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Reference Tables

Every chart, map, and table from the Reference Tables for Earth and Space Sciences, in one place. Browse the gallery, open any table to zoom, print, or download it, then scroll down for the skills that show you how to use each one on the exam.

Which booklet? Use the Reference Tables for Earth and Space Sciences. The 2026 Revised Edition is used in classrooms from the 2026-27 school year, and the January 2027 exam is the first to use it. Page numbers on this page refer to that edition. If you have an older Physical Setting/Earth Science booklet, set it aside: several tables it contained, including the equations page, are not in the new one.
Not in the tables

The formulas you now have to know

Start here, because this is the biggest change. The older Earth Science tables opened with an equations page. The Reference Tables for Earth and Space Sciences do not. These formulas are still fair game on the exam, so they have to live in your head.

gradient = change in field value ÷ distance density = mass ÷ volume rate of change = change in value ÷ time eccentricity = distance between foci ÷ length of major axis percent deviation = (difference from accepted ÷ accepted) × 100

Elevation drops from 800 m to 500 m over 6 km. Find the gradient.

Change = 800 − 500 = 300 m. Distance = 6 km. Gradient = 300 ÷ 6 = 50 m/km.

An ellipse has foci 3 cm apart and a major axis of 10 cm. Find its eccentricity.

3 ÷ 10 = 0.3. Compare that with the Solar System Objects Data Table on page 2: Earth is 0.017, nearly a circle, and Mercury is 0.206.

Practice these in the gradient lab, the density lab, and the eccentricity lab.

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Page 2 · Solar System Objects Data Table

Reading the solar system table

One table holds distance from the sun, period of revolution, period of rotation, orbital eccentricity, diameter, and axial tilt for every major body. Most solar system questions are lookups plus one comparison.

How to use it

  1. Find the row for the object.
  2. Read straight across to the column the question asks about.
  3. For a comparison, read two rows and subtract or divide.

Which planet has the most elliptical orbit, and how does Earth compare?

Read the eccentricity column. Among the planets, Mercury is highest at 0.206; Earth is 0.017, so Earth’s orbit is far closer to a circle. (Pluto, no longer counted as a planet, is higher still at 0.244.)

The Gravity and the Solar System chapter works from this table.

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Pages 4 and 5 · H-R Diagram, Life Cycles of Stars

The H-R Diagram and how stars end

The H-R Diagram plots luminosity against surface temperature and sorts stars into families. Beside it is a key giving the temperature range of each spectral class, and page 5 models how stars of different masses live and die.

What to notice

A star is red and far more luminous than the sun. Which family is it in?

Red means cool, so it sits to the right. High luminosity puts it well above the main sequence. That corner is the giants and supergiants, like Betelgeuse.

See it in the star color lab in Stars and the Universe.

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Pages 6 and 7 · Geologic History of New York State

The geologic time scale

This two-page spread is the busiest in the booklet and the most rewarding. It carries the eras, periods, and epochs with their dates, the events in New York, index fossils and their time ranges, and small maps showing where Earth’s landmasses sat.

How to work it

  1. Find the time column first and locate the age or period in question.
  2. Read across for life on Earth, New York events, and the rock record.
  3. For a fossil question, find the fossil letter in the time distribution band and read the range it spans.

Eurypterids are abundant in New York rock of which period?

Follow the eurypterid band to where it is thickest and read the period column: the Silurian. Eurypterus remipes is the New York State fossil.

The Geologic History chapter builds on this spread.

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Pages 8, 9, and 10 · New York State maps

The three New York maps

Three maps in a row do most of the New York work on the exam, and they are meant to be read together.

A site has high elevation but flat-lying, undistorted bedrock. Which region type is it?

High plus horizontal bedrock means a plateau. On page 10 that is the Allegheny Plateau and the Catskills, which is why they are not called mountains.

The New York regions section in Landscapes walks all three maps.

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Page 11 · Earth’s interior

The interior model and cross section

Page 11 carries two models side by side: a layered model of Earth’s interior with depths and densities, and a cross section showing how that interior drives the surface.

