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

  • 1Distinguish renewable from non-renewable resources and explain why fossil fuels are non-renewable
  • 2Read the Wanaparthy and Vaddicherla tables and account for the difference between the two villages
  • 3Explain what a percolation tank is and how it helps
  • 4Describe the interventions that recharged groundwater in both case studies
  • 5State the distribution of the Earth's water between salt, ice, groundwater and surface water
  • 6Define sustainable development and give the Kothapally figures as an example of it
  • 7Explain the consequences of deforestation and name sustainable forestry methods
  • 8Describe contour strip cropping and selective harvesting as soil conservation methods
  • 9Explain why biodiversity matters beyond food, using the book's lawn example
  • 10State the Indian consumption shares of coal, oil, gas and nuclear energy
  • 11Explain the four Rs, including why recycling plastic is a tricky process
  • 12Read the Academic Standards table and say what an AS3 or AS5 question is asking for
💡
Why this chapter matters
This chapter is unusually easy to answer well because almost all of it is data. Two Telangana villages are compared with five years of well counts, borewell depths, irrigation costs and crop incomes printed in full, and a third village shows what deliberate intervention achieved. An answer that cites 175 wells falling to 56 in Vaddicherla, or cotton earning 10,889 per acre in Wanaparthy, is doing something a general answer about water scarcity cannot. The chapter also closes the book with the Academic Standards table, which explains what every AS-coded question in the year has actually been asking for. Written from the SCERT Telangana official 2026 Class 10 Biology textbook, pages 225-245.

Natural Resources

1. What This Chapter Covers

Natural resources are present in abundance — but the chapter's opening question is whether we use them properly. It asks you to list the resources in your own locality and then pick one: which is scarce, whether it was abundant earlier, how it became scarce, and what you would do to save it.

The index allots this chapter 10 periods in January and runs it from page 225 to page 245, which makes it the last chapter of the book. Most of it is built from two case studies with real data, both from villages in Telangana.

2. Case I — Two Villages, Five Years Apart (Textbook 10.1)

The book compares Wanaparthy, which had no scarcity of ground water, with Vaddicherla, which did — placing both, in its own text, in Jangaon district.

Wells were counted in both villages. Basic information on well irrigation was collected from every well owner by questionnaire, covering socio-economic aspects, and 25 families from each village were asked to describe how the groundwater situation had changed over five years.

The decisive difference is simple: Vaddicherla has no alternative source of water except wells, while Wanaparthy has a percolation tank.

Percolation tanks are normally earthen dams with masonry structures where water may overflow. The construction material is a mixture of soil, silt, loam, clay, sand and gravel, suitably mixed and laid in layers at the base and sides, then properly compacted to achieve stability.

Otherwise the two villages are almost alike — occupational and cropping patterns, geography, infrastructure — and in both, farmers with small land holdings are in the majority. Wanaparthy has the higher average household income. Cultivation is the main occupation, the well is the primary source of irrigation, and household income depends on the status of groundwater. Rain has not been consistent for some years, yet farmers in both villages prefer growing paddy.

The numbers

VillageTotal area, acresArea under irrigation, at the startWells, at the startArea under irrigation, after 5 yearsWells, after 5 years
Wanaparthy4000100015586095
Vaddicherla300045017531556

Over the same five years, population rose by nearly 10 per cent in both villages.

Read the table carefully and the pattern is clear. Vaddicherla started with more wells than Wanaparthy, 175 against 155, but irrigated less than half the area. Five years later Wanaparthy had lost 60 wells and 140 acres; Vaddicherla had lost 119 wells and 135 acres. In proportion, Vaddicherla lost about 68 per cent of its wells against Wanaparthy's 39 per cent.

Because of the scarcity, most open dug wells were converted into bore wells, which reach greater depths and reduce loss of water by surface evaporation. But most open wells have dried up, and the availability of water in the bore wells has gone down too.

Because of varying monsoon behaviour, there is pressure on groundwater. Indiscriminate tapping by too much drilling and construction of deep tube wells and bore wells has resulted in over-exploitation and depletion in certain areas. The average fall of water level in the combined Andhra Pradesh during 1998-2002 was around 3 metres.

