Volcano in the lab: a wax volcano in action: teacher s notes



Similar documents
Volcanoes Erupt Grade 6

The rock cycle. Introduction. What are rocks?

FOURTH GRADE PLATE TECTONICS 1 WEEK LESSON PLANS AND ACTIVITIES

FIRST GRADE VOLCANOES 1 WEEK LESSON PLANS AND ACTIVITIES

Earth Science Grade 4 Minerals

TECTONICS ASSESSMENT

Rocks and Minerals What is right under your feet?

Rapid Changes in Earth s Surface

Unit Study Guide: Rocks, Minerals, and the Rock Cycle

What are Rocks??? Rocks are the most common material on Earth. They are a naturally occurring collection of one or more minerals.

Viscosity experiments: physical controls and implications for volcanic hazards. Ben Edwards Dept of Geology, Dickinson College

How can you tell rocks apart?

SECOND GRADE PLATE TECTONICS 1 WEEK LESSON PLANS AND ACTIVITIES

Ride the Rock Cycle. Suggested Goals: Students will gain an understanding of how a rock can move through the different stages of the rock cycle.

What is a rock? How are rocks classified? What does the texture of a rock reveal about how it was formed?

Georgia Performance Standards Framework for Science Grade 6. Unit Organizer: Geology: Inside the Earth (Approximate Time: 7 Weeks)

BOWEN'S REACTION SERIES

Chapter 3 Student Reading

Exploring Our World with GIS Lesson Plans Engage

Chapter 1 Student Reading

Inside Earth Chapter 3

Earth Materials: Intro to rocks & Igneous rocks. The three major categories of rocks Fig 3.1 Understanding Earth

Lesson 5: The Rock Cycle: Making the Connection

6.E.2.2 Plate Tectonics, Earthquakes and Volcanoes

Rocks and Plate Tectonics

Unit 4: The Rock Cycle

1. You are about to begin a unit on geology. Can anyone tell me what geology is? The study of the physical earth I.

Georgia Performance Standards Framework for Shaky Ground 6 th Grade

Rocks & Minerals. 10. Which rock type is most likely to be monomineralic? 1) rock salt 3) basalt 2) rhyolite 4) conglomerate

Lesson 3: The Big Rock Lesson: Introduction to Rocks. Scientific Process(es) Addressed: Observing, communicating, inferring and defining operationally

Lesson 13: Plate Tectonics I

CHAPTER 6 THE TERRESTRIAL PLANETS

Viscosity and Volcano Types

Tectonic plates have different boundaries.

II. Earth Science (Geology) Section (9/18/2013)

Name: Rocks & Minerals 1 Mark Place,

Lecture 23: Terrestrial Worlds in Comparison. This lecture compares and contrasts the properties and evolution of the 5 main terrestrial bodies.

Igneous Rocks. Geology 200 Geology for Environmental Scientists

Rock Cycle Part I Student Guide

1 Exploring Earth s Interior

ES 104: Laboratory # 7 IGNEOUS ROCKS

TEACHER BACKGROUND INFORMATION THERMAL ENERGY

[Geology Layers of the Earth] [Basic: Grade 2-3] [Advanced: Grade 5: Introduction to Plate Tectonics}

4. Plate Tectonics II (p )

Desalination of Sea Water E7-1

EXPLORATION AND DISCOVERY IN PLANETARY SCIENCE

Unit 6 Earthquakes and Volcanoes

Section 1 The Earth System

Earth Science Landforms, Weathering, and Erosion Reading Comprehension. Landforms, Weathering, and Erosion

Ch6&7 Test. Multiple Choice Identify the choice that best completes the statement or answers the question.

Earth Egg Model Teacher Notes

Remember the best arguments are based on the strongest evidence and can explain why opposing arguments are incorrect.

Rocks & Minerals 1 Mark Place,

1. Michigan Geological History Presentation (Michigan Natural Resources)

SEPARATION OF A MIXTURE OF SUBSTANCES LAB

Topic Page Contents Page

SUGGESTED ACTIVITIES

Ocean in Motion 2: What Causes Ocean Currents and How Do We Measure Them?

Percentage of Water in Popcorn

Georgia Performance Standards Framework for Natural Disasters 6 th Grade

ES Chapter 10 Review. Name: Class: Date: Multiple Choice Identify the choice that best completes the statement or answers the question.

