Difference between revisions of "HS-ESS2-4"
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| Level1 = Use a model/information to identify an energy flow into or out of an Earth system that results in a change in the climate. | | Level1 = Use a model/information to identify an energy flow into or out of an Earth system that results in a change in the climate. | ||
}} | }} | ||
| + | |||
| + | == Vocabulary == | ||
| + | Terms from the [[Earth & Space Science Glossary]] that come from this standard or from the released exam questions that assess it. | ||
| + | |||
| + | <div class="vocab-subhead">From this standard</div> | ||
| + | <div class="vocab-list" style="column-width:14em;"> | ||
| + | * absorption | ||
| + | * argument | ||
| + | * atmosphere | ||
| + | * atmospheric composition | ||
| + | * axis of rotation | ||
| + | * biosphere | ||
| + | * carbon dioxide concentrations | ||
| + | * climate change | ||
| + | * climate factors | ||
| + | * climate system | ||
| + | * cyclical changes | ||
| + | * Earth | ||
| + | * Earth materials | ||
| + | * Earth’s orbit | ||
| + | * Earth’s systems | ||
| + | * electromagnetic radiation | ||
| + | * energy flow | ||
| + | * flow of energy | ||
| + | * geological record | ||
| + | * glacial ice volumes | ||
| + | * glaciers | ||
| + | * human activity | ||
| + | * ice ages | ||
| + | * intensity and distribution of sunlight | ||
| + | * model | ||
| + | * ocean | ||
| + | * ocean circulation | ||
| + | * orientation of its axis | ||
| + | * plate tectonic movement | ||
| + | * precipitation patterns | ||
| + | * radiation | ||
| + | * reflection | ||
| + | * sea level | ||
| + | * shape of Earth’s orbit | ||
| + | * solar output | ||
| + | * solar system | ||
| + | * surface temperature | ||
| + | * tectonic events | ||
| + | * timescale | ||
| + | * volcanic activity | ||
| + | * volcanic ash clouds | ||
| + | </div> | ||
| + | |||
| + | <div class="vocab-subhead">From released exam questions</div> | ||
| + | <div class="vocab-list" style="column-width:20em;"> | ||
| + | * [[Questions:Greenland's Glacial Ice#q4|albedo effect]] – Jan 2026 | ||
| + | * [[Questions:ESS Earth's Climate#q1|atmospheric pressure]] – Sample 2024 | ||
| + | * [[Questions:Carbon Emissions in Industry#q1|bedrock]] – Aug 2026 | ||
| + | * [[Questions:Carbon Emissions in Industry#q1|carbon]] – Aug 2026 | ||
| + | * [[Questions:Carbon Emissions in Industry#q1|carbon dioxide]] – Aug 2026, [[Questions:Atmospheric Carbon Dioxide#q1|Aug 2025]], [[Questions:ESS Earth's Climate#q2|Sample 2024]] | ||
| + | * [[Questions:Carbon Emissions in Industry#q1|carbon emissions]] – Aug 2026 | ||
| + | * [[Questions:Modeling Earth Systems to Understand Climate Change#q2|circulation patterns]] – June 2025 | ||
| + | * [[Questions:ESS Earth's Climate#q1|climate feedback]] – Sample 2024 | ||
| + | * [[Questions:Modeling Earth Systems to Understand Climate Change#q2|density]] – June 2025 | ||
| + | * [[Questions:Greenland's Glacial Ice#q4|Earth’s surface]] – Jan 2026, [[Questions:Modeling Earth Systems to Understand Climate Change#q2|June 2025]] | ||
| + | * [[Questions:Carbon Emissions in Industry#q1|emissions]] – Aug 2026, [[Questions:Atmospheric Carbon Dioxide#q1|Aug 2025]] | ||
| + | * [[Questions:ESS Earth's Climate#q1|feedback]] – Sample 2024 | ||
| + | * [[Questions:Carbon Emissions in Industry#q1|fossil fuels]] – Aug 2026 | ||
| + | * [[Questions:Modeling Earth Systems to Understand Climate Change#q2|fresh water]] – June 2025 | ||
| + | * [[Questions:Carbon Emissions in Industry#q1|global temperatures]] – Aug 2026 | ||
| + | * [[Questions:Atmospheric Carbon Dioxide#q1|greenhouse gases]] – Aug 2025, [[Questions:ESS Earth's Climate#q2|Sample 2024]] | ||