What it costs

Water is pumped out with electricity, and farmers with small holdings spend more money per well on pump sets, pipeline connections, maintenance and electricity charges.

VillageHoldingDepth of bore well, feetTotal cost of well irrigation per acre per year, rupees
WanaparthyLarge130 - 20025,000 - 70,000
WanaparthySmall110 - 18025,000 - 65,000
VaddicherlaLarge90 - 30022,000 - 50,000
VaddicherlaSmall60 - 20020,000 - 45,000

On a per-acre basis the costs are lowest in Wanaparthy, the village with the irrigation facility, and highest in Vaddicherla, the village without it.

What it earns

VillageHoldingPaddy KharifPaddy RabiCottonGingellyTotal per acre per year
WanaparthyLarge820087004900330025,100
WanaparthySmall7046849010,889311029,535
VaddicherlaLarge10,69859704000359524,263
VaddicherlaSmall912873803031265022,189

All figures are income per acre in rupees. The single most striking entry is cotton at 10,889 for small holders in Wanaparthy, higher than either paddy season — which is the answer to the book's question about what could replace paddy there.

Crops that grow in less or moderate water include cotton and gingelly. The book asks the obvious question about paddy: although we know it consumes the most water, why do farmers still prefer it?

The intervention

A project of the Centre for World Solidarity, Secunderabad, addressing the sustainability of ground water, intervened to help recharge the drying wells.

They encouraged water sharing among farmers, forming groups of large and small holders who would use the same resource. Farmers were motivated to use micro-irrigation — drip irrigation and sprinklers. Soak pits to tap rainwater optimally were built as community efforts, and these helped recharge dried-up bore wells. Dykes or barriers, nearly 30 cm thick of brick-cement or stone-cement with mud or clay filling, extending down to the compact bedrock, were built in underground streams to tap ground water optimally.

Water for all (10.1.1)

97 per cent of the total water on Earth is salt water in oceans, seas and underground. Only 2.5 to 2.75 per cent is fresh, and of that:

  • 1.75 to 2 per cent is frozen in glaciers, ice and snow, which is nearly two-thirds of all available fresh water
  • 0.7 to 0.8 per cent is fresh groundwater and soil moisture
  • less than 0.01 per cent is surface water in lakes, swamps and rivers

Meagre as it is, used judiciously it will last a long time.

Two villages, one difference: what a percolation tank buys WANAPARTHY — has a percolation tank 4000 acres; 1000 irrigated at the start, 860 after five years 155 wells at the start, 95 after: 39 per cent lost Bore wells 110 to 200 feet Cost per acre lowest of the two Small holder income 29,535 per acre VADDICHERLA — wells only 3000 acres; 450 irrigated at the start, 315 after five years 175 wells at the start, 56 after: 68 per cent lost Bore wells 60 to 300 feet, drilled deeper Cost per acre highest of the two Small holder income 22,189 per acre What reversed it at Kothapally 14 storage structures, 60 mini-percolation pits, bunding on 38 ha, 28 dry open wells recharged, 2500 fruit and teak trees planted And what it yielded 250 kg more red gram and 50 kg more maize per hectare; drip irrigation can cut water use by 70 per cent The whole supply, for scale 97 per cent of Earth's water is salt; under 0.01 per cent is surface water in lakes, swamps and rivers

The two villages are matched on almost everything — crops, geography, holdings, infrastructure — which is what makes the comparison usable. One had a recharge structure and one did not, and five years later the well loss differed by nearly thirty percentage points.

3. Case II — Kothapally (Textbook 10.2)

A survey of Kothapally village found that dry land areas were more extensive than irrigated land, literacy was low, labour was scarce, more fertilizers and pesticides were used on small farms, crop yields were low, and there was not even a single water harvesting structure in the village.

The International Crops Research Institute for Semi-Arid Tropics (ICRISAT) educated villagers in large numbers and provided technical support for cost-efficient water storage and soil conservation structures, both community-based and farmer-based. These restored some resources and conserved others so that they might never be depleted — which is what the book means by sustainable management.

