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  1. Middle School Earth and Space Science
  2. Identify Evidence Related to Changes in Global Temperatures

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

Identify Evidence Related to Changes in Global Temperatures

Discover how ice cores, tree rings, and ocean data reveal Earth's warming story.

SECTION 1

Historical Context & Motivation

Have you ever looked at an old photo and noticed how different a place looks today? Scientists do something similar with Earth's climate. They study clues from the past to understand how global temperatures (the average temperature of Earth's surface) have changed over time. This detective work has been going on for over 150 years.

The anchoring phenomenon for this lesson is a real observation: Earth's average surface temperature has risen about 1.1 °C since the late 1800s. That may sound small, but it is enough to melt glaciers, raise sea levels, and shift weather patterns around the world. How do we know this is happening? What evidence do scientists use?

1856
Eunice Foote's Experiment
American scientist Eunice Newton Foote showed that carbon dioxide (CO2) traps heat from sunlight. This was the first experiment linking CO2 to warming.
1880
Global Temperature Records Begin
Weather stations around the world began recording temperatures in a consistent way. This created the first reliable global temperature dataset.
1958
Keeling Curve Starts
Charles David Keeling began measuring atmospheric CO2 at Mauna Loa, Hawaii. His data showed CO2 levels rising steadily every year.
1988
IPCC Founded
The United Nations created the Intergovernmental Panel on Climate Change (IPCC). This group brings together thousands of scientists to review evidence about climate change.
2023
Hottest Year on Record
Global surface temperature data confirmed 2023 as the warmest year since records began in 1880. Every decade since the 1970s has been warmer than the one before.

The big question scientists keep asking is: What evidence shows that global temperatures are changing, and how far back can we look? In this lesson, you will explore the tools and data sources that answer this question.

SECTION 2

Core Principles & Key Definitions

Before we dive into evidence, let's learn the core ideas you need. Scientists use two main types of evidence to study temperature changes: direct measurements (readings from thermometers and instruments) and proxy data (natural records that store clues about past climates). Together, these give us a picture stretching back hundreds of thousands of years.

1

Direct Temperature Records

Thermometers at weather stations, on ships, and on ocean buoys have measured air and sea surface temperatures since about 1880. Satellites joined in during the 1970s.
2

Proxy Data

Proxy data are indirect clues about past temperatures. Examples include ice cores, tree rings, ocean sediments, and coral growth bands. They record climate conditions from long before thermometers existed.
3

Climate vs. Weather

Weather is what happens in the atmosphere on a given day. Climate is the average pattern of weather in a place over 30 years or more. Global temperature evidence focuses on climate, not single weather events.
4

Temperature Anomaly

A temperature anomaly is how much a temperature differs from a baseline average. Scientists compare each year to a reference period (like 1951–1980) to see if it was warmer or cooler than normal.
5

The Greenhouse Effect

Gases like CO2 and methane (CH4) trap heat in Earth's atmosphere. This natural process keeps Earth warm, but extra greenhouse gases from human activities intensify it.
✦ KEY TAKEAWAY
Think of proxy data like a tree's diary. A tree cannot talk, but its rings record each year's growing conditions. A wide ring means a good, warm year with plenty of rain. A narrow ring means a tough, cold, or dry year. Scientists read these "diary entries" to figure out what the climate was like long ago — even thousands of years before anyone kept weather records.
SECTION 3

Visualizing the Evidence: Global Temperature Trend

The diagram below shows how Earth's average surface temperature anomaly has changed from 1880 to the 2020s. The baseline (zero line) represents the 1951–1980 average temperature. Values above zero mean warmer than the baseline. Values below zero mean cooler.

Global Temperature Anomaly (1880–2020s)0 °C baseline0.0+1.0−0.5Anomaly (°C)Year188019101940197020002023+1.1 °C−0.2 °CCooler than baselineWarmer than baseline
This graph shows the global temperature anomaly from 1880 to 2023. Notice the sharp upward trend starting around 1970. The red dot marks 2023 at about +1.1 °C above the 1951–1980 baseline.

Look at the shape of the line. From 1880 to about 1940, temperatures stayed fairly close to the baseline. After 1940, the line trends upward. After 1970, the rise becomes much steeper. This pattern is an important piece of evidence. It matches the time period when humans greatly increased the burning of fossil fuels (coal, oil, and natural gas), which releases CO2 into the atmosphere.

🔗 NGSS Connection: Crosscutting Concept
Stability and Change — Earth's climate was relatively stable for thousands of years. The recent rapid temperature increase shows a shift from stability to change. Scientists analyze data patterns to determine what caused this shift.
SECTION 4

How Evidence Is Collected: Tools & Methods

Scientists gather temperature evidence from many different sources. Each source covers a different time range and uses a different method. Let's explore how the main tools work.

Thermometer Records (1880–Present)

Weather stations on land and ships at sea have recorded temperature readings for over 140 years. Today, ocean buoys and satellites add millions of data points. Scientists average all these readings to calculate a single global mean surface temperature for each year. This is the most direct form of evidence.

