150TH ANNIVERSARY PAPER
Apr 1, 2002

Engineering, Design and Construction of Lunar Bases

Publication: Journal of Aerospace Engineering
Volume 15, Issue 2

Abstract

How do we begin to expand our civilization to the Moon? What are the technical issues that infrastructural engineers, in particular, must address? This paper has the goal of introducing this fascinating area of structural mechanics, design, and construction. Published work of the past several decades about lunar bases is summarized. Additional emphasis is placed on issues related to regolith mechanics and robotic construction. Although many hundreds of papers have been written on these subjects, and only a few tens of these have been referred to here, it is believed that a representative view has been created. This summary includes environmental issues, a classification of structural types being considered for the Moon, and some possible usage of in situ resources for lunar construction. An appendix provides, in tabular form, an overview of structural types and their lunar applications and technology drivers.

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References

Agosto, W. N., Wickman, J. H., and James, E. (1988). “Lunar cements/concretes for orbital structures.” Engineering, construction, and operations in space, S. W. Johnson and J. P. Wetzel, eds. ASCE, New York, 157–168.
Bell, L., and Neubek, D. J. (1990). “Antarctic testbed for extraterrestrial operations.” Engineering, Construction, and Operations in Space II, S. W. Johnson and J. P. Wetzel, eds. ASCE, New York, 1188–1197.
Benaroya, H., ed. (1993a). “Applied mechanics of a lunar base.” Appl. Mech. Rev., 46(6), 265–358.
Benaroya, H.(1993b). “Tensile-integrity structures for the Moon.” Applied Mechanics of a Lunar Base, Appl. Mech. Rev., 46(6), 326–335.
Benaroya, H.(1994). “Reliability of structures for the Moon.” Struct. Safety, 15, 67–84.
Benaroya, H., ed. (1995). “Lunar structures.” Special Issue, J. British Interplanetary Society, 48(1).
Benaroya, H., and Ettouney, M. (1989). “Framework for the evaluation of lunar base structural concepts.” 9th Biennial SSI/Princeton Conf., Space Manufacturing, Princeton, 297–302.
Benaroya, H., and Ettouney, M. (1990). “A preliminary framework for the comparison of two lunar base structural concepts.” Engineering, Construction, and Operations in Space II, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 490–499.
Benaroya, H., and Ettouney, M.(1992a). “Design and construction considerations for lunar outpost.” ASCE, J. Aerosp. Eng., 5(3), 261–273.
Benaroya, H., and Ettouney, M. (1992b). “Design codes for lunar structures.” Engineering, Construction, and Operations in Space III, W. Z. Sadeh, S. Sture, and R. J. Miller, eds., ASCE, New York, 1–12.
Bernold, L. E.(1991). “Experimental studies on mechanics of lunar excavation.” ASCE, J. Aerosp. Eng., 4(1), 9–22.
Bernold, L. E.(1994a). “Cable-based lunar transportation system.” ASCE, J. Aerosp. Eng., 7(1), 1–16.
Bernold, L. E.(1994b). “Compaction of lunar-type soil.” ASCE, J. Aerosp. Eng., 7(2), 175–187.
Broad, W. J. (1989). “Lab offers to develop an inflatable space base.” New York Times, Nov. 14.
Brooks, R. A. (1986). “A robust layered control system for a mobile robot.” IEEE Journal of Robotics and Automation, RA-2, 14–23.
Brooks, R. A. (1990). “Elephants don’t play chess.” P. Mae, ed., Designing autonomous agents: Theory and practice from biology to engineering and back, MIT Press, Cambridge, Mass., 3–15.
Burke, J. D. (1985). “Merits of a lunar polar base location.” Lunar bases and space activities of the 21st century, Proc., Lunar and Planetary Institute, Houston, 77–84.
Burns, J. O., Duric, N., Taylor, G. J., and Johnson, S. W.(1990). “Astronomy on the Moon.” Sci. Am. 262(3), 42–49.
Casanova, I., and Aulesa, V. (2000). “Construction materials from in-situ resources on the Moon and Mars.” Proc., Space 2000: 7th Int. Conf., S. W. Johnson, K. M. Chua, R. G. Galloway and P. I. Richter, eds., ASCE, Reston, Va., 638–644.
Chow, P. Y., and Lin, T. Y. (1988). “Structures for the Moon.” Engineering, construction, and operations in space, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 362–374.
Chow, P. Y., and Lin, T. Y.(1989). “Structural engineering’s concept of lunar structures.” ASCE, J. Aerosp. Eng., 2(1), 1–9.
