Channel
  2. Palk Strait
  3. 10° Channel
  4. Andaman Sea

Answer: (B) Palk Strait

Q1. What is the name of the strait where Adam’s Bridge is situated?

  1. Bering Strait
  2. Cook Strait
  3. Palk Strait
  4. Taiwan Strait

Answer: (C) Palk Strait

Q1. A nautical mile is equal to: [CDS 2011-II]

  1. 5,060 feet
  2. 5,280 feet
  3. 6,060 feet
  4. 6,080 feet

Answer: (D) 6,080 feet

Q1. India’s territorial limit extends towards the sea up to: [CDS 2021-I]

  1. 10 nautical miles
  2. 12 nautical miles
  3. 14 nautical miles
  4. 15 nautical miles

Answer: (D) 12 nautical miles

Q1. Which one of the following Indian states has the longest coastline? [CDS 2023-I]

  1. Tamil Nadu
  2. Gujarat
  3. Maharashtra
  4. Andhra Pradesh

Answer: (B) Gujarat

Common Mistakes

  • Selecting Golgi bodies or ER as organelles containing DNA — only mitochondria, chloroplasts, and the nucleus contain DNA.
  • Confusing “nucleoid” with “nucleolus” — nucleoid is the undefined nuclear region in prokaryotes; nucleolus is a structure inside the nucleus of eukaryotes.
    Saying smooth ER synthesises proteins — protein synthesis is the function of ribosomes (on rough ER). Smooth ER handles lipids, steroids, and detoxification.
    Confusing transcription and translation — transcription copies DNA into RNA; translation uses RNA to build proteins.
  • Thinking cell wall = cell membrane — they are different. Cell membrane is present in all cells and is made of phospholipids. Cell wall is outside the membrane, found only in plants, fungi, and bacteria.
  • Saying the father determines sex using the X chromosome — a father passes Y (boy) or X (girl). It is the father’s contribution that determines sex, but Y is what produces a male.
  • Confusing Adenine–Thymine and Adenine–Uracil — A pairs with T in DNA, A pairs with U in RNA (Uracil replaces Thymine in RNA). Both are exam-tested separately.

Quick Revision

Elasticity and Stress/Strain

  • Stress = F/A → unit: Pascal (same as pressure)
    Strain = ΔL/L → dimensionless (no unit)
    Young’s Modulus = Stress/Strain → unit: Pascal
  • Elastic limit: beyond this, permanent deformation
    Steel more elastic than rubber (elastic = returns to shape)
  • Sound speed depends on both elastic property AND inertia of medium

Pressure in Fluids

  • P = ρgh (depends on depth and density — not base area)
    Pressure same at same depth in all directions
    Increases with depth; does not depend on container shape
  • Compressibility: Solid < Liquid < Gas
    Bernoulli’s Principle = conservation of energy in fluid flow

Archimedes’ Principle

  • Buoyant force = weight of displaced fluid (upward force, in Newtons)
    Buoyancy is a FORCE, not a pressure
    Object submerged in water: apparent weight = actual weight − buoyant force

Floating and Sinking

  • Float: object density < fluid density
  • Sink: object density > fluid density
    Neutral: object density = fluid density
  • Floating condition: mass of displaced water = mass of floating object
    Iron ship floats: average density (with air) < water

Density and Relative Density

  • Density of water = 1000 kg/m³ at 4°C (277 K) — maximum density
    Relative density = ρ_substance/ρ_water → dimensionless
    Mixing equal volumes: average density = arithmetic mean of densities

Surface Tension and Capillarity

  • Surface tension DECREASES with increasing temperature
  • Effects: spherical drops, capillary rise, soap cleaning, insects on water
    Flow of liquid is NOT a surface tension effect
  • Water: rises in capillary (adhesion > cohesion, acute contact angle)
  • Mercury: falls in capillary (cohesion > adhesion, obtuse contact angle)

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