Ice Cores (up to 800,000 years ago)

In Antarctica and Greenland, snow piles up layer by layer every year. Over time, it compresses into thick ice sheets. Scientists drill long cylinders of ice called ice cores. Tiny air bubbles trapped in the ice hold samples of ancient atmosphere. By analyzing these bubbles, scientists measure past CO2 levels. The ratio of special oxygen atoms (called isotopes) in the ice tells them how warm or cold it was when the snow fell.

Tree Rings (up to 12,000 years ago)

Trees grow one ring each year. Wide rings mean warm, wet growing seasons. Narrow rings mean cold or dry years. The study of tree rings is called dendrochronology (DEN-dro-kro-NOL-oh-jee). By overlapping ring patterns from many old trees, scientists build temperature records stretching back thousands of years.

Ocean Sediments & Coral (up to millions of years)

Tiny sea creatures called foraminifera (for-am-in-IF-er-ah) build shells from ocean minerals. When they die, their shells sink and form layers on the ocean floor. The chemistry of those shells reveals ocean temperature at the time. Coral reefs grow in layers too. Scientists read coral bands much like tree rings to learn about past ocean conditions.

🔬 SEP Spotlight: Analyzing & Interpreting Data
When scientists study ice cores or tree rings, they are analyzing and interpreting data. They look for patterns across many samples and compare different data sources to see if they tell the same story. When multiple sources agree, the evidence is stronger.
SECTION 5

Comparing Evidence Sources

Each type of evidence covers a different time span and provides a different level of detail. The diagram below compares the main evidence sources side by side, showing how far back each one reaches and what it measures.

Evidence Sources: Time Range ComparisonSourceTime Range BarReach🌡️ Thermometers140 yrs~1880–now🛰️ Satellites50 yrs~1970s–now🌳 Tree Rings~12,000 yrs~12,000 yrs🪸 Coral Bands~100,000 yrs~100,000 yrs🧊 Ice Cores~800,000 yrs~800,000 yrs🐚 Ocean SedimentsMillions of yrsMillions yrs← Shorter time range | Longer time range →
This chart compares six major evidence sources. Thermometers cover the shortest time (about 140 years), while ocean sediments reach back millions of years. Longer bars mean the source gives us a deeper look into the past.
Summary of major evidence sources and what they record
Evidence SourceWhat It MeasuresType of Data
Thermometer recordsAir and sea surface temperatureDirect measurement
Satellite sensorsAtmosphere and surface temperatureDirect measurement
Tree ringsGrowing season temperature and moistureProxy data
Ice coresAtmospheric CO₂ and temperature (via oxygen isotopes)Proxy data
Coral bandsOcean temperature and chemistryProxy data
Ocean sediment shellsDeep ocean temperature (via isotopes in shells)Proxy data
SECTION 6

Worked Example: Reading Temperature Anomaly Data

Let's practice reading real temperature anomaly data. Imagine you have the following data table showing five years of temperature anomalies compared to the 1951–1980 baseline.

Sample temperature anomaly data (baseline: 1951–1980 average)
YearTemperature Anomaly (°C)
1920−0.27
1960+0.03
1980+0.26
2000+0.39
2020+1.02

How much did the anomaly change from 1920 to 2020?

Step 1 — Identify the two values

The anomaly in 1920 was −0.27 °C. The anomaly in 2020 was +1.02 °C.

Step 2 — Calculate the change

To find the change, subtract the earlier value from the later value. Change = (+1.02) − (−0.27). Remember, subtracting a negative is the same as adding a positive.

Step 3 — Solve

Change = 1.02 + 0.27 = 1.29 °C.
The temperature anomaly increased by 1.29 °C over 100 years.

Step 4 — Interpret the result

A rise of 1.29 °C in 100 years means the planet warmed significantly. Most of this warming happened in the last 40 years of that period. Look at the jump from 2000 (+0.39) to 2020 (+1.02). That is +0.63 °C in just 20 years!
The rate of warming is accelerating.
📊 WHAT THIS MEANS
Reading data tables and calculating changes is a key skill in science. Temperature anomaly data lets you compare different time periods using a common baseline. It's like comparing test scores to the class average — a score 10 points above average is always 10 points above, no matter what the average is.
SECTION 7

Strengths and Limitations of Evidence Sources

No single evidence source is perfect. Each has strengths and limitations. Scientists build the strongest case by combining multiple sources and seeing if they agree. This practice is called corroboration (using different lines of evidence to support the same conclusion).