Community-based interventions (10.2.1)

Fourteen water storage structures — one earthen and 13 masonry dams — with storage capacity of 300 to 2000 m³ were constructed. 60 mini-percolation pits and field bunding on 38 hectares were completed.

Twenty-eight dry open wells were recharged by building dykes or barriers in nearby canals and retaining rain water in them, and the water collected in the storage structures was used exclusively for recharging groundwater to the dried wells.

Farmer-based interventions (10.2.2)

Individual farmers built canals around fields and constructed landforms useful for water conservation. Misuse of soil, water and nutrients is prevented by broad bed furrows, growing crops that are short in height, and contour farming.

Rectangular bunds were built around 38 hectares of farm land and contour bunds against the slope, so rain water is preserved. Gliricidia, a legume that grows in dry soil, is grown to increase nitrogen levels in the soil and to strengthen the bunds.

Farmers obtained 250 kg more red gram and 50 kg more maize per hectare using broad bed furrows and micro-irrigation. Drip irrigation can reduce water consumption by 70 per cent, but only 2 per cent of cultivable land worldwide is irrigated that way.

Wasteland development (10.2.3)

Dryland waste areas can be developed by planting saplings of useful species along roads, field bunds and canals. Trenches at 10 m intervals with 0.3 m bunds were laid out, custard apple was planted in the trenches with other useful species and Gliricidia on the bunds, and 2500 fruit trees and teak plants were planted.

The state's water budget

According to a 2004 survey the total water available in Telangana and Andhra Pradesh is 3814 thousand million cubic feet (TMC), of which:

UseTMC
Irrigation2268
Domestic use21
Industries10
Power generation1
Total utilised2300

The amount required by 2025 is 3989 TMC — more than the 3814 TMC available.

Irrigation sources by area covered: ground water 43 per cent, canals 37 per cent, tanks 15 per cent, with the remainder from other sources.

Sri Ram Sagar Project, also known as the Pochampadu Project, is on the Godavari and is "a lifeline for a large part of Telangana", serving the erstwhile Karimnagar, Warangal, Adilabad, Nalgonda and Khammam districts. But most of the water is retained before reaching the state because of dams built on the Godavari in another state.

According to the United Nations Development Programme, a water resource in an area where annual supply drops below 1700 m³ per person is becoming scarce. The FAO has predicted that by 2025, 1.8 billion people will be living in countries or regions with absolute water scarcity.

4. Natural Resources Around Us (Textbook 10.3)

Earth's natural resources include air, water, soil, minerals, fuels, plants and animals, and conservation is the practice of caring for them so all living things can benefit now and in the future.

Resources that can be replaced after use are renewable. Others, such as fossil fuels, cannot be replaced at all — once used up they are gone forever, because their formation takes a long time while consumption happens very quickly. These are non-renewable.

People waste resources routinely: animals are overhunted, forests cleared so that land is exposed to wind and water damage, fertile soil exhausted and lost to erosion through poor farming, fuel supplies depleted, water and air polluted.

The book is honest that conservation conflicts with other genuine needs. A forest area may look like a good place for a farm, for a timber company to harvest, or for a factory or shopping mall. All these needs are valid, but the plants and animals living there are often forgotten.

The benefits of development have to be weighed against the harm to animals forced to find new habitats, the depletion of resources we may want later, and the damage to resources we use today.

When we use the environment in a way that ensures we still have resources for the future, that is sustainable development.

5. Forests (Textbook 10.4)

Every continent except Antarctica has forests. They are habitat for flora and fauna, serve as a lung for the world and a bed of nutrients for new life — and in the urge to extract their products we destroy them indiscriminately.

Each year the Earth loses about 36 million acres of forest to deforestation. It destroys wildlife habitats, increases soil erosion, and releases CO, CO₂ and SO₂ — greenhouse gases — into the atmosphere, contributing to global warming.

The Bishnois

The book's example of what a conservation movement can be is the Bishnois of Rajasthan. Amrita Devi and her daughters, followed by villagers, clung to the trees in the forest around their village and laid down their lives to save them.

