Home

Tutoring

Subjects

Live Classes

Study Coach

Essay Review

On-Demand Courses

Colleges

Games


Sign up

Log in

Opening subject page...

Loading your content

Practice

  • All Subjects
  • Algebra Flashcards
  • SAT Math Practice Tests
  • Math Question of the Day
  • Live Classes
  • On-Demand Courses

Varsity Tutors

  • Find a Tutor
  • Test Prep
  • Online Classes
  • K-12 Learning
  • College Search
  • VarsityTutors.com

© 2026 Varsity Tutors. All rights reserved.

  1. Middle School Earth and Space Science
  2. Use evidence to explain how resource consumption affects Earth systems

MIDDLE SCHOOL EARTH AND SPACE SCIENCE (NEXT GENERATION SCIENCE STANDARDS) • EARTH AND HUMAN ACTIVITY

Use evidence to explain how resource consumption affects Earth systems

Discover how the resources we use every day leave a measurable mark on Earth's atmosphere, water, and land.

SECTION 1

Why Scientists Started Tracking Resource Use

People have always used Earth's natural resources (materials from nature that humans need or want). Wood, water, soil, and minerals helped early civilizations grow. For most of history, there were not enough people to use resources faster than Earth could replace them. That started to change a few hundred years ago.

During the Industrial Revolution, factories burned huge amounts of fossil fuels (coal, oil, and natural gas formed from ancient organisms). Smoke darkened city skies. Rivers turned colors from factory waste. Scientists began to wonder: could human activity change Earth's systems on a large scale?

1760s
The Industrial Revolution Begins
Factories in England start burning coal to power machines. Large-scale resource consumption begins, and air pollution rises sharply in cities.
1896
CO₂ and Temperature Link Discovered
Swedish scientist Svante Arrhenius calculates that burning fossil fuels could warm the planet by adding carbon dioxide (CO2) to the atmosphere.
1958
Keeling Curve Measurements Begin
Charles David Keeling starts measuring atmospheric CO2 in Hawaii. His data shows a steady rise each year, providing direct evidence that CO2 is increasing.
1970
First Earth Day
Twenty million Americans rally for cleaner air and water. The event leads to the creation of the Environmental Protection Agency (EPA) and new pollution laws.
2015
Paris Climate Agreement
Nearly 200 countries agree to reduce fossil fuel use and limit global warming. This agreement relies on decades of scientific evidence about resource consumption and Earth's climate.

Today we have mountains of data — ice cores, satellite images, and ocean temperature records. The big question this lesson explores is: What evidence shows that our resource consumption affects Earth's atmosphere, water, and land?

SECTION 2

Core Principles of Resource Consumption and Earth Systems

Before we dig into the evidence, you need to understand a few key ideas. Earth works as a set of connected systems (groups of parts that interact and work together). When we change one system, the effects can ripple through the others.

1

Earth's Four Spheres

Earth has four main systems: the atmosphere (air), hydrosphere (water), geosphere (land and rock), and biosphere (living things). All four interact constantly.
2

Renewable vs. Nonrenewable Resources

Renewable resources (like sunlight and wind) are replaced naturally in a short time. Nonrenewable resources (like coal and oil) take millions of years to form. Using them up faster than they form causes lasting changes.
3

Cause and Effect in Earth Systems

When people burn fossil fuels, the cause is extra greenhouse gases entering the atmosphere. The effect is a warming climate. Cause-and-effect thinking is a powerful scientific tool.
4

Evidence-Based Reasoning

Scientists rely on evidence (data collected through observation and measurement) to support claims. Graphs, measurements, and patterns in data are all types of evidence you can use to explain how resources affect Earth.
✦ KEY TAKEAWAY
Think of Earth's systems like a game of dominoes. When you knock over one domino (like burning fossil fuels), it bumps the next one (more CO2 in the air), which bumps another (warmer temperatures), and so on. To figure out which domino started the chain, you need evidence — real measurements and data that show the cause-and-effect links.
SECTION 3

How Resource Consumption Connects to Earth's Systems

The diagram below shows how human resource consumption sends ripple effects through all four of Earth's spheres. Follow the arrows to see how burning fossil fuels, mining, and deforestation create changes in the atmosphere, hydrosphere, geosphere, and biosphere.

