By the end of this chapter you'll be able to…

  • 1Explain why Earth's crust, though vanishingly thin compared to the whole planet, is where all life exists (Activity 13.1)
  • 2Explain why Venus, not Mercury, is the hottest planet, distinguishing the planetary greenhouse effect from a garden greenhouse (Activity 13.2)
  • 3Define the habitable/Goldilocks zone and explain why Earth's distance from the Sun is the single most important reason it supports life
  • 4Explain how Earth's size lets it hold an atmosphere without crushing life, and state ozone's specific protective role
  • 5Explain the origin and protective function of Earth's magnetic field against cosmic rays and the solar wind
  • 6Define the atmosphere, hydrosphere, geosphere and biosphere (not 'lithosphere'), and explain why they are described as interconnected
  • 7Define genes, and distinguish asexual reproduction (one parent, exact copies) from sexual reproduction (two parents, gametes, genetic mixing)
  • 8Describe pollination and fertilisation in plants, from anther/ovule through zygote to seed and fruit, including animal-assisted seed dispersal
  • 9Compare external fertilisation (fish, frogs) with internal fertilisation, and egg-laying (birds) with live birth (most mammals), including each strategy's nutrition method
  • 10Define the triple planetary crisis, trace the fossil-fuel-to-global-warming chain, and name the four global agreements (with years) addressing it
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Why this chapter matters
This is the closing chapter of Class 8 Science, and it does something unusual: it asks a single, huge question — why does life exist on Earth at all? — and answers it with the same rigour as every earlier chapter in the book, from a thin-crust apple analogy through Venus's runaway greenhouse effect to the exact reason a magnetic field matters. Then, in its second half, it pivots to an equally large question — why doesn't life ever run out? — and answers that one with genes, asexual and sexual reproduction, gametes and fertilisation, carried through plants and animals alike. It matters beyond the exam for two reasons. First, it is a genuine synthesis chapter: understanding Venus's atmosphere requires the particle behaviour from Chapter 7, understanding the food-chain collapse in section 13.6 requires Chapter 12's ecology, and understanding genetic mixing requires nothing invented here but built entirely from this single chapter's own careful, step-by-step explanation. Second, it ends the book by turning outward — the triple planetary crisis (climate change, biodiversity loss, pollution) and the four real global agreements addressing it are not abstract policy trivia, but the direct, practical consequence of every fragile condition the first half of the chapter just spent establishing.

Our Home: Earth, a Unique Life Sustaining Planet — Class 8 Science (Curiosity)

"We have now reached the final chapter of this book... It is time to put together all that we have seen and learnt and try to understand why our home, planet Earth, is like no other place in the known universe." — Curiosity, Grade 8, page 211

1. About the Chapter

This is Chapter 13 of Curiosity, the closing chapter of Class 8 Science (pages 210–228, Reprint 2026-27).

SectionQuestion
13.1Why is Earth a unique planet?
13.2What do the planets of our solar system look like?
13.3What makes the Earth suitable for life to exist?
13.4What allows life to be sustained on Earth?
13.5What keeps life from disappearing?
13.6What are the threats to life on Earth?

What this chapter is not. There is no cross-section of Earth's crust/mantle/outer core/inner core with thicknesses, no plate tectonics, no list of named tectonic plates, no rock-type classification (igneous/sedimentary/metamorphic), and no layer-by-layer atmosphere breakdown (troposphere/stratosphere/mesosphere). The chapter also never uses the word "lithosphere" — the solid Earth is named the geosphere. None of India's mineral geography, climate-policy targets (Panchamrit, net-zero 2070) or named environmental movements (Chipko, Narmada Bachao Andolan) appear either. Roughly a third of this chapter is about reproduction — genes, asexual and sexual reproduction, gametes, fertilisation — a topic that doesn't appear in a geology-and-policy retelling at all.


2. Why Is Earth a Unique Planet? (13.1)

If Earth were the size of an apple, the crust would be as thin as the apple's skin.

All of life — every mountain, forest, animal and person — exists on this single, delicate layer.

