What Can a Hole in the Moon Tell Us About Something That Happened Billions of Years Ago?
Look at the surface of the Moon through even a modest telescope and one feature immediately dominates the view.
Craters.
Some are tiny. Others are hundreds of kilometres across. Some overlap older craters. Some have bright rays extending across the lunar surface. Some have relatively smooth floors, while larger examples can contain terraces, collapsed walls and mountains rising from their centres.
They are not simply holes.
They are records of events.
Nobody watched most of these impacts happen. There were no cameras, seismographs or written observations. Yet planetary scientists can examine the crater that remains and work backwards, asking questions such as:
How large was the impacting object?
How energetic was the collision?
At what angle did it arrive?
What was the surface made from?
Which event happened first?
How old might this part of the landscape be?
That makes impact craters a wonderful example of one of the most important ideas in science:
We can investigate events we never actually witnessed by studying the evidence they left behind.
And we can explore some of that science with a surprisingly simple experiment.
Making a miniature impact landscape
The basic experiment needs very little specialised equipment.
I would start with a shallow tray containing a fairly deep layer of fine material such as flour.
On top of the flour, add a very thin layer of contrasting material. Cocoa powder works particularly well, although anything fine and visibly different from the underlying material can be used.
The result represents a very simplified planetary surface.
Then drop an object into it.
A marble or small ball bearing produces an immediate and rather dramatic result.
There is a crater.
There is a raised rim.
Material has been thrown outwards.
The coloured surface layer has been disturbed.
And suddenly there is far more to investigate than simply measuring the diameter of a hole.
Start by changing just one variable
As with any worthwhile scientific investigation, the temptation is to change everything at once.
Resist it.
Choose one variable and investigate it systematically.
For example, keep the impactor the same but release it from heights of:
20 cm
40 cm
60 cm
80 cm
100 cm
After each impact, carefully measure the crater diameter.
Students can record something like:
| Drop height | Crater diameter |
|---|---|
| 20 cm | ... |
| 40 cm | ... |
| 60 cm | ... |
| 80 cm | ... |
| 100 cm | ... |
They can then plot crater diameter against drop height.
Immediately the experiment has moved beyond merely producing an impressive photograph.
We are looking for a relationship.
Why should height make a difference?
Before the object is released, it has gravitational potential energy.
For a simple vertical drop:
GPE = mgh
where:
m = mass of the impactor
g = gravitational field strength
h = height above the surface
As it falls, much of that gravitational potential energy becomes kinetic energy.
Immediately before impact:
KE = 1/2 mv^2
The higher the starting point, the greater the energy available when the impactor reaches the surface.
That energy has to go somewhere.
It can:
move surface material;
break or deform material;
eject particles;
heat the impactor and target;
produce sound;
generate vibrations;
and create the crater itself.
Our flour experiment is extremely low-energy compared with a real asteroid impact, but the important principle is there:
An impact is an energy-transfer event.
Mass is another obvious variable
Keep the drop height constant but change the mass of the impactor.
Perhaps students could use objects with similar diameters but different masses.
That is experimentally more interesting than simply changing to a bigger object because it helps separate two different variables:
mass and size.
If the speed is approximately the same, kinetic energy depends directly upon mass:
KE = 1/2 mv^2
Double the mass and, at the same speed, the kinetic energy doubles.
But does the crater diameter double?
Probably not.
And that is where the investigation begins to become much more interesting.
Science is full of relationships that are not simply proportional
Students often meet simple proportional relationships:
double one quantity and another doubles.
Nature frequently refuses to be that cooperative.
Crater dimensions depend on many interacting factors, including:
impact energy;
impactor size;
impactor density;
impact speed;
impact angle;
surface density;
surface strength;
gravity.
Scientists therefore use scaling relationships to connect laboratory experiments, computer simulations and enormous planetary impacts.
A marble falling into flour is obviously not a meteorite hitting the Moon at many kilometres per second.
The experiment is an analogue.
That distinction is important.
We are investigating some of the principles involved in crater formation, not claiming that a tray of flour perfectly reproduces a lunar impact.
That itself is an excellent scientific discussion.
When is a model useful even though it is not completely realistic?
Change the diameter of the impactor
Another investigation is to use spheres of different diameters.
Students might initially predict:
Bigger object = bigger crater.
That is probably true in broad terms, but it raises another question.
Why?
A larger object may also have:
greater mass;
greater surface area;
different density;
different aerodynamic behaviour.
It becomes a nice introduction to experimental design.
If we genuinely want to investigate diameter alone, how do we control the other variables?
This is often more scientifically valuable than producing a perfectly neat graph.
Students begin discovering that designing a fair experiment can be harder than carrying one out.
What happens if the impactor arrives at an angle?
Dropping objects vertically is easy.
Real objects in the Solar System are not obliged to cooperate.
Asteroids and meteoroids can approach a planetary surface at different angles.
A simple classroom experiment can investigate this by arranging for the projectile to enter the material obliquely rather than vertically.
Students can investigate:
crater shape;
crater length and width;
direction of ejecta;
distribution of disturbed surface material.