| + | * [[Questions:Earth’s Oceans–A Climate Change Indicator#q4|heat wave]] – Aug 2026 | ||
| + | * [[Questions:Greenland's Glacial Ice#q4|ice]] – Jan 2026, [[Questions:Modeling Earth Systems to Understand Climate Change#q1|June 2025]], [[Questions:ESS Earth's Climate#q1|Sample 2024]] | ||
| + | * [[Questions:Greenland's Glacial Ice#q4|ice sheet]] – Jan 2026 | ||
| + | * [[Questions:Carbon Emissions in Industry#q1|kiln]] – Aug 2026 | ||
| + | * [[Questions:ESS Earth's Climate#q2|methane]] – Sample 2024 | ||
| + | * [[Questions:Modeling Earth Systems to Understand Climate Change#q1|motion]] – June 2025 | ||
| + | * [[Questions:Modeling Earth Systems to Understand Climate Change#q1|Northern Hemisphere]] – June 2025 | ||
| + | * [[Questions:Modeling Earth Systems to Understand Climate Change#q1|obliquity]] – June 2025 | ||
| + | * [[Questions:Modeling Earth Systems to Understand Climate Change#q1|ocean currents]] – June 2025 | ||
| + | * [[Questions:ESS Earth's Climate#q2|permafrost]] – Sample 2024 | ||
| + | * [[Questions:Carbon Emissions in Industry#q1|quarry]] – Aug 2026 | ||
| + | * [[Questions:Greenland's Glacial Ice#q4|sea ice]] – Jan 2026, [[Questions:ESS Earth's Climate#q1|Sample 2024]] | ||
| + | * [[Questions:ESS Earth's Climate#q2|snow cover]] – Sample 2024 | ||
| + | * [[Questions:Carbon Emissions in Industry#q1|soil]] – Aug 2026, [[Questions:Greenland's Glacial Ice#q4|Jan 2026]], [[Questions:ESS Earth's Climate#q2|Sample 2024]] | ||
| + | * [[Questions:Hunga Tonga-Hunga Ha’pai Volcano#q2|stratosphere]] – Aug 2026 | ||
| + | * [[Questions:Atmospheric Carbon Dioxide#q1|temperature anomaly]] – Aug 2025 | ||
| + | * [[Questions:Hunga Tonga-Hunga Ha’pai Volcano#q2|troposphere]] – Aug 2026 | ||
| + | * [[Questions:Hunga Tonga-Hunga Ha’pai Volcano#q2|water vapor]] – Aug 2026, [[Questions:ESS Earth's Climate#q2|Sample 2024]] | ||
| + | * [[Questions:ESS Earth's Climate#q2|wetlands]] – Sample 2024 | ||
| + | * [[Questions:Earth’s Oceans–A Climate Change Indicator#q4|wildfire]] – Aug 2026 | ||
| + | </div> | ||
| + | |||
| + | <div class="vocab-subhead">Implied by this standard</div> | ||
| + | <div class="vocab-list"> | ||
| + | * energy balance (Earth's energy budget) – implied by "Use a model to describe how variations in the flow of energy into and out of Earth's systems result in changes in climate." | ||
| + | * Milankovitch cycles – implied by "Cyclical changes in the shape of Earth's orbit around the sun, together with changes in the tilt of the planet's axis of rotation, both occurring over hundreds of thousands of years, have altered the intensity and distribution of sunlight falling on the earth. These phenomena cause a cycle of ice ages" | ||
| + | * thermohaline circulation – implied by "ocean circulation" | ||
| + | </div> | ||
== {{Dimensionsheading}} == | == {{Dimensionsheading}} == | ||
Latest revision as of 19:17, 27 September 2026
Use a model to describe how variations in the flow of energy into and out of Earth’s systems result in changes in climate.
Clarification statement: Examples of the causes of climate change differ by timescale, over 1-10 years: large volcanic eruption, ocean circulation; 10-100s of years: changes in human activity, ocean circulation, solar output; 10-100s of thousands of years: changes to Earth's orbit and the orientation of its axis; and 10-100s of millions of years: long-term changes in atmospheric composition and plate tectonic movement.
Assessment boundary: Assessment of the results of changes in climate is limited to changes in surface temperatures, precipitation patterns, glacial ice volumes, sea levels, and biosphere distribution.
Reference Tables
Relevant reference tables:
Assessment
What assessment of HS-ESS2-4 might look like on a NY state exam.