Activity 13.1 — features we take for granted

List features of Earth that are interesting but easy to overlook. The book's own starting examples:

The air we breathe doesn't fly off and disappear into space (gas particles move freely, yet stay bound by gravity) — and we can stand on the ground held by gravity, but our heart can pump blood up to our head.

Earth provides the air we breathe, the water we drink, the soil that grows our crops, and the rock and timber we build with.


3. What Do the Planets of Our Solar System Look Like? (13.2)

Eight planets orbit the Sun in nearly circular paths, in order of increasing distance: Mercury, Venus, Earth, Mars, Jupiter, Saturn, Uranus, Neptune. Mercury/Venus/Earth/Mars are small and rocky; Jupiter/Saturn/Uranus/Neptune are large and mostly gas.

Activity 13.2 — comparing planets

Fill in each planet's average temperature, radius (relative to Earth), and whether it has an atmosphere.

We know that all planets in the solar system get their energy from the Sun. Thus, when a planet is close to the Sun, it would be very hot... This is generally correct, except that Venus, the second planet from the Sun has the highest average temperature and is the hottest planet.

Why Venus, not Mercury, is hottest. Venus is the hottest planet not because it is the closest to the Sun, but because its thick atmosphere traps heat. Its air is almost entirely carbon dioxide, which won't let heat escape — the greenhouse effect. On Earth too, gases like carbon dioxide in the atmosphere trap heat by absorbing the radiation given off by the Earth, after it gets warmed by the Sun — playing "an important role in maintaining just the right temperature on Earth."

A step further — this is NOT the same as a plant greenhouse. A planetary greenhouse effect traps heat via gas absorbing radiation; a garden greenhouse simply traps already-warmed air inside a closed glass space. Both keep things warm, they do it differently.


4. Position and Size of the Earth (13.3.1–13.3.2)

Position: the habitable zone

The most important reason why the Earth can support life is its distance from the Sun. Too close and water would evaporate; too far and it would freeze. The range of distances from a star over which water stays liquid is the habitable zone, or Goldilocks zone. Because roughly 70% of Earth's surface is water, seen from space it looks blue — the Blue Planet.

Did Mars ever support life? Mars sits at the edge of the Sun's habitable zone; rovers have found no proof of life, but scientists think it may once have had liquid water. This is one reason Mars continues to interest scientists... science stays open to change when we learn more.

Size: holding an atmosphere without crushing anything

A near-circular orbit keeps sunlight and heat nearly steady all year, avoiding extreme seasons. Size matters too: if Earth were much smaller (but with the same average density), its gravity would have been too weak to hold on to the gases in our atmosphere — Mars's atmosphere is 100 times thinner than Earth's, and Mercury has none at all. Too large, conversely, and gravity would be crushing.

Oxygen also forms ozone (a three-atom oxygen molecule) high in the atmosphere — the ozone layer — which blocks harmful ultraviolet (UV) rays from the Sun that can damage living cells.

Our scientific heritage — Mangalyaan. India's Mars Orbiter Mission, launched 2013 by ISRO, studied Mars's atmosphere, surface and signs of past water — showing the world that India could do space science with smart, low-cost technology.


5. Magnetic Field of the Earth (13.3.3)

Earth behaves like a giant magnet, likely because of the movement of molten iron in Earth's core. Earth is constantly struck by high-energy particles — cosmic rays (from across the universe) and the solar wind (from the Sun) — which can damage the atmosphere, thin the ozone layer, and let in more UV.

Thankfully, the Earth's magnetic field acts like a protective shield. It pushes many of these harmful particles away from the Earth, keeping our atmosphere, and hence life on our planet safe.

Position, size, and magnetic field together — not any one alone — make Earth a planet where life can emerge and thrive.


6. What Allows Life to Be Sustained? (13.4)

Air, water and sunlight — the hydrosphere (13.4.1)

Plants use sunlight, atmospheric CO₂ and soil water to photosynthesise, releasing the oxygen animals and humans breathe. The (mild) greenhouse effect keeps water liquid; without an atmosphere, Earth would lose its heat to space.