At the relatively low velocities of a classroom experiment, changing the angle may produce noticeably asymmetric results.
Real planetary impacts are considerably more complicated because they usually occur at enormous speeds. Hypervelocity impacts can behave rather differently from a slowly dropped ball.
Again, that difference provides an excellent opportunity to discuss the limitations of models.
Look at the ejecta, not just the crater
This is one reason I particularly like using a thin contrasting surface layer.
When the impact occurs, material is thrown outwards.
This material is called ejecta.
Instead of simply measuring crater diameter, students can look at:
maximum ejecta distance;
direction;
symmetry;
thickness;
streaks or rays;
distribution around the crater.
Photographing the tray directly from above makes these patterns much easier to compare.
A ruler included in each photograph gives a scale.
Students could even analyse the images digitally rather than measuring the crater directly.
Suddenly we have moved into scientific imaging and quantitative image analysis.
High-speed video could make this even better
This is one experiment where a camera can reveal something the eye easily misses.
Film the impact at the highest useful frame rate available.
Played back slowly, students may see:
the impactor entering the surface;
material beginning to move outwards;
the developing cavity;
ejecta travelling away from the impact;
material falling back around the crater.
What appears to be an instantaneous event becomes a sequence.
A side view can show the ejecta rising.
A top view reveals its distribution.
Using two cameras simultaneously would make an especially effective demonstration because the same event could be examined from two completely different perspectives.
A crater is much more than a hole
Now we can return to the Moon.
Planetary scientists do not simply measure crater diameters.
The morphology of a crater — its shape and structure — contains information.
Depending on its size and the conditions under which it formed, an impact crater can contain features such as:
a raised rim;
an ejecta blanket;
rays extending across the surrounding terrain;
slumped or terraced walls;
a relatively flat floor;
central peaks in larger complex craters.
These structures tell us something about the extraordinary forces involved.
For a sufficiently large impact, the ground does not simply behave like a rigid solid being struck with a hammer. Under the enormous pressures produced during a hypervelocity impact, rock can fracture, flow and rebound on a huge scale.
That is why enormous impact structures can be far more complicated than simple bowl-shaped holes.
Why does the Moon have so many craters?
The Moon provides an almost perfect place to introduce another geological idea.
A crater can only tell us its history if the evidence survives.
On Earth, landscapes are continually being modified.
We have:
wind;
rain;
rivers;
glaciers;
vegetation;
weathering;
erosion;
sedimentation;
plate tectonics.
Earth's surface is extraordinarily active.
The Moon has no rivers washing craters away, no vegetation covering them and no active plate tectonic system recycling its surface in the way Earth's crust is recycled.
Its landscape can therefore preserve extremely old evidence.
Looking at the Moon is rather like looking at an ancient astronomical archive.
Counting craters can even tell us something about age
Imagine two neighbouring lunar surfaces.
One is covered with craters.
The other contains relatively few.
Which is probably older?
The heavily cratered surface has generally been exposed to impacts for longer, whereas a younger surface may have been resurfaced more recently.
Planetary scientists therefore use crater counting as one technique for comparing the relative ages of surfaces.
It is not simply:
more craters = exact age.
Scientists must consider crater sizes, resurfacing events, overlapping structures and models of impact frequency.
But the central principle is wonderfully accessible.
If impacts accumulate with time, the number and distribution of craters can help reconstruct a landscape's history.
A geological detective story
Overlapping craters introduce another beautifully simple idea.
Suppose crater A cuts across crater B.
Which formed first?
Crater B must already have existed before crater A could have disrupted it.
Students have just used relative dating.
The same reasoning is used throughout geology.
A feature that cuts another feature must generally be younger than the feature it cuts.
A tray of flour has now taken us into stratigraphy and geological history.
Mars adds another layer to the story
The same reasoning can be applied to Mars.
But Mars has had a different geological and atmospheric history from the Moon.
Its surface shows:
impact craters;
enormous volcanoes;
valleys;
sedimentary structures;
evidence of erosion;
ancient surfaces;
younger resurfaced areas.
Comparing cratered landscapes on Mars with those on the Moon therefore becomes much more than identifying holes.
Students can ask:
What has happened to this landscape since the crater formed?
Has material filled the crater?
Has erosion modified it?
Has volcanic activity covered older structures?
Has wind moved sediment across it?
This is planetary geology becoming a genuine investigation rather than simply learning the names of planets.
And then there is Earth
Impact craters exist here too.
They are simply harder to preserve.
One of the most famous impact structures is associated with the event about 66 million years ago at the end of the Cretaceous Period.
The Chicxulub impact structure in what is now Mexico is roughly 180 km across.
Its significance reaches far beyond geology because it is associated with one of the greatest mass-extinction events in Earth's history.
Suddenly our tray of flour connects:
physics
to astronomy
to geology
to palaeontology
to evolution.
That is exactly why I enjoy experiments that sit outside the formal syllabus.
Individual school subjects suddenly stop looking quite so separate.
Could students calculate the impact energy?
Yes — and this could make an excellent A-level extension.
For the falling object, begin with:
GPE = mgh
If losses are ignored, immediately before impact:
KE approximately equals mgh
Students could calculate the approximate impact energy for each drop.