How Resource Consumption Affects Earth's SystemsHuman Resource UseBurning Fossil FuelsMining & DrillingDeforestationATMOSPHERE↑ CO₂ & greenhousegases → warmingHYDROSPHEREAcid rain, oceanacidification, warmingGEOSPHERESoil erosion, landdegradation, mining scarsBIOSPHEREHabitat loss,species declineCROSSCUTTING CONCEPT: Cause and EffectEach arrow represents a cause-and-effect relationship backed by scientific evidence.Dashed lines show indirect effects (e.g., deforestation also adds CO₂ to the atmosphere).
This diagram shows three major categories of resource consumption (orange and red boxes at top) and how they send effects into all four Earth systems (colored boxes in the middle). The dashed lines show indirect connections, such as deforestation releasing stored carbon into the atmosphere.

Notice how the arrows crisscross. Burning fossil fuels mainly affects the atmosphere, but it also changes the hydrosphere through acid rain. Mining changes the geosphere, but runoff pollutes the hydrosphere too. This tells us something important: Earth's systems are connected, so changing one system often changes others. This is the crosscutting concept of Systems and System Models — scientists use diagrams like this one to model how parts of a system interact.

SECTION 4

How Fossil Fuel Consumption Changes the Atmosphere

The best-studied example of resource consumption affecting an Earth system is the link between fossil fuels and the greenhouse effect (the way certain gases in the atmosphere trap heat from the Sun). Here is how the mechanism works step by step.

Step-by-Step: Fossil Fuels and the Greenhouse Effect

  1. Step 1 — Combustion: We burn coal, oil, or natural gas for energy. This chemical reaction releases carbon dioxide (CO2) and water vapor into the atmosphere.
  2. Step 2 — CO₂ Accumulates: CO2 stays in the atmosphere for hundreds of years. Over time, the concentration (amount per volume of air) increases.
  3. Step 3 — More Heat Is Trapped: CO2 absorbs infrared radiation (heat energy) that Earth's surface sends upward. Instead of escaping to space, the heat stays near Earth.
  4. Step 4 — Global Temperature Rises: With more heat trapped, Earth's average temperature slowly increases. This is the pattern scientists call global warming.
SIMPLIFIED COMBUSTION OF A FOSSIL FUEL (METHANE)
CH₄ + 2 O₂ → CO₂ + 2 H₂O + energy
CH₄ = methane (a fossil fuel found in natural gas). O₂ = oxygen from the air. CO₂ = carbon dioxide (the greenhouse gas). H₂O = water. Notice that CO2 is always a product — you cannot burn a fossil fuel without creating it.

The crosscutting concept at work here is Cause and Effect. The cause is burning fossil fuels. The effect is rising CO2 and rising temperatures. Scientists know this link is real because they can measure both the CO2 increase and the temperature increase over the same time period.

🔬 NGSS Connection
Science and Engineering Practice: Constructing Explanations. When you use the combustion equation and temperature data to explain why Earth is warming, you are doing exactly what scientists do — building an explanation from evidence.
SECTION 5

Reading the Evidence: Data That Tells the Story

Scientists use many types of evidence to show how resource consumption affects Earth. Let's look at the most important data sets. The graph below shows two key measurements plotted together: atmospheric CO2 concentration and global average temperature change since 1880.

CO₂ Concentration and Temperature Change (1880–2020)CO₂ (ppm)Temp Change (°C)Year188019001920194019602020280320360400420−0.2+0.2+0.6+1.0+1.2CO₂ (ppm)Temperature Change (°C)Sources: NOAA, NASA GISS. Data simplified for illustration.
The red solid line shows atmospheric CO2 concentration in parts per million (ppm). The dashed cyan line shows global average temperature change in degrees Celsius compared to the 1880 baseline. Both lines rise sharply after 1950, showing a clear pattern — as CO2 goes up, temperature goes up.

What Patterns Do You See?

The crosscutting concept of Patterns is key here. Both lines on the graph trend upward over time. They also accelerate (get steeper) after about 1950. This is not a coincidence. After World War II, global energy use surged as more countries built factories, cars, and power plants. The data shows a clear correlation (two things changing together in the same direction).