Water is essential for life... it covers about 70 per cent of the Earth's surface... All this water forms the hydrosphere.

Water transports nutrients in plants, regulates body temperature and aids digestion in animals, and hosts a hydrosphere "home to millions of life forms, from tiny planktons to giant whales, many still being discovered."

Soil, rocks and minerals — the geosphere (13.4.2)

The solid parts of the Earth, including materials like rocks, soils, and minerals are known as the geosphere.

Soil is rich in nutrients like nitrogen and potassium, from the slow breakdown of rock and dead organic matter. The variety of landforms, rocks and soils — and the processes shaping them — is called geodiversity, creating unique habitats.

Plants, animals and microorganisms — the biosphere (13.4.3)

All living beings, along with the places where they live, make up the biosphere.

As Chapter 12 established: plants make food, animals eat plants or other animals, decomposers recycle nutrients — nature working as one system.

The importance of balance (13.4.4)

Even a small change in one part — like cutting down a forest — can impact rainfall, soil, air quality, and the animals that live there. Life on Earth survives not because of just one thing, but because everything works together in balance.


7. What Keeps Life from Disappearing? (13.5)

Without reproduction, life would eventually vanish. Genes — genetic material stored in every cell — are the instruction manual that makes a calf grow into a cow. Reproduction also allows small changes to pass down: camels developed humps to store fat and survive in deserts, and some bacteria have become resistant to antibiotics — variation that, over generations, can produce new features or new kinds of living beings entirely.

Asexual reproduction (13.5.1)

One parent, exact genetic copies.

Activity 13.3 — vegetative propagation. Plant a money-plant stem cutting, a sprouted potato's "eyes," or a piece of ginger, and watch roots, stems and leaves appear.

Ever heard of... other asexual reproducers. Bacteria and amoebae divide into two identical cells; algae regrow from small cut fragments; Hydra grows buds that break off into new individuals; Planaria (a flatworm) can regrow from just a fragment of its body.

Sexual reproduction (13.5.2)

Two parents, each contributing a gamete carrying only half its genetic material — so offspring inherit a full set, half from each, without doubling every generation. This mixing is why siblings can look different from each other and from both parents.

In plants: Pollen grains found inside the anther... are the male gametes, while ovules, found deep inside the flower, are the female gametes. Wind, insects or animals carry pollen between flowers (pollination); male and female gametes combining is fertilisation, forming a zygote that becomes the seed, while the fleshy part around the ovule becomes fruit. Animals eating fruit disperse seeds far from the parent plant — a banyan seed, dropped by a bird... might sprout in a crack in a wall.

In animals: gametes are sperm (male) and eggs (female). Fish and frogs release both into water for external fertilisation, and the embryo develops in water too. Birds and mammals fertilise internally, but then diverge: birds lay the fertilised zygote, and the embryo develops during incubation, nourished by food packed into the egg; most mammals develop the embryo inside the mother's body, which supplies food and oxygen directly until birth.


8. What Are the Threats to Life on Earth? (13.6)

Today, the biggest environmental challenges that we face are climate change, biodiversity loss, and pollution — together known as the triple planetary crisis.

Climate change. Burning fossil fuels releases CO₂ and methane faster than trees, plants and ocean plankton can absorb it, trapping extra heat — melting ice caps, raising sea levels, driving extreme weather, and pushing species toward disappearance.

Biodiversity loss. Destroying habitats echoes Chapter 12's own logic: if grasses vanish, animals that feed on them like deer or grasshoppers struggle to survive. And without herbivores, predators like tigers or foxes lose their food too.

Pollution. Air pollution from factories, vehicles and burning fuels causes breathing problems, crop damage, smog and acid rain; water and soil pollution from factory/farm/plastic waste and excess fertiliser harm aquatic life, reduce crop yield, and spread harmful substances through the food chain.