They could then plot:
crater diameter against impact energy
rather than simply crater diameter against height.
This is scientifically much more meaningful because different combinations of mass and height can produce the same gravitational potential energy.
For example, students could deliberately choose different masses and heights designed to give approximately equal values of mgh.
Would they produce identical craters?
That becomes a much more sophisticated investigation.
A useful challenge: equal energy, different impactor
Suppose we arrange two impacts with approximately the same calculated energy.
One uses:
a lighter object dropped from higher up.
The other uses:
a heavier object dropped from a lower height.
If KE is approximately the same, will the craters be identical?
That question is far more interesting than merely confirming that higher drops make larger holes.
Students may discover that impactor geometry, momentum, contact area and the behaviour of the target material also matter.
The experiment begins to reveal the danger of reducing a complicated physical event to a single number.
Momentum gives us another way of looking at it
Kinetic energy is not the only useful quantity.
Momentum is:
p = mv
Two objects can have the same kinetic energy but different momenta.
This gives A-level students another possible investigation.
Which quantity appears to correlate more strongly with the crater dimensions in our particular experimental setup?
Energy?
Momentum?
Impactor diameter?
Perhaps no single variable completely explains the result.
That is much closer to real experimental science.
An investigation students could genuinely design themselves
I would be tempted not to give students a complete method.
Instead I might provide the question:
What determines the size of an impact crater?
Then allow them to decide:
what variable to change;
what quantities to measure;
what controls are necessary;
how many repeats are needed;
how uncertainty should be handled;
what graph should be plotted.
Different students might investigate entirely different aspects of the same phenomenon.
One group could investigate mass.
Another could investigate height.
Another could investigate projectile diameter.
Another could concentrate on impact angle.
Another could analyse ejecta.
At the end, the class could combine its evidence.
That begins to resemble the way scientific research actually develops.
Repeats matter
Flour does not behave perfectly.
Neither do students dropping marbles.
Two apparently identical impacts may produce slightly different crater diameters.
That is not experimental failure.
It is experimental reality.
Repeat each condition several times and calculate a mean crater diameter.
Students can then discuss:
random variation;
anomalous results;
measurement uncertainty;
repeatability;
how many repeats are sufficient.
A very visually dramatic experiment has quietly become an exercise in serious experimental technique.
One practical problem: how do you measure a crater?
Even this apparently simple question deserves thought.
Where exactly does the crater end?
Do we measure:
the inner depression?
the outer rim?
the maximum diameter?
two perpendicular diameters and take a mean?
If the crater is elliptical, one measurement is clearly inadequate.
For an angled impact, students might record:
major axis = ...
minor axis = ...
and calculate their ratio.
Experimental definitions matter.
Two groups cannot meaningfully compare their data unless they have agreed what they mean by "crater diameter".
That is a lesson extending far beyond planetary science.
Improve the experiment with photography
A particularly good method would be to create a permanent visual record of every impact.
Mount a camera above the tray.
Keep:
camera position;
focal length;
lighting;
tray position;
scale ruler
constant.
Photograph every crater before resetting the surface.
The photographs can then be compared later.
Students could measure crater dimensions directly from the image and perhaps investigate the area covered by ejecta.
A numbered card beside the tray could identify each experimental condition.
That turns a messy practical experiment into a much better documented investigation.
Safety and practical organisation
The experiment is straightforward, but a little organisation helps.
Use relatively small, manageable impactors and sensible drop heights.
Protect the surrounding area because fine powders can travel surprisingly far.
Avoid throwing hard objects or launching high-speed projectiles.
The aim is to investigate impact processes, not to reproduce genuine asteroid velocities in the laboratory.
A large tray or shallow container also makes resetting the surface much easier.
After each test:
recover the impactor;
level the flour;
recreate the thin contrasting layer;
check the scale;
repeat the experiment.
Consistency here will greatly improve the results.
The experiment I would like students to remember
The best science practicals are not necessarily those involving the most complicated equipment.
Sometimes the best experiment begins with a question that becomes larger the longer you investigate it.
Drop a marble into flour and initially the question is:
How big is the hole?
A few minutes later it becomes:
How does crater diameter depend on impact energy?
Then:
Can we infer the properties of an impactor from the crater it leaves behind?
And eventually:
How can scientists reconstruct an event that happened billions of years before human beings existed?
That is a remarkable journey from a baking ingredient and a marble.
Science is the art of reading evidence
Perhaps that is the most important idea behind this experiment.
Science is not restricted to events we can watch happening.
We cannot travel back to observe the formation of every lunar crater.
We cannot stand beside an asteroid as it strikes ancient Mars.
We were not present for the enormous impacts that shaped the early Solar System.
But those events left evidence.
Crater dimensions.
Ejecta.
Fractured rocks.
Overlapping structures.
Chemical signatures.
Altered landscapes.
Scientists learn to read those clues.
And from them, we reconstruct a history.
So the next time you look through a telescope and see the battered surface of the Moon, it is worth remembering:
You are not simply looking at holes in the ground.
You are looking at billions of years of Solar System history, written into the landscape.