They were protesting against the king's order to collect wood for the construction of his palace, and defending the pledge of peaceful coexistence they had taken — a set of 29 rules to conserve nature's resources that every Bishnoi vows to protect.

It also points to the Chenchu and Gond tribes of Telangana, and how carefully they extract resources from nature and help revive it.

Sustainable forestry

Sustainable methods include harvesting with natural regeneration in mind and avoiding logging techniques such as removing all the high-value or all the large trees from a forest.

Trees are also conserved when consumers recycle forest products. People in China and Mexico reuse much of their wastepaper, including writing paper, wrapping paper and cardboard, and if half the world's paper were recycled, much of the worldwide demand for new paper would be met, saving many trees.

6. Soil (Textbook 10.5)

Soil is vital to food production, and many other conservation efforts — plant conservation, animal conservation — depend on soil conservation.

Poor farming methods such as repeatedly planting the same crop in the same place deplete nutrients, and erosion by water and wind increases when farmers plough up land, especially on hills.

Contour strip cropping is one conservation method: several crops such as corn, wheat and clover are planted in alternating strips across a slope or across the path of the prevailing wind. Different crops, with different root systems and leaves, help prevent erosion.

Selective harvesting also helps: mature commercial trees of a specific diameter are harvested on a rotational cycle, and harvested areas are then closed for a prescribed period before the next cycle, which gives younger trees a chance to reach full commercial potential and lets the forest regenerate naturally.

7. Biodiversity (Textbook 10.6)

Biodiversity is the variety of living things that populate the Earth, and the products and benefits we get from nature rely on it — foods, building materials, medicines, and a clean and healthy landscape.

When a species becomes endangered it is lost to the world forever, and through hunting, pollution and habitat destruction people are speeding up that loss at an alarming rate. We use thousands of plant species for medicines worldwide.

The book makes the point close to home: a lawn in a colony is a pleasant sight, but a lot of plant species are completely destroyed to grow the one type of grass on it, and the grass grown is usually brought from another country. It asks you to watch how a lawn near you is maintained and to find out from the gardener which plants are removed from time to time.

Activity 2. Find out how many types of insect are present in and around your house. Are the same types there in all seasons? Make a chart of insect types, note their occurrence for at least a week in each season, find out when you have the highest variety, and study them in later years to see if any have disappeared.

8. Fossil Fuels (Textbook 10.7)

Fossil fuels — coal, petroleum and natural gas — were produced from the remains of ancient plants and animals.

Besides fuel for vehicles, many everyday products are made from petroleum: plastics, synthetic rubber, fabrics like nylon, medicines, cosmetics, waxes, cleaning products and medical devices.

Consumption of some resources in India, from the book's figure: coal 42 per cent, oil 24 per cent, energy wastes 24 per cent, natural gas 7 per cent, others 2 per cent, nuclear 1 per cent.

Scientists are exploring alternatives — renewable biofuels for cars and trucks, and electricity from sun, wind and water. Everyone can help by purchasing energy-efficient appliances, walking or cycling, and using public transport wherever possible.

Seeds from the Jatropha curcas plant are used to produce biofuel, a crucial part of India's plan to attain energy sustainability. Combined Andhra Pradesh entered a formal agreement with Reliance Industries for Jatropha planting, and the company selected 200 acres at Kakinada to grow it for high-quality biodiesel.

9. Minerals (Textbook 10.8)

Earth's supply of raw mineral resources is in danger, and many located and mapped deposits have been depleted. As the ores for minerals such as aluminium and iron become harder to find and extract their prices rise, which makes tools and machinery more expensive to buy and operate.

Many mining methods, such as mountaintop removal mining, devastate the environment: they destroy soil, plants and animal habitats, and pollute water and air as toxic chemicals leak into the surrounding ecosystem.

Less wasteful mining methods and recycling will help. Car manufacturers in Japan recycle many of the raw materials used in making automobiles, and in the United States nearly one-third of the iron produced comes from recycled automobiles.