Global responses, in the chapter's own stated years: the Montreal Protocol (1987) reduced CFCs, letting the ozone layer slowly recover; the Earth Summit (1992) launched international climate/biodiversity efforts; the Kyoto Protocol (2005) and Paris Agreement (2015) committed countries to cutting emissions, with Paris targeting under 1.5 °C warming — a goal the world, as of 2025, is not on track to meet.

The Earth system — hydrosphere, biosphere, atmosphere and geosphere — are connected, so damage to one can affect the others.


9. The Traps

Adding Earth's internal layers, plate tectonics, or rock classification. None of this is in the chapter — its "layer" is the thin crust used only as a size analogy.

Calling the solid Earth the "lithosphere." The book's own term is the geosphere.

Skipping the reproduction section entirely. It is not an aside — genes, asexual/sexual reproduction, gametes and fertilisation make up a major share of this chapter.

Saying Venus is hottest because it's closest to the Sun. It's Mercury that's closest; Venus is hottest because of its thick CO₂ atmosphere trapping heat via the greenhouse effect.

Confusing the planetary greenhouse effect with a garden greenhouse. One traps heat by absorbing radiation in gas; the other simply seals in already-warmed air.

Citing specific climate statistics, India mineral geography, or named Indian environmental movements (Chipko, Narmada Bachao Andolan, Panchamrit, net-zero targets). None of this is in the chapter — only the four named global agreements and their stated years.


10. What to Carry Forward

  • Life exists only on Earth's thin crust — as thin, relative to the planet, as an apple's skin.
  • Venus is hottest not from proximity but from a runaway CO₂ greenhouse effect; Earth's own mild greenhouse effect keeps water liquid rather than freezing.
  • The habitable/Goldilocks zone is the distance range where a star keeps water liquid; Earth's right size lets gravity hold an atmosphere without crushing life; ozone shields UV; the magnetic field deflects cosmic rays and solar wind.
  • Four Earth systems: atmosphere (air), hydrosphere (water), geosphere (solid rock/soil/minerals — not "lithosphere"), biosphere (life) — all interconnected.
  • Reproduction keeps life continuing: asexual (one parent, exact copies — vegetative propagation, budding, fission, regeneration) vs. sexual (two parents, gametes combining, genetic variation).
  • In plants: pollen (male, in the anther) + ovule (female) → pollination → fertilisation → zygote/seed, fruit around it. In animals: external fertilisation in water (fish, frogs) vs. internal fertilisation with egg-laying (birds) or live birth (most mammals).
  • The triple planetary crisis — climate change, biodiversity loss, pollution — is addressed globally by the Montreal Protocol (1987), Earth Summit (1992), Kyoto Protocol (2005) and Paris Agreement (2015).

Key formulas & results

Everything you need to memorise, in one card. Screenshot this for revision.

Habitable / Goldilocks zone
distance range from a star where water stays liquid
The single most important reason Earth supports life.
Greenhouse effect (planetary)
atmospheric gas (e.g. CO2) absorbs radiation the planet re-emits, trapping heat
Mild on Earth (keeps water liquid); runaway on Venus (thick CO2 atmosphere).
Greenhouse effect (garden greenhouse)
closed glass space physically traps already-warmed air
A different mechanism from the planetary greenhouse effect — do not conflate the two.
Atmosphere retention
too small -> gravity too weak -> atmosphere escapes; too large -> gravity crushes
Mars's atmosphere is 100x thinner than Earth's; Mercury has none.
Four Earth systems
atmosphere (air) + hydrosphere (water) + geosphere (solid rock/soil/minerals) + biosphere (life)
The book's term is geosphere, never 'lithosphere'.
Asexual reproduction
1 parent -> exact genetic copy
Vegetative propagation, binary fission, budding, fragmentation/regeneration.
Sexual reproduction
2 parents, each gamete carries half the genetic material -> combined offspring gets one full, mixed set
Explains why offspring resemble but differ from both parents.
Plant sexual reproduction
pollen (anther, male) + ovule (female) -> pollination -> fertilisation -> zygote -> seed; fleshy part -> fruit
Activity/section 13.5.2.
Animal fertilisation
external (fish/frogs, in water) vs. internal (birds/mammals, inside the female)
Birds then lay the egg; most mammals develop the embryo inside the body.
Triple planetary crisis
climate change + biodiversity loss + pollution
Section 13.6's umbrella term for the chapter's closing threats.
⚠️

Common mistakes & fixes

These are the exact errors that cost students marks in board exams. Read them once, save yourself the trouble.