Examples of scientific evidence linking resource consumption to Earth system changes
Type of EvidenceWhat It ShowsEarth System Affected
Ice cores from AntarcticaCO2 levels over 800,000 years; today's level is the highest ever recordedAtmosphere
Ocean pH measurementsOceans are about 30% more acidic than in 1800, because CO2 dissolves into seawaterHydrosphere
Satellite images of forestsAmazon rainforest has lost about 17% of its area in the last 50 years due to logging and farmingBiosphere & Geosphere
Sea-level tide gaugesGlobal sea level has risen about 20 cm since 1900 as ice melts and water expands from warmthHydrosphere
Mining site soil testsSoil near mines has elevated levels of heavy metals like lead and mercury, harming plant growthGeosphere & Biosphere
✦ KEY TAKEAWAY
Imagine you notice your fish tank getting cloudier every day. You also notice you have been adding extra food. The pattern of cloudiness matching the extra food is evidence that overfeeding is the cause. Scientists do the same thing with Earth: they compare graphs of resource use and system changes to find matching patterns.
SECTION 6

Worked Example: Building an Evidence-Based Explanation

Let's practice the science and engineering practice of Constructing Explanations from Evidence. We will use a claim-evidence-reasoning (CER) framework. This is exactly how scientists present their findings.

Explain how burning fossil fuels has changed Earth's atmosphere

Step 1 — State Your Claim

A claim is a statement that answers a question. Our claim: Burning fossil fuels has increased CO₂ in Earth's atmosphere, which has caused the average global temperature to rise.

Step 2 — Present Your Evidence

Evidence is the data that supports your claim. Evidence 1: The Keeling Curve shows atmospheric CO2 rose from about 315 ppm in 1958 to over 420 ppm in 2023. Evidence 2: NASA temperature records show Earth's average surface temperature has risen about 1.1 °C since the late 1800s. Evidence 3: Ice core data confirms CO2 was stable near 280 ppm for thousands of years before industrialization.
Three pieces of evidence presented: Keeling Curve, NASA temperature record, and ice core data.

Step 3 — Write Your Reasoning

Reasoning connects your evidence to your claim using scientific ideas. CO2 is a greenhouse gas. It absorbs heat that would otherwise leave Earth. When humans burn fossil fuels, the chemical reaction produces CO2 as a product. The pattern in the data — both CO2 and temperature rising together after industrialization — shows a cause-and-effect relationship. This supports the claim that fossil fuel combustion is driving atmospheric change.
Complete CER: Claim states the connection. Evidence gives the data. Reasoning uses science to link them.
💡 Pro Tip
When writing your own CER, always ask: "Does my reasoning explain why my evidence supports my claim?" If you just list facts without explaining the science behind them, your reasoning is missing.
SECTION 7

Trade-Offs: Benefits and Costs of Resource Use

Resources are not all bad. They give us electricity, transportation, and materials for building. The challenge is that every resource comes with trade-offs (benefits you gain versus costs you pay). Understanding trade-offs helps communities make better decisions.

Trade-offs associated with common resources
ResourceBenefits to SocietyCosts to Earth Systems
CoalInexpensive electricity; abundant supply; supports jobs in mining regionsHighest CO2 per unit of energy; acid rain from sulfur dioxide; mountaintop removal destroys land
Natural GasCleaner-burning than coal; heats homes; supports cooking and manufacturingStill releases CO2; methane leaks are a potent greenhouse gas; fracking can contaminate groundwater
Forests (timber)Building material; paper products; provides income for communitiesDeforestation removes CO2 absorbers; causes soil erosion; destroys habitat for wildlife
Solar EnergyNo greenhouse gas emissions during use; renewable; dropping costsManufacturing panels uses energy and minerals; large solar farms require land; panels have a limited lifespan and need recycling
Fresh WaterEssential for drinking, farming, and industry; supports all lifeOver-pumping lowers water tables; irrigation can cause soil salinization; diverting rivers harms ecosystems
✦ KEY TAKEAWAY
Choosing a resource is like picking a meal deal at a restaurant. Every option has upsides (taste, nutrition) and downsides (cost, calories). The crosscutting concept of Stability and Change reminds us that some choices keep Earth's systems stable while others push them toward unwanted change. Using evidence about trade-offs helps us pick the best option.
SECTION 8

From Middle School to High School: Where This Leads

The ideas you are learning now form the foundation for more advanced science. In high school, you will use quantitative models (equations with real numbers) to predict how much warming a certain amount of CO2 will cause. You will also study feedback loops — cycles where an effect makes the original cause stronger or weaker.