10. Conservation and the Four Rs (Textbook 10.9, 10.10)

"The interest in conservation is not a sentimental one but the discovery of a truth well known to our ancient sages. The Indian tradition teaches us that all forms of life — human, animal and plant — are so closely inter-linked that disturbance of one gives rise to imbalance in the other." — Srimati Indira Gandhi, launching the world conservation strategy in India on 6 March 1980

In the 1960s most countries lived within their ecological resources. The latest figure the book gives is that today three-quarters of the human population live in countries which consume more than they can replenish.

Reduce. Using resources without wasting them — repairing leaky taps, avoiding a shower, switching off unnecessary lights and fans.

Reuse. Things we tend to throw away, such as paper and wrapping paper. This saves plants and minimises pollution.

Recycle. Converting waste materials into new materials and objects, as with some metals, glass and paper. The book is careful here: recycling is not always a good option, because recycling plastic is a tricky process and can cause havoc. The chief problem is complexity — there are as many types of plastic as there are uses, each type can only be recycled with its own kind, so plastics must be carefully sorted before processing.

Recover. When trees are cut to build industries or roads, it is important to grow trees in another area, which helps sustain forest cover and the habitats of organisms.

Conservation groups

Governments enact laws defining how land should be used and which areas should be set aside as parks and wildlife preserves, enforce laws protecting the environment from pollution such as requiring factories to install pollution-control devices, and often provide incentives for conserving resources.

The International Union for the Conservation of Nature (IUCN) is an alliance of governments and private groups founded in 1948. It works to protect wildlife and habitats, and in 1980 proposed a world conservation strategy that many governments have used as a model for their own plans. The IUCN also monitors the status of endangered wildlife, threatened national parks and preserves, and other environments around the world.

The chapter's closing position: we need natural resources for development, but not at the cost of loss of habitat for living organisms.

11. The Academic Standards (Textbook page 245)

The last page of the book prints the legend for the AS codes attached to every "Improve your learning" question in all ten chapters.

CodeAcademic standardWhat it means
AS1Conceptual understandingExplaining, citing examples, giving reasons, comparing, writing differences, explaining processes, and developing your own mind maps
AS2Asking questions and making hypothesisAsking questions to understand and clarify, participating in discussion, and making hypotheses about experimental results and issues
AS3Experimentation and field investigationDoing experiments yourself: arranging materials, noting observations, finding alternative materials, taking precautions, and reporting field investigations
AS4Information skills and projectsCollecting information by interview, checklist and questionnaire, analysing it systematically, and conducting your own project work
AS5Communication through drawing and model makingExplaining understanding by drawing and labelling figures, describing parts, making models, and plotting graphs from given or collected data
AS6Appreciation and aesthetic sense, valuesAppreciating human effort and nature, having an aesthetic sense towards nature, and following constitutional values
AS7Application to daily life, concern to biodiversityUsing scientific concepts to face daily life situations, and showing concern for biodiversity

Reading this table tells you what each question is actually asking for, which is often not obvious from its wording — an AS3 question wants a procedure, an AS5 question wants a labelled drawing, and an AS1 question wants an explanation rather than a list.

Key words from the chapter

Percolation tank, micro-irrigation, bore wells, sustainable development, biofuels, contour strip farming, dyke management.

12. Summary

Management of resources is essential for their conservation and restoration. Resources are usually local specific, and local people need to have control over them.

People need to be motivated to reduce pressure on the environment by reducing the utilization of resources and reusing some of them.

We must use our resources judiciously, especially fossil fuels, coal and petroleum, since they will ultimately be exhausted.

Interstate and intercountry disputes should not hamper the availability of a resource — a point the book illustrates with the Sri Ram Sagar Project, where water is retained upstream before reaching Telangana.

The two case studies are the chapter's real argument. Wanaparthy and Vaddicherla differ in almost nothing except that one has a percolation tank, and five years of well counts show what that difference is worth. Kothapally began with no water harvesting structure at all, and community and farmer interventions together reversed the decline — which is what sustainable management looks like when it is measured rather than asserted.