Test Bank - Chapter 3 Multiple Choice

TYPES OF ROCKS & THE ROCK CYCLE

Igneous rocks formed when hot molten material (magma) cools and hardens (crystallizes).

SECOND GRADE VOLCANOES 1 WEEK LESSON PLANS AND ACTIVITIES

Some Processes that Change the Earth s Surface

Igneous Geochemistry. What is magma? What is polymerization? Average compositions (% by weight) and liquidus temperatures of different magmas

KINDERGARTEN PLATE TECTONICS 1 WEEK LESSON PLANS AND ACTIVITIES

Students explore the mechanism behind plate motion as they investigate convection currents. KEY CONCEPTS AND PROCESS SKILLS

Multiple Choice For questions 1-10, circle only one answer.

Exploring How Rocks Are Formed

Layers of the Earth s Interior

INTRODUCTION. This project is about volcanoes and how they form and how they function. It will also show you the different aspects of a volcano.

Learning outcomes. Students will be able to:

Radiometric Dating. Dating Methods for Igneous Rocks

How Did These Ocean Features and Continental Margins Form?

Mixtures. reflect. How is seawater different from pure water? How is it different from rocky soil?

Experiment 1: Colligative Properties

Introduction and Origin of the Earth

Essential Standards: Grade 4 Science Unpacked Content

1. The Determination of Boiling Point

1. The diagram below shows a cross section of sedimentary rock layers.

Layers of the Earth and Plate Tectonics

Melting ice Student sheet

KINDERGARTEN WATER 1 WEEK LESSON PLANS AND ACTIVITIES

The most common active ingredient used in deodorants is aluminium chlorohydrate. But not all deodorants contain aluminium chlorohydrate:

Processes Within an Ecosystem

SOLUBILITY OF A SALT IN WATER AT VARIOUS TEMPERATURES LAB

In this experiment, we will use three properties to identify a liquid substance: solubility, density and boiling point..

Humidity the story for teachers

FIRST GRADE ROCKS 2 WEEKS LESSON PLANS AND ACTIVITIES

The Earth System. The geosphere is the solid Earth that includes the continental and oceanic crust as well as the various layers of Earth s interior.

Hands-On Labs SM-1 Lab Manual

FOURTH GRADE EARTHQUAKES 1 WEEK LESSON PLANS AND ACTIVITIES

Plate Tectonics Lab. Continental Drift. The Birth of Plate Tectonics

6 th Grade Science Assessment: Weather & Water Select the best answer on the answer sheet. Please do not make any marks on this test.

FOURTH GRADE VOLCANOES 1 WEEK LESSON PLANS AND ACTIVITIES

What Is Heat? What Is Heat?

Investigation 6: What happens when plates collide?

Conservation of Momentum Greg Kifer

Transcription:

Volcano in the lab: a wax volcano in action: teacher s notes Level This activity is designed for students aged 11-14, as a simple demonstration of igneous activity. English National Curriculum reference 3.3.2f. ACCAC (Wales) reference 3.3.2.6 It can also be used with students aged 14-16 when discussing of the structure of the Earth and the physical properties of its layers. English National Curriculum reference 4.3.2r Welsh National Curriculum reference 4.3.2.25 AQA modular (3468) reference 15.4 AQA linear (3462) reference 12.12 OCR A (1983) reference 3.7.13. OCR B (1977) reference CD3. OCR C (19740) reference Sc3.2.6.10 Topic The aim of this topic is to simulate ways in which both extrusive and intrusive igneous rocks may form. Description This activity consists of a teacher-led demonstration for the whole class in which layers of sand and wax in a beaker of water are used to model how igneous rocks form both underground and at the surface. It may be that some teachers would wish to allow students to carry out the practical under very close supervision. Context Volcanoes are exciting hence all the volcano footage on TV. They can be used to fire students imaginations, and safe analogues of the behaviour of molten rocks can be demonstrated in the school laboratory. Students will have seen TV coverage of volcanic eruptions, and may even have spent holidays in volcanic regions. They will also know that temperatures generally increase with depth in the Earth. At the end of the activity students should appreciate how rising magma can cool at and below the Earth s surface, forming rocks which we call igneous. Teaching points The demonstration can follow the showing of selected video clips of volcanic eruptions such as those available at http://volcano.und.nodak.edu/vwdocs/movies/movie.html. It is a common misconception that there is a universal layer of molten rock lying just below the Earth s crust. This imaginary layer is often erroneously equated with the mantle, which is, in fact solid. Localised heating, and / or reduction in pressure, lead

