When we think about space exploration the first thought is most likely not about underground tunnels. But as it turns out, that might just be best place to start exploring!
What are lunar lava tubes?
Lava tubes are void structures formed when the surface of a
lava flow cools, crusts over, and hardens. The lava underneath this crust
continues to flow and drain out, leaving behind a hallow channel with hard rock surrounding it. Terrestrial
lava tubes, or the lava tubes found here on Earth, differ from lunar lava tubes most drastically in their
size. Terrestrial lava tubes average a width of about 10-100 meters, while lunar
lava tubes are estimated to be 1000 times that of terrestrial tubes (Sauro, 2020)! Although
lunar lava tubes have not been physically accessed yet, they have been studied
through orbital imagery, gravity measurements and ground penetrating radar. Through
these techniques, basic information has been provided about lunar skylights
(collapsed sections of lava tubes) and sinuous rilles (elongate features
resembling channels), as well as void spaces beneath these surface features.

Artists
rendering depicting how a lunar rover may enter a lava tube through a skylight.
Source: Kerber et al., 2018
Why should we care about lunar lava tubes?
Lunar lava tubes pose
as a suitable location for future lunar bases. The large size of these
void spaces means there should be a large amount of useable floor
space in these tubes in order to set up instrumentation and future housing for astronauts. Since these lunar lava tubes will have a "roof", they will also provide protection from radiation, micrometeorites
hitting the surface of the moon, and extreme temperature fluctuations. In addition
to shelter, lava tubes provide possible access to resources such as volatiles
and frozen water that may be trapped in the volcanic material. These resources
can potentially be accessed and used by astronauts as a source for useable water
and potential rocket fuel.
Rock Mechanics and lunar lava tubes
An important question to ask when studying these lava tubes is how exactly do the rocks around the channel behave? Understanding the structure and properties of the material surrounding channels will give great insight on the stability and safety of using lava tubes as a site of a lunar base. The problem? We are not on the moon. In order to study these subsurface structures on the moon, terrestrial analogs must be used.
The lunar volcanic rock surrounding these lava tubes most likely formed in a similar fashion as some areas with volcanic rock on Earth. Studying these rocks found on Earth is a much more accessible way to understand the volcanic rocks on the Moon. Therefore, geophysical
properties measured in the laboratory on analog samples can be used to infer
geophysical properties of volcanic rocks on the Moon.
To better understand this process, let’s think about the
Apollo missions. Astronauts on the Apollo missions landed on the Moon and
collected hand samples to bring back to Earth. These hand samples were then studied
in a laboratory where various properties were analyzed in order to characterize
the samples. Scientists then use these properties measured on a hand-sample-scale
in order to infer large scale subsurface structures on the Moon (in our case
lava tubes). Working with our analog study can be thought of as the reverse of
this process. Large scale properties can easily be measured in the field on
Earth, but hand-sample-scale properties are not well characterized for analog
sites.
Hopefully, by strengthening the link between hand sample properties and
large scale properties on the Earth, we can better understand the properties of
lava tubes on the moon. And while we may still be years out from starting entire
cities on the Moon, lava tubes may just be the key to continuing our long
journey of exploring our Solar System and beyond!

(Top) Apollo 11 astronaut conducting active source seismology. Source: NASA (Right) Student at The University of California performing active source seismic experiments. Source: CSU
References
Alex Beall. CSU System. News. The Faults in our Earth. https://www2.calstate.edu/csu-system/news/Pages/the-faults-in-our-earth.asp
NASA, 2017. Apollo 11 Seismic Experiment. https://moon.nasa.gov/resources/13/apollo-11-seismic-experiment/
Sauro et al., 2020. Lava tubes on Earth, Moon and Mars: A review on their size and morphology revealed by comparative planetology, Earth-Science Reviews, Volume 209, 2020, 103288, ISSN 0012-8252.