Key formulas & results

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

Distribution of Earth's water
97 per cent salt; 2.5 to 2.75 per cent fresh, of which 1.75 to 2 per cent is frozen, 0.7 to 0.8 per cent is groundwater and soil moisture, under 0.01 per cent is surface water
Nearly two-thirds of available fresh water is locked in glaciers, ice and snow
Wanaparthy wells and area
155 wells and 1000 irrigated acres at the start; 95 wells and 860 acres after five years
About 39 per cent of wells lost, out of a total 4000 acres
Vaddicherla wells and area
175 wells and 450 irrigated acres at the start; 56 wells and 315 acres after five years
About 68 per cent of wells lost, out of a total 3000 acres; population rose about 10 per cent in both
Cost of well irrigation per acre per year
Wanaparthy 25,000 to 70,000 rupees; Vaddicherla 20,000 to 50,000 rupees
Costs per acre are lowest in Wanaparthy, which has the irrigation facility, and highest in Vaddicherla, which does not
Highest crop income in the tables
Cotton, 10,889 rupees per acre for small holders in Wanaparthy
Higher than either paddy season there, which is why cotton is the answer to what could replace paddy
Kothapally structures
14 water storage structures of 300 to 2000 m3, 60 mini-percolation pits, bunding on 38 hectares, 28 wells recharged, 2500 trees planted
The village had no water harvesting structure at all before the intervention
Yield gain at Kothapally
250 kg more red gram and 50 kg more maize per hectare
From broad bed furrows and micro-irrigation
Drip irrigation saving
Reduces water consumption by 70 per cent, yet used on only 2 per cent of cultivable land worldwide
One of the micro-irrigation methods promoted in both case studies
State water budget, 2004
3814 TMC available, 2300 TMC utilised, of which irrigation takes 2268; 3989 TMC required by 2025
The 2025 requirement exceeds the total available
Water scarcity threshold
Below 1700 cubic metres per person per year, UNDP definition
The FAO predicts 1.8 billion people in absolute water scarcity by 2025
Indian energy consumption shares
Coal 42, oil 24, energy wastes 24, natural gas 7, others 2, nuclear 1 per cent
From the book's figure of percentage consumption of some resources in India
Irrigation by source
Ground water 43 per cent, canals 37 per cent, tanks 15 per cent, other sources the rest
By area irrigated
⚠️

Common mistakes & fixes

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

WATCH OUT
✗ Assuming more wells means more water
✓ Vaddicherla began with 175 wells against Wanaparthy's 155 and irrigated less than half the area, and five years later had lost 68 per cent of them against Wanaparthy's 39 per cent. What mattered was not the number of wells but whether anything was recharging the groundwater they drew on.
WATCH OUT
✗ Saying deeper borewells solve water scarcity
✓ The book asks this directly and the case study answers it. Converting open wells to borewells reduces evaporation loss and reaches deeper zones, but availability in the borewells has also gone down, and indiscriminate deep drilling is named as a cause of depletion — the water level in the combined state fell about 3 metres between 1998 and 2002.
WATCH OUT
✗ Treating water as renewable and therefore safe
✓ The book states it is comforting to think water is renewable but that limitless exploitation affects it adversely. Once annual supply falls below 1700 cubic metres per person the resource is becoming scarce, whatever its formal classification.
WATCH OUT
✗ Saying recycling is always the best option
✓ For paper and metals it is, but the book singles out plastic: recycling it is a tricky process and can cause havoc, because there are as many types of plastic as uses and each type can only be recycled with its own kind, so careful sorting has to come first.
WATCH OUT
✗ Confusing conservation with leaving resources untouched
✓ Sustainable development means using the environment in ways that ensure we still have resources in future, not avoiding use. The book weighs the genuine competing needs — a farm, a timber harvest, a factory — against habitat loss and future depletion rather than dismissing them.
WATCH OUT
✗ Writing that soil erosion is caused only by wind and water
✓ Erosion by wind and water increases sharply because of what farmers do, particularly ploughing up land on hills and repeatedly planting the same crop in the same place, which also depletes nutrients. Contour strip cropping exists to counter exactly that.
WATCH OUT
✗ Naming only food when asked why biodiversity matters
✓ The book says biodiversity is more important than food, and names building materials, thousands of medicinal plant species, and a clean and healthy landscape. Its lawn example makes the point that a single introduced grass replaces many local species.
WATCH OUT
✗ Quoting the sources of irrigation as equal shares
✓ They are not. Ground water covers 43 per cent of the irrigated area, canals 37 per cent and tanks 15 per cent, which is why groundwater depletion matters more than any other single factor to the state's irrigation.