WATCH OUT
Bringing in Earth's internal layers (crust/mantle/outer core/inner core with thicknesses), plate tectonics, or rock classification (igneous/sedimentary/metamorphic).
None of this is in the chapter — the crust is used only once, as a thin-apple-skin analogy for where life exists.
WATCH OUT
Calling the solid Earth the 'lithosphere.'
The book's own term is the geosphere: 'the solid parts of the Earth, including materials like rocks, soils, and minerals.'
WATCH OUT
Skipping or under-covering the reproduction section (genes, asexual/sexual reproduction, gametes, fertilisation).
This is roughly a third of the chapter, not an aside — genes, vegetative propagation, pollination/fertilisation in plants, and external/internal fertilisation in animals are all core, examinable content.
WATCH OUT
Saying Venus is hottest because it's closest to the Sun.
Mercury is closer. Venus is hottest because its thick CO2 atmosphere traps heat via the greenhouse effect — the chapter states this directly as a correction to the naive distance-only expectation.
WATCH OUT
Treating the planetary greenhouse effect and a garden greenhouse as the same mechanism.
The 'A step further' box explicitly distinguishes them: one traps heat via gas absorbing radiation, the other simply seals in already-warmed air behind glass.
WATCH OUT
Citing specific climate statistics, India's mineral geography, or named Indian environmental movements (Chipko, Narmada Bachao Andolan, Panchamrit, net-zero targets).
None of this is in the chapter — only the triple planetary crisis and the four named global agreements (Montreal Protocol 1987, Earth Summit 1992, Kyoto Protocol 2005, Paris Agreement 2015) with their stated years.
WATCH OUT
Confusing pollination with fertilisation in plants.
Pollination is pollen physically arriving at another flower (via wind, insects, or animals); fertilisation is the separate, later step where male and female gametes actually combine to form a zygote.
WATCH OUT
Assuming all animals either all lay eggs or all give live birth.
The chapter distinguishes three patterns: external fertilisation with embryo development in water (fish, frogs), internal fertilisation with egg-laying and later hatching (birds), and internal fertilisation with the embryo developing inside the body (most mammals).

NCERT exercises (with solutions)

Every NCERT exercise from this chapter — what it covers and how many questions to expect.

Practice problems

Work through this chapter's problems as a readiness check — reveal each solution, mark yourself honestly, and get your gap report at the end.

Readiness check

Are you exam-ready for "Our Home: Earth, a Unique Life Sustaining Planet"?

7 problems from this chapter. Try each one, reveal the worked solution, mark yourself honestly — get your gap report at the end.

7 questions~5 min

5-minute revision

The whole chapter, distilled. Read this the night before the exam.

  • Life exists only on Earth's crust, a layer as thin (relative to the whole planet) as an apple's skin.
  • Venus is hottest not from proximity to the Sun but from a runaway CO2 greenhouse effect; Earth's own mild greenhouse effect keeps water liquid rather than freezing.
  • The habitable/Goldilocks zone is the distance range where a star keeps water liquid — the single most important reason Earth supports life.
  • Earth's right size lets gravity hold an atmosphere without crushing life; Mars's atmosphere is 100x thinner than Earth's; Mercury has none.
  • Ozone blocks harmful UV; Earth's magnetic field (from molten iron movement in the core) deflects cosmic rays and solar wind.
  • Four Earth systems: atmosphere (air), hydrosphere (water, ~70% of the surface), geosphere (solid rock/soil/minerals — not lithosphere), biosphere (life) — all interconnected.
  • Genes are an instruction manual in every cell; reproduction ensures continuity and allows small changes (camel humps, antibiotic resistance) to pass down.
  • Asexual reproduction: one parent, exact copies (vegetative propagation, binary fission, budding, fragmentation). Sexual reproduction: two parents, gametes each carrying half the genetic material, combining into one full mixed set.
  • Plants: pollen (anther, male) + ovule (female) -> pollination -> fertilisation -> zygote/seed, fruit around it; animals disperse seeds by eating fruit.
  • Animals: external fertilisation in water (fish, frogs) vs. internal fertilisation with egg-laying (birds, nutrition packed into the egg) or live birth (most mammals, continuous nutrition inside the body).
  • The triple planetary crisis: climate change, biodiversity loss, pollution.
  • Four global agreements, with the chapter's own years: Montreal Protocol (1987, CFCs/ozone), Earth Summit (1992, climate/biodiversity), Kyoto Protocol (2005), Paris Agreement (2015, below 1.5C target, not on track as of 2025).