Chua, K. M., and Johnson, S. W. (1991). “Foundation, excavation and radiation shielding emplacement concepts for a 16 meter large lunar telescope.” SPIE, Intl. Soc. Opt. Engrg., Proc., 1494.
Chua, K. M., and Johnson, S. W.(1998). “Martian and lunar cold region soil mechanics considerations.” ASCE, J. Aerosp. Eng., 11(4), 138–147.
Chua, K. M., Johnson, S. W., and Nein, M. E.(1993). “Structural concepts for lunar-based astronomy.” Appl. Mech. Rev., 46(6), 336–357.
Chua, K. M., Johnson, S. W., and Sahu, R. (1992). “Design of a support and foundation for a large lunar optical telescope.” Engineering, construction and operations in space III, W. Z. Sadeh, S. Sture, and R. J. Miller, eds., ASCE, New York, 1952–1963.
Chua, K. M., Xu, L., and Johnson, S. W. (1994). “Numerical simulations of structure-regolith interactions.” Computer Methods and Advances in Geomechanics, H. J. Siriwardane and M. M. Zaman, eds., Balkema, Rotterdam, The Netherlands.
Chu, K. M., Yuan, Z., and Johnson, S. W. (1990). “Foundation design of a large diameter radio telescope on the Moon.” Engineering, construction and operations in space II, S. W. Johnson and J. P. Wetzel, eds., 707–716.
Cliffton, E. W. (1990). “A fused regolith structure.” Engineering, construction, and operations in space II, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 541–550.
Conway, L., Volz, R. A., and Walker, M. W.(1990). “Teleautonomous systems: Projecting and coordinating intelligent actions at a distance.” IEEE Trans. Rob. Autom., 6(2), 146–158.
Criswell, D. (1972). “Lunar dust motion.” Proc., 3rd Lunar Science Conf., NASA, Washington, D.C., 2671–2680.
Criswell, M. E., Sadeh, W. Z., and Abarbanel, J. (1996). “Design and performance criteria for inflatable structures in space.” Engineering, construction, and operations in space, S. W. Johnson, ed., ASCE, New York, 1045–1051.
Crockett, R. S., Fabes, B. D., Nakamura, T., and Senior, C. L. (1994). “Construction of large lunar structures by fusion welding of sintered regolith.” Engineering, construction, and operations in space IV, R. K. Galloway and S. Lokaj, eds., ASCE, New York, 1116–1127.
Daga, A. W., Daga, M. A., and Wendell, W. R. (1990). “A preliminary assessment of the potential of lava tube-situated lunar base architecture.” Engineering, construction, and operations in space II, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 568–577.
Department of the Army. (1963). Special study of the research and development effort required to provide a U.S. Lunar Construction Capability, Office of the Chief of Engineers.
Dick, R. D., Fourney, W. L., Goodings, D. J., Lin, C.-P., and Bernold, L. E.(1992). “Use of explosives on the Moon.” ASCE, J. Aerosp. Eng., 5(1), 59–65.
Drake, R. M., and Richter, P. J. (1990). “Design and construction of a lunar outpost assembly facility.” Engineering, construction, and operations in space II, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 449–457.
Duke, M., and Benaroya, H.(1993). “Applied mechanics of lunar exploration and development.” Applied mechanics of a lunar base, Appl. Mech. Rev., 46(6), 272–277.
Ettouney, M., and Benaroya, H.(1992). “Regolith mechanics, dynamics, and foundations.” ASCE, J. Aerosp. Eng., 5(2), 214–229.
Galloway, R. G., and Lokaj, S., eds. (1994). Engineering, construction, and operations in space IV, ASCE, New York.
Galloway, R. G., and Lokaj, S., eds. (1998). Space 98, ASCE, Reston, Va.
Goodings, D. J., Lin, C.-P., Dick, R. D., Fourney, W. L., and Bernold, L. E.(1992). “Modeling the effects of chemical explosives for excavation on the Moon.” ASCE, J. Aerosp. Eng., 5(1), 44–58.
Gracia, V., and Casanova, I. (1998). “Sulfur concrete: A viable alternative for lunar construction.” SPACE 98, R. G. Galloway and S. Lokaj, eds., ASCE, Reston, Va., 585–591.
Griffin, B. N. (1990). An infrastructure for early lunar development.” SPACE 90, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 389–398.
Grigg, N. S. (1988). Infrastructure engineering and management, Wiley, New York.
Halajian, J. D. (1964). “Soil behavior in a low and ultrahigh vacuum.” Contribution 64-WA/AV-14, ASME, New York.
Happel, J. A. (1992a). “The design of lunar structures using indigenous construction materials.” MS thesis, Univ. of Colorado, Boulder, Colo.
Happel, J. A., William, K., and Shing, B. (1992b). “Prototype lunar base construction using indigenous materials.” Engineering, construction, and operations in space III, W. Z. Sadeh, S. Sture, and R. J. Miller, eds., ASCE, New York, 112–122.