Strengths and limitations of major temperature evidence sources
Evidence SourceStrengthsLimitations
Thermometer recordsVery precise, covers the entire globe today, updated in real timeOnly goes back about 140 years; early records have gaps in some regions
SatellitesCovers oceans and remote areas; very consistent measurementsOnly available since the 1970s; instruments need regular calibration
Ice coresReaches back 800,000 years; captures both temperature and CO₂ dataOnly found in polar regions; each layer averages many years of snowfall
Tree ringsYear-by-year detail; available on many continentsOnly records growing season; limited to areas where trees grow; goes back ~12,000 years
Ocean sedimentsReaches back millions of years; covers ocean conditionsLow time resolution (each sample may average thousands of years); requires deep-sea drilling
✦ KEY TAKEAWAY
Think of it like solving a mystery with multiple witnesses. If five people saw the same event and they all tell similar stories, you can be more confident about what happened. In climate science, when ice cores, tree rings, coral, and thermometer records all show warming, the evidence is very strong.
SECTION 8

Connecting to the Bigger Picture

Understanding evidence of global temperature change connects to bigger topics you will study in high school and beyond. In this section, we compare middle-school-level understanding with more advanced ideas.

How this lesson connects to future learning
What You Learn NowWhat Comes Next
Identify types of evidence (ice cores, tree rings, thermometers)Evaluate the reliability and uncertainty of each evidence source using statistics
Read temperature anomaly graphs and calculate simple changesUse computer climate models to project future temperature scenarios
Understand the greenhouse effect as a cause of warmingStudy feedback loops (like melting ice reducing Earth's reflectivity, causing more warming)
Know that human activity increases CO₂Analyze carbon cycle data and propose engineering solutions to reduce emissions

The crosscutting concept of Cause and Effect runs through all of this. Right now, you are learning to identify the evidence. In later courses, you will use that evidence to build detailed cause-and-effect explanations. You will also evaluate solutions to reduce global warming, such as renewable energy and carbon capture technology.

🚀 Looking Ahead
In high school, you will study the NGSS standard HS-ESS3-5, which asks you to analyze geoscience data and the results from global climate models to make an evidence-based forecast of the current rate of global or regional climate change. The skills you build now — reading data, comparing evidence sources, and recognizing patterns — are the foundation for that work.
SECTION 9

Practice Problems

PROBLEM 1 — CONCEPTUAL
Which of the following is an example of proxy data used to study past global temperatures? A) A thermometer reading from a weather station in 2024 B) An ice core sample from Antarctica C) A satellite image of cloud cover taken last week D) A barometer reading of air pressure
PROBLEM 2 — BASIC CALCULATION
A scientist reports that the temperature anomaly in 1950 was −0.15 °C and in 2010 it was +0.72 °C (both compared to the 1951–1980 baseline). What is the total change in anomaly from 1950 to 2010? A) 0.57 °C B) 0.72 °C C) 0.87 °C D) 1.02 °C
PROBLEM 3 — INTERMEDIATE
A researcher wants to know what Earth's temperature was like 500,000 years ago. Which evidence source would be MOST useful? A) Tree ring records from ancient forests B) Thermometer records from weather stations C) Ice core samples from Antarctica D) Satellite temperature data
PROBLEM 4 — APPLIED
A city council is debating whether to invest in flood protection. A scientist presents a graph showing that local sea levels have risen 20 cm over the past 100 years and global temperatures have risen about 1 °C in the same period. A council member says, "One hot summer doesn't prove anything." Which response best uses the concepts from this lesson? A) "You're right — we should wait for more hot summers before acting." B) "This graph shows climate trends over 100 years, not a single weather event. Multiple evidence sources confirm global warming is causing sea level rise." C) "Weather and climate are the same thing, so one hot summer does prove global warming." D) "Temperature data is unreliable because thermometers weren't very accurate 100 years ago."
PROBLEM 5 — CRITICAL THINKING
Scientists studying ice cores find that CO₂ levels and temperature have risen and fallen together over the past 800,000 years. During ice ages, CO₂ was about 180 parts per million (ppm). During warm periods, CO₂ was about 280 ppm. Today, CO₂ is over 420 ppm. What can you conclude from this pattern? A) CO₂ and temperature are unrelated because they change at different rates today. B) The current CO₂ level is within the normal range, so there is nothing unusual happening. C) The strong correlation between CO₂ and temperature in the past, combined with today's CO₂ level being far above the historical range, suggests that current warming is linked to the unusually high CO₂. D) Ice core data is too old to be useful for understanding today's climate.
SUMMARY

Lesson Summary

Scientists use multiple types of evidence to study changes in global temperatures. Direct measurements from thermometers and satellites cover about the past 140 years. Proxy data from ice cores, tree rings, coral bands, and ocean sediments extend the record back hundreds of thousands to millions of years. Each source has strengths and limitations, but when they all point to the same conclusion, the evidence is powerful.

The data shows that Earth's average surface temperature has risen about 1.1 °C since the late 1800s, with the sharpest warming after 1970. A temperature anomaly compares each year to a baseline average, making trends easy to spot. Understanding the difference between weather (short-term) and climate (long-term patterns) is essential. The crosscutting concepts of Patterns, Cause and Effect, and Stability and Change help us make sense of the evidence and prepare for deeper study in future courses.

Varsity Tutors • Middle School Earth and Space Science (Next Generation Science Standards) • Identify Evidence Related to Changes in Global Temperatures