to partial melting, but the magma chambers which form are only tens of kilometres across, not mantle-wide. Students also find it difficult to visualise that some molten rock can set below the Earth s surface to form intrusive igneous rocks. The reason why temperature increases with depth in the Earth is mainly because of radioactive decay of minerals within the Earth, and the fact that the hundreds of kilometres of overlying rock provide a very good insulator. During radioactive decay of an element, new elements and sub-atomic particles are formed. The total mass of these is very slightly less than the mass of the original element and the difference ( m) is converted into the equivalent amount heat energy (E) in line with the equation E = mc 2, where c is the speed of light. Timing The demonstration itself takes about 10 minutes, with discussion to follow. Apparatus one 500 cm 3 or 600 cm 3 Pyrex beaker Bunsen burner heat proof mat tripod gauze safety screen Chemicals red candle wax washed sand (sand can be washed by putting some in a bucket and using rubber tubing to run water run into the bucket and allowing the water to overflow into a sink until it runs clear) Safety notes Wear eye protection. The activity is safer than it sounds - the only potential hazard is a cracked beaker, when some localised spillage of hot wax can occur: the water remains cold throughout. It is the responsibility of the teacher to carry out an appropriate risk assessment. The demonstration Melt red candle wax into the base of the beaker to about 1 cm depth. Cover this with a layer of sand about 1 cm thick above the wax. Add water to fill the beaker about three quarters full. Apply a strong source of heat to one part of the base of the beaker and let it cool to form a solid layer. Students need to concentrate because the eruption often happens without much warning, other than an ominous crackling sound as the wax melts! The heat source is removed whilst there is still some wax left on the bottom of the beaker since this allows lava tubes and intrusions to form more effectively. Figure 1 shows an example of what might be observed.

Figure 1 A volcano in the lab

Points to bring out Both the sand and the water represent the crust of the Earth the water does not represent the sea. The wax layer represents a layer in the Earth below the crust (called the mantle). The mantle is solid. At certain points it becomes hot enough to melt. When the wax melts, it rises because of its lower density. It represents molten rock, known as magma. Some of the wax rises rapidly to the surface, imitating a volcanic eruption. It is very runny and spreads out evenly over the surface of the water (usually). This represents the way in which some lavas may cover huge areas, arising from fissure eruptions, which produce a greater total amount of lava than the better-known individual volcanoes. Some of the wax can be seen rising through tubes of wax which insulate it from the surrounding cold water and enable it to reach the surface. The location of this tube could be linked to a point above a weak spot in the rock layer, ie the tube forms above this weakness finding the easiest way to the surface. This happens in Nature too. Students may be surprised that such a vast amount of magma has passed so quickly through such a small tube. Some of the wax sets very quickly in the cold water, forming grotesque shapes. These represent intrusive igneous rocks. Once the wax has all set, the lava layer may be removed and the water poured off in order to study the shapes of the intrusions. This is analogous to the removal of layers of rocks by weathering and erosion. Reference can be made to the geological map of Great Britain and Ireland, Figure 2. Widespread sheets of lava form the Antrim plateau in Northern Ireland: masses of intrusive igneous rocks are shown as big red blobs in Devon and Cornwall, Southern Uplands of Scotland etc. Students can be challenged to say which aspects of the model are not consistent with the natural world. The most important one is that the surface eruption sets very slowly, whilst the intrusions set very quickly. In reality, the reverse would be true, because of the higher ambient temperatures at depth and the insulating properties of several kilometres of rock. Lavas may become solid within days, months or years, whereas a deep-seated intrusion of several tens of cubic kilometres may take millions of years to cool to the ambient temperature. Of course, the wax merely sets: it does not form crystals. Students can be reminded that slow cooling leads to large crystals. Extension In reality, complete melting of rocks below ground is seldom achieved. Rocks partially melt, and the minerals of lowest melting points are the ones which melt and rise (they are also the least dense minerals). This can be shown by preparing a mixture of chopped wax and gravel in a metal container. When heated in front of students the wax melts and rises, whilst the gravel does not. It is possible to do this at the same time as the volcano demonstration, but experience shows that glass beakers tend to be more susceptible to cracking in this experiment.

Acknowledgements The original idea for the wax volcano model came from Mike Tuke and is described in M. Tuke Earth Science Activities and Demonstrations, London: John Murray, 1991.

Figure 2 Geological map of Great Britain and Ireland