How these concepts build toward high school Earth science
What You Learn Now (MS)What Comes Next (HS)
Identify evidence that CO2 is risingCalculate carbon budgets and emission rates using algebra
Describe how burning fossil fuels warms EarthModel the greenhouse effect using energy balance equations
Compare renewable and nonrenewable resourcesEvaluate life-cycle analysis of energy sources (cradle-to-grave costs)
Use CER to explain a single Earth system changeUse computational models to predict multi-system impacts decades into the future

The skills you practice now — reading graphs, finding patterns, and writing evidence-based explanations — are the same skills climate scientists use every day. You are building real scientific thinking.

SECTION 9

Practice Problems

PROBLEM 1 — CONCEPTUAL
Which of the following is the best definition of a nonrenewable resource? A. A resource that can never be used by humans B. A resource that takes millions of years to form and is used faster than it is replaced C. A resource that comes only from the ocean D. A resource that is always harmful to the environment
PROBLEM 2 — BASIC CALCULATION
In 1960, atmospheric CO2 was about 317 ppm. In 2020, it was about 414 ppm. What was the total increase in CO2 over those 60 years? A. 97 ppm B. 731 ppm C. 317 ppm D. 60 ppm
PROBLEM 3 — INTERMEDIATE
A student looks at a graph and notices that global fossil fuel use and ocean acidity both increased between 1950 and 2020. The student claims: "Burning fossil fuels caused the ocean to become more acidic." Which piece of reasoning best supports this claim? A. Fossil fuels are found underground, and the ocean is above ground, so they cannot be connected. B. CO₂ released by burning fossil fuels dissolves into ocean water, forming carbonic acid, which lowers pH. C. The ocean has always been acidic, so fossil fuels do not matter. D. Fossil fuel use went up, so everything else must also go up at the same time.
PROBLEM 4 — APPLIED
A town decides to replace its coal power plant with a solar farm. A citizen argues: "Solar energy has zero impact on Earth's systems." Using what you know about trade-offs, which response best evaluates this claim? A. The citizen is completely correct — solar energy is perfectly harmless. B. Solar panels produce no greenhouse gases during use, but manufacturing panels requires mining minerals and using energy, which do affect Earth systems. The overall impact is much smaller than coal. C. Solar farms are worse than coal because they take up more land. D. Since solar energy comes from the Sun, it cannot affect any part of Earth.
PROBLEM 5 — CRITICAL THINKING
Two students are debating. Student A says: "CO₂ and temperature rose at the same time, so CO₂ must cause warming." Student B says: "Just because two things happen together does not prove one causes the other." Who is making a stronger scientific argument, and what additional evidence would settle the debate? A. Student A is correct; matching graphs always prove cause and effect. B. Student B is correct; matching graphs can never support cause and effect. C. Student B raises a fair point about correlation, but laboratory experiments show CO₂ absorbs infrared radiation, and climate models accurately predict warming based on CO₂ levels. Together, the mechanism and the data pattern strongly support cause and effect. D. Neither student is making a scientific argument because they are not conducting an experiment.
SUMMARY

Lesson Summary

Human resource consumption — especially burning fossil fuels, mining, and deforestation — sends ripple effects through Earth's atmosphere, hydrosphere, geosphere, and biosphere. The greenhouse effect explains why adding CO2 to the atmosphere traps more heat and raises global temperatures. Scientists use evidence like the Keeling Curve, ice cores, and ocean pH data to show these cause-and-effect relationships.

Every resource involves trade-offs between benefits to society and costs to Earth systems. Using a Claim-Evidence-Reasoning (CER) framework, you can construct scientific explanations that connect data (patterns) to mechanisms. By identifying renewable alternatives and understanding nonrenewable limits, you can evaluate solutions that promote stability in Earth's interconnected systems.

Varsity Tutors • Middle School Earth and Space Science (Next Generation Science Standards) • Use evidence to explain how resource consumption affects Earth systems