Punjab (PSEB) marks blueprint

Where the marks come from in this chapter — so you can plan your prep.

Typical chapter weightage: High weightage — this closing chapter combines planetary science and reproduction biology, both heavily examined, often through comparison and case-based questions

Question typeMarks eachTypical countWhat it tests
MCQ / Assertion-Reason13-4Venus vs. Mercury; habitable zone; geosphere vs. lithosphere; genetic mixing in sexual reproduction; fertilisation type by animal
Short Answer2-33-4Defining a Earth system; explaining atmosphere retention by size; pollination vs. fertilisation; asexual vs. sexual reproduction
Long Answer / Case-based4-51-2
Prep strategy
  • Split the chapter into two halves in your head: 'why Earth is habitable' (13.1-13.4) and 'why life doesn't run out' (13.5), then 'what threatens it' (13.6) — most exam questions sit cleanly within one of these three
  • Keep the four Earth systems paired with their correct names: atmosphere, hydrosphere, geosphere (never lithosphere), biosphere
  • For every 'what if X disappeared' question (magnetic field, atmosphere, decomposers), trace the chain step by step rather than jumping to a final answer
  • Learn the reproduction vocabulary as paired terms, not isolated words: pollination/fertilisation, gamete/zygote, external/internal fertilisation, egg-laying/live birth
  • Do not import Earth's internal layers, plate tectonics, rock classification, or India-specific climate-policy statistics — none of it is in this chapter

Where this shows up in the real world

This chapter isn't just an exam topic — it lives in the world around you.

ISRO's Earth Observation Satellites

The false-colour satellite mosaic described in the chapter's opening — combining nearly 3000 images — is used to study plants on land, ocean organisms, ocean temperature, oil spills, and wind direction.

Mangalyaan and India's Mars exploration

India's 2013 Mars Orbiter Mission directly applied this chapter's own habitable-zone and atmosphere questions to a real, ongoing scientific investigation of another planet.

Global climate agreements

The Montreal Protocol, Earth Summit, Kyoto Protocol and Paris Agreement are real, currently active international frameworks governments use to coordinate action on the triple planetary crisis.

Plant breeding and grafting

Vegetative propagation (money plant cuttings, potato eyes, ginger) is the same principle nurseries and farmers use to grow genetically identical, reliable crop varieties without waiting for seeds.

Conservation breeding programmes

Understanding egg-laying vs. live-birth nutrition strategies directly informs how zoos and conservationists care for endangered species during breeding and incubation.

Climate adaptation planning

Villages and cities facing rising temperatures and unpredictable rainfall (as in exercise 10) use exactly this chapter's climate-change reasoning to plan water conservation and crop adaptation strategies.

Exam strategy

Battle-tested tips from teachers and toppers for this chapter.