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 Natural Resources?

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

10 questions~7 min

5-minute revision

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

  • •Wanaparthy has a percolation tank; Vaddicherla has no alternative to wells at all
  • •Wanaparthy: 4000 acres, 1000 irrigated falling to 860, 155 wells falling to 95
  • •Vaddicherla: 3000 acres, 450 irrigated falling to 315, 175 wells falling to 56
  • •Population rose about 10 per cent in both villages over the five years
  • •Open wells were converted to bore wells to reach deeper and cut evaporation, but bore well water has fallen too
  • •Water level in the combined state fell about 3 metres between 1998 and 2002 from over-drilling
  • •Cost per acre is lowest in Wanaparthy and highest in Vaddicherla; small holders spend more per well
  • •Cotton earned 10,889 per acre for Wanaparthy small holders, more than either paddy season
  • •The Centre for World Solidarity promoted water sharing, drip and sprinkler irrigation, soak pits and dykes
  • •97 per cent of Earth's water is salt; under 0.01 per cent is surface water in lakes, swamps and rivers
  • •Kothapally had no water harvesting structure; ICRISAT gave technical support for cost-efficient ones
  • •14 storage structures of 300 to 2000 cubic metres, 60 mini-percolation pits, bunding on 38 hectares
  • •28 dry open wells recharged; 2500 fruit and teak trees planted; trenches at 10 m with 0.3 m bunds
  • •Broad bed furrows and micro-irrigation gave 250 kg more red gram and 50 kg more maize per hectare
  • •Gliricidia fixes nitrogen and strengthens bunds; drip irrigation saves 70 per cent but covers only 2 per cent of land
  • •2004 state budget: 3814 TMC available, 2300 utilised with 2268 to irrigation, 3989 needed by 2025
  • •Irrigation sources by area: ground water 43, canals 37, tanks 15 per cent
  • •UNDP scarcity threshold 1700 cubic metres per person a year; FAO predicts 1.8 billion in absolute scarcity by 2025
  • •Earth loses about 36 million acres of forest a year; deforestation releases CO, CO2 and SO2
  • •Amrita Devi and the Bishnois of Rajasthan died clinging to trees; the Bishnoi code has 29 rules
  • •Contour strip cropping and selective harvesting on a rotational cycle conserve soil and forest
  • •Indian consumption: coal 42, oil 24, energy wastes 24, natural gas 7, others 2, nuclear 1 per cent
  • •Four Rs: reduce, reuse, recycle, recover; plastic recycling is tricky because each type needs its own kind
  • •IUCN founded 1948, proposed the world conservation strategy in 1980; page 245 defines the AS1 to AS7 codes

Telangana (TSBIE) marks blueprint

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

Typical chapter weightage: No marks distribution is printed in the textbook for this chapter, so no total is claimed. The index gives 10 periods in January. The categories below are the book's own end-of-chapter sections; the marks column indicates question size rather than official weightage. Two of this chapter's questions are unusually large: the sand mining passage carries six sub-questions and the petroleum graph question four, so each is effectively a full long answer.

Question typeMarks eachTypical countWhat it tests
Improve your learning (AS1)36Conserving oil, sustainable development, managing a natural resource in detail, reusing a local resource, why forests and wildlife must be conserved, and approaches to forest conservation
Improve your learning (AS2)32Predicting and questioning: consequences of rapid depletion, and a questionnaire for a petrol filling station on fossil fuel consumption
Improve your learning (AS3)41Model making: rain water harvesting, energy saving or soil management, reflecting your own ideas
Improve your learning (AS4)45Information and analysis: the six-part beach sand mining passage, farmers' restoration practices locally, ONGC gas production near Kakinada, a local recycling unit, and a four-part reading of an Indian petroleum consumption graph
Improve your learning (AS6 and AS7)22Argument and awareness: whether proper utilisation of resources is gratitude to the nation, and a slogan on matching crop selection to available water
Fill in the blanks15Biofuel plants, why biodiversity matters beyond food, a non-renewable resource, the alternative to groundwater depletion, and the conditions paddy suits
Choose the correct answer15What percolation tanks do, the right practice under water scarcity, which fossil reserve falls fastest, the cause of toxic chemical leakage, and the meaning of sustainable development