Numbers worth knowing off this page

Why does oceanic crust subduct beneath continental crust?

Compare the densities on the page: oceanic is near 3.0 g/cm³, continental is 2.7 to 2.9. The denser oceanic plate sinks.

Explore it in the Earth interior visualization.

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Page 12 · Radiometric dating and hot spots

Half-life problems

The radiometric dating table lists each parent isotope, its daughter product, its half-life, and what it can date. Below it, a world map marks selected hot spots.

after each half-life, half the remaining parent decays

Half-lives to recognize

A bone contains one quarter of its original carbon-14. How old is it?

One quarter left means two half-lives have passed. 2 × 5730 = 11,460 years.

Why can carbon-14 not date a dinosaur bone?

Its useful range stops near 70,000 years, and dinosaurs died out 66 million years ago. You would need a slow clock like uranium-238.

Try the half-life lab, and see hot spots in Volcanoes.

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Page 13 · Global Tectonic Activity

Reading the plate map

This world map shows plate boundaries, their type, the direction plates move, and spreading rates in centimeters per year.

How to read it

  1. Find the location and identify the nearest boundary.
  2. Read the key to classify it: divergent, convergent, or transform.
  3. At a convergent boundary, the symbol shows which plate overrides and which subducts.
  4. Numbers along divergent boundaries give the total spreading rate.

Which boundary type runs down the middle of the Atlantic, and what forms there?

The Mid-Atlantic Ridge is divergent. Plates separate and new basaltic ocean floor forms, which is why Iceland sits on it.

Classify boundaries yourself in the boundary explorer.

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Pages 14 and 15 · Igneous rocks and the rock cycle

Igneous composition and the rock cycle

Page 14 pairs Bowen’s Reaction Series with the Mineral Composition of Igneous Rocks chart. Page 15 is a single large Rock Cycle Infographic that names rocks from all three families and shows where each forms.

The igneous chart

Bowen’s Reaction Series

Minerals crystallize in order as magma cools, from olivine near 1400°C down to quartz near 650°C. The first minerals to crystallize are also the first to weather at the surface.

A rock is coarse-grained, light colored, and low in density. Name it.

Coarse grains mean it cooled slowly underground, so it is intrusive. Light and low density means felsic. That is granite.

Sort rocks in Rock Families and follow a path in the rock cycle journey.

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Pages 16 and 17 · Mineral Identification Flowchart

Following the mineral flowchart

This replaces the old properties chart, and it works differently: it is a decision tree you walk from the top, not a table you scan.

The path

  1. Start with luster: metallic or nonmetallic.
  2. Then hardness, using the Mohs scale printed on page 16: harder or softer than glass (5.5).
  3. Then cleavage: how many directions, and at what angles.
  4. Then the final clue: streak color, a reaction with acid, a soapy feel, magnetism, or taste.

A nonmetallic mineral is softer than glass, has cleavage in three directions not at 90°, and fizzes in acid. Name it.

Follow the branches: nonmetallic, softer than glass, three directions not at right angles, reacts with acid. That is calcite.

Which common mineral is harder than glass, has no cleavage, and shows conchoidal fracture?

Quartz, hardness 7.

Practice in the mineral ID lab.

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Page 18 · Key to Weather Map Symbols

Decoding a station model

Page 18 decodes everything on a weather map: the station model, wind speed and direction, sky cover, weather symbols, fronts, and pressure coding.

The two tricks worth drilling

A station model shows 103. What is the pressure?

Decimal before the last digit gives 10.3. Adding 9 gives 909.3, too low to be realistic. Adding 10 gives 1010.3 mb.

Decode real ones in the station model decoder.

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Pages 19 and 20 · Wind belts, atmosphere, ocean currents

Planetary circulation

The last three models explain why climates sit where they do. Page 19 has the planetary wind belts and a cross section of the lower atmosphere; page 20 maps the surface ocean currents.

What to take from them

Why do the world’s major deserts cluster near 30° north and south?

The wind belt model shows air descending at those latitudes. Sinking air warms and dries, so little rain falls.

Test the factors in the climate lab.

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