1
For any 'why is Earth suitable for life' question, structure the answer around the chapter's own three factors — position (habitable zone), size (atmosphere retention), and magnetic field — rather than a single vague reason.
2
For reproduction questions, always name the specific vocabulary pair the question is testing (pollination/fertilisation, gamete/zygote, external/internal fertilisation) rather than describing the process only in general terms.
3
For 'what if X disappeared/changed' questions (magnetic field, atmosphere, decomposers, a whole species), trace the consequence chain step by step — these questions are marked on the reasoning shown, not just a final guess.
4
When citing global agreements, pair each one with both its year and what it specifically addressed — a bare list of names without years or purpose loses marks.
5
Do not import Earth's internal layers, plate tectonics, rock classification, or India-specific climate-policy statistics into this chapter's answers — none of it is in the syllabus here.
6
For comparison questions (egg-laying vs. live birth, external vs. internal fertilisation, asexual vs. sexual reproduction), always state one clear advantage AND one clear disadvantage or trade-off for each side, not just a list of differences.

Going beyond the textbook

For olympiad aspirants and curious learners — topics that build on this chapter.

STRETCH
The chapter states Venus's greenhouse effect is 'runaway' compared to Earth's 'mild' one. Research what a runaway greenhouse effect actually means physically, and what conditions could theoretically push Earth's own greenhouse effect toward becoming runaway.
STRETCH
Investigate exoplanet research: how do astronomers currently estimate whether a planet outside our solar system lies within its star's habitable zone, given they cannot directly observe liquid water on its surface?
STRETCH
The chapter notes some bacteria survive in frozen environments despite the chapter's own claim that liquid water is essential for life. Research extremophiles and how they challenge or refine the 'liquid water is essential for life' principle.
STRETCH
Compare the genetic mixing described here (each gamete carrying half the genetic material) with how identical twins form in humans, and explain why identical twins are a genuine exception to the 'every child is unique' rule this chapter states.
STRETCH
Research one real historical case (besides the Montreal Protocol) where an international environmental agreement measurably changed an environmental outcome, and evaluate what made it succeed or fall short.
STRETCH
Design a comparison table ranking Mercury, Venus, Earth, and Mars by how many of this chapter's 'life-supporting factors' (right distance, right size/atmosphere, magnetic field) each one satisfies, and use it to explain why only Earth supports known life.

Where else this chapter is tested

CBSE board isn't the only one — other exams test this chapter too.

CBSE Class 8 Annual ExaminationClosing chapter — heavily tested, especially case-based and comparison questions
NCERT-based school unit tests and periodic testsRegular coverage, often combined with Chapter 12
National Science Olympiad (NSO) — Level 1, Earth Science and Life ProcessesHabitable zone, reproduction types are common topics
Silverzone iOS / International Olympiad of SciencePlanetary science and reproduction-general sections
NTSE-pattern school screening (Science, Class 8 syllabus)Occasional reasoning-style questions on habitability or reproduction
Foundation courses for NEET/JEEReproduction vocabulary here is the direct entry point to Class 10-12 biology

Questions students ask

The real ones — pulled from the Q&A community and tutor sessions.

No. The crust is mentioned only once, as an analogy (as thin as an apple's skin) for where all life exists. There is no mantle/outer core/inner core cross-section, no plate tectonics, and no rock-type classification in this chapter.

No — the book's own term is the geosphere: 'the solid parts of the Earth, including materials like rocks, soils, and minerals.' Using 'lithosphere' instead is a common mistake this chapter specifically avoids.

A large share — roughly a third. Section 13.5 covers genes, asexual reproduction (vegetative propagation, binary fission, budding, regeneration), and sexual reproduction (gametes, pollination, fertilisation, external vs. internal fertilisation, egg-laying vs. live birth) in real depth, not as a brief aside.

Because Venus's atmosphere is almost entirely carbon dioxide, which traps heat via the greenhouse effect far more strongly than Mercury's near-absent atmosphere does. The chapter states this directly: distance alone would predict Mercury as hottest, but atmospheric composition overrides that expectation.

Pollination is pollen physically arriving at another flower, carried by wind, insects, or animals. Fertilisation is the separate, later step where the male gamete (from pollen) and female gamete (the ovule) actually combine to form a zygote. Pollination must happen before fertilisation can occur.

The chapter's term for the three biggest current environmental challenges together: climate change, biodiversity loss, and pollution.
Verified by the tuition.in editorial team
Last reviewed on 6 August 2026. Written and reviewed by subject-matter experts — read about our process.
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