Where this shows up in the real world

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

Percolation tanks

Percolation tanks, soak pits and check dykes as the standard groundwater recharge toolkit in Telangana villages

Drip irrigation and sprinklers

Drip irrigation and sprinklers, which cut water use by up to 70 per cent

Jatropha biodiesel

Jatropha biodiesel, planted on 200 acres at Kakinada under an agreement with Reliance Industries

Contour strip cropping and contour bunding on sloping far…

Contour strip cropping and contour bunding on sloping farmland

Recycling of automobile steel

Recycling of automobile steel, which supplies nearly a third of the iron produced in the United States

Exam strategy

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

1
Quote the village figures; this chapter's marks are easiest to earn with numbers rather than general statements
2
When comparing the two villages, name the one variable that differs — the percolation tank — before listing effects
3
For conservation questions, give the method and the reason it works, since the reason is usually the second mark
4
Learn the four Rs with one example each, and remember the plastic caveat under recycle
5
Read the Academic Standards table once; it tells you what an AS3 or AS5 question actually wants

Going beyond the textbook

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

STRETCH
Calculate the acres irrigated per surviving well in each village before and after, and interpret the change
STRETCH
Work out whether the 2025 requirement of 3989 TMC can be met at all from 3814 TMC available
STRETCH
Estimate how much of the irrigation share could be freed by shifting paddy area to cotton at Wanaparthy
STRETCH
Given 46.2 years of proved oil reserves, work out what an annual consumption rise of 2 per cent does to that figure
STRETCH
Compare the energy and water cost of recycling a tonne of paper with that of producing it from new pulp

Where else this chapter is tested

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

Telangana SSC public examination — Biological Science paper, natural resources section
Civil services and state-level general studies, where groundwater and watershed management recur
Polytechnic and residential-school entrance tests in Telangana

Questions students ask

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

Because wells extract but do not replenish. Wanaparthy's percolation tank holds surface water so it seeps down and recharges the aquifer that the wells draw on; Vaddicherla has no such structure and no alternative source at all. So Vaddicherla's 175 wells were all drawing on a stock that nothing was refilling, and five years later 119 of them had dried up. Drilling more or deeper wells into a falling water table makes the fall faster, not slower.

The book asks this and leaves it for discussion, which is fair, because the answer is not purely agronomic. The tables show cotton at 10,889 per acre for Wanaparthy small holders against 7046 and 8490 for the two paddy seasons. But paddy is the familiar crop, its market and procurement are established, and both villages have grown it for generations. Changing crop means changing knowledge, inputs and buyers at the same time.

Kothapally got technical support and organised community action, and Vaddicherla's problem was diagnosed the same way. Both villages were told to recharge rather than drill. The difference is scale and coordination: Kothapally built fourteen storage structures, sixty percolation pits, bunds over 38 hectares and recharged 28 wells, with ICRISAT supplying the engineering and farmers supplying the field-level work.

The book is careful here. It says it is comforting to think water is a renewable resource, but limitless exploitation can affect it adversely. Rain returns, but groundwater that took decades to accumulate can be pumped out in years, and once annual supply falls below 1700 cubic metres per person the UNDP counts the resource as becoming scarce whatever its formal category.

Because plastic is not one material. There are as many types of plastic as there are uses, and each type can only be recycled with its own kind, so everything has to be carefully sorted before processing. Mixed or badly sorted plastic makes the process, in the book's words, tricky and capable of causing havoc. For paper, glass and metals the case is much stronger — nearly a third of the iron produced in the United States comes from recycled automobiles.
Verified by the tuition.in editorial team
Last reviewed on 21 September 2026. Written and reviewed by subject-matter experts — read about our process.
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