Performance Level Descriptions
PLDs communicate the knowledge and skills expected of students to demonstrate proficiency in each Learning Standard. NYS assessments classify student performance into one of five levels.
Vocabulary
Terms from the Earth & Space Science Glossary that come from this standard or from the released exam questions that assess it.
- absorption
- argument
- atmosphere
- atmospheric composition
- axis of rotation
- biosphere
- carbon dioxide concentrations
- climate change
- climate factors
- climate system
- cyclical changes
- Earth
- Earth materials
- Earth’s orbit
- Earth’s systems
- electromagnetic radiation
- energy flow
- flow of energy
- geological record
- glacial ice volumes
- glaciers
- human activity
- ice ages
- intensity and distribution of sunlight
- model
- ocean
- ocean circulation
- orientation of its axis
- plate tectonic movement
- precipitation patterns
- radiation
- reflection
- sea level
- shape of Earth’s orbit
- solar output
- solar system
- surface temperature
- tectonic events
- timescale
- volcanic activity
- volcanic ash clouds
- albedo effect – Jan 2026
- atmospheric pressure – Sample 2024
- bedrock – Aug 2026
- carbon – Aug 2026
- carbon dioxide – Aug 2026, Aug 2025, Sample 2024
- carbon emissions – Aug 2026
- circulation patterns – June 2025
- climate feedback – Sample 2024
- density – June 2025
- Earth’s surface – Jan 2026, June 2025
- emissions – Aug 2026, Aug 2025
- feedback – Sample 2024
- fossil fuels – Aug 2026
- fresh water – June 2025
- global temperatures – Aug 2026
- greenhouse gases – Aug 2025, Sample 2024
- heat wave – Aug 2026
- ice – Jan 2026, June 2025, Sample 2024
- ice sheet – Jan 2026
- kiln – Aug 2026
- methane – Sample 2024
- motion – June 2025
- Northern Hemisphere – June 2025
- obliquity – June 2025
- ocean currents – June 2025
- permafrost – Sample 2024
- quarry – Aug 2026
- sea ice – Jan 2026, Sample 2024
- snow cover – Sample 2024
- soil – Aug 2026, Jan 2026, Sample 2024
- stratosphere – Aug 2026
- temperature anomaly – Aug 2025
- troposphere – Aug 2026
- water vapor – Aug 2026, Sample 2024
- wetlands – Sample 2024
- wildfire – Aug 2026
- energy balance (Earth's energy budget) – implied by "Use a model to describe how variations in the flow of energy into and out of Earth's systems result in changes in climate."
- Milankovitch cycles – implied by "Cyclical changes in the shape of Earth's orbit around the sun, together with changes in the tilt of the planet's axis of rotation, both occurring over hundreds of thousands of years, have altered the intensity and distribution of sunlight falling on the earth. These phenomena cause a cycle of ice ages"
- thermohaline circulation – implied by "ocean circulation"
NGSS Dimensions
Performance expectation HS-ESS2-4 was developed using the following elements from the NRC document A Framework for K-12 Science Education:
- Developing and using models: Use a model to provide mechanistic accounts of phenomena.
- Scientific knowledge is based on empirical evidence: Science arguments are strengthened by multiple lines of evidence supporting a single explanation.
- Earth and the solar system: Cyclical changes in the shape of Earth’s orbit around the sun, together with changes in the tilt of the planet’s axis of rotation, both occurring over hundreds of thousands of years, have altered the intensity and distribution of sunlight falling on the earth. These phenomena cause a cycle of ice ages and other gradual climate changes.
- Earth materials and systems: The geological record shows that changes to global and regional climate can be caused by interactions among changes in the sun’s energy output or Earth’s orbit, tectonic events, ocean circulation, volcanic activity, glaciers, vegetation, and human activities. These changes can occur on a variety of time scales from sudden (e.g., volcanic ash clouds) to intermediate (ice ages) to very long-term tectonic cycles.
- Weather and climate: The foundation for Earth’s global climate systems is the electromagnetic radiation from the sun, as well as its reflection, absorption, storage, and redistribution among the atmosphere, ocean, and land systems, and this energy’s re-radiation into space.
- Weather and climate: Changes in the atmosphere due to human activity have increased carbon dioxide concentrations and thus affect climate.
- Cause and effect: Empirical evidence is required to differentiate between cause and correlation and make claims about specific causes and effects.