Harrison, R. A. (1992). “Cylindrical fabric-confined soil structures.” Engineering, Construction, and Operations in Space III, W. Z. Sadeh, S. Sture, and R. J. Miller, eds., ASCE, New York, 123–134.
Hoffman, S. J., and Niehoff, J. C. (1985). “Preliminary design of a permanently manned lunar surface research base.” Lunar bases and space activities of the 21st century, Proc., Lunar and Planetary Institute, Houston, 69–76.
Horiguchi, T., Saeki, N., Yoneda, T., Hoshi, T., and Lin, T. D. (1998). “Behavior of simulated lunar cement mortar in vacuum environment.” Space 98, R. G. Galloway and S. L. Lokaj, eds., ASCE, Reston, Va., 571–576.
Huang, X., and Bernold, L. E. (1993) “Towards an adaptive control model for robotic backhoe excavation.” Transportation Research Record 1406, Transportation Research Board, Washington, D.C., 20–24.
Huang, X., and Bernold, L. E. (1994). “Control model for robotic backhoe excavation and obstacle handling.” Proc., Robotics for challenging environments, L. A. Demsetz and P. R. Klarev, eds., ASCE, New York, 123–130.
Hypes, W. D., and Wright, R. L. (1990). “A survey of surface structures and subsurface developments for lunar bases.” Engineering, construction, and operations in space II, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 468–479.
Joachim, C. E. (1988). “Extraterrestrial excavation and mining with explosives.” Engineering, construction and operations in space, S. W. Johnson and J. P. Wetzel, eds. ASCE, New York, 332–343.
Johnson, S. W. (1964). “Criteria for the design of structures for a permanent lunar base.” PhD dissertation, Univ. of Illinois, Urbana, Ill.
Johnson, S. W. (1989). Extraterrestrial facilities engineering, 1989 Yearbook, Encyclopedia of Physical Science and Technology, Academic Press, San Diego.
Johnson, S. W., ed. (1996). Engineering, construction, and operations in Space: Space ’96, ASCE, New York.
Johnson, S. W., and Chua, K. M. (1992). “Assessment of the lunar surface and in situ materials to sustain construction-related applications.” Joint Workshop (DOE/LANL, NASA/JSC and LPI) on New Technologies for Lunar Resource Assessment.
Johnson, S. W., and Chua, K. M.(1993). “Properties and mechanics of the lunar regolith.” Appl. Mech. Rev., 46(6), 285–300.
Johnson, S. W., Chua, K. M., and Burns, J. O.(1995a). “Lunar dust, lunar observatories, and other operations on the Moon.” J. British Interplanetary Society, 48, 87–92.
Johnson, S. W., Chua, K. M., and Carrier, III, W. D.(1995b). “Lunar Soil Mechanics.” J. British Interplanetary Society, 48(1), 43–48.
Johnson, S. W., and Leonard, R. S. (1985). “Evolution of concepts for lunar bases.” Lunar Bases and Space Activities of the 21st Century, Proc., Lunar and Planetary Institute, Houston, 47–56.
Johnson, S. W., Smith, J. A., Franklin, E. G., Moraski, L. K., and Teal, D. J.(1969). “Gravity and atmosphere pressure effects on crater formation in sand.” J. Geophys. Res., 74(20), 4838–4850.
Johnson, S. W., and Wetzel, J. P., eds. (1988). Engineering, construction, and operations in space, ASCE, New York.
Johnson, S. W., and Wetzel, J. P., eds. (1990a). Engineering, construction, and operations in space II, ASCE, New York.
Johnson, S. W., Burns, J. O., Chua, K. M., Duric, N., and Taylor, G. J.(1990). “Lunar astronomical observatories: Design studies.” ASCE, J. Aerosp. Eng., 3(4), 211–222.
Johnson, S. W., and Wetzel, J. P.(1990b). “Science and engineering for space: Technologies from SPACE 88.” ASCE, J. Aerosp. Eng., 3(2), 91–107.
Kelso, H. M., Hopkins, J., Morris, R., and Thomas, M. (1988). “Design of a second generation lunar base.” Engineering, construction, and operations in space, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 389–399.
Kemurdjian, A., and Khakhanov, U. A. (2000). “Development of simulation means for gravity forces.” Robotics 2000, W. C. Stone, ed., ASCE, Reston, Va., 220–225.
Kennedy, K. J. (1992). “A horizontal inflatable habitat for SEI.” Engineering, construction, and operations in space III, W. Z. Sadeh, S. Sture, and R. J. Miller, eds., ASCE, New York, 135–146.
Khalili, E. N.(1989). “Lunar structures generated and shielded with on-site materials.” ASCE, J. Aerosp. Eng., 2(3), 119–129.
King, C. B., Butterfield, A. J., Hyper, W. D., and Nealy, J. E. (1989). “A concept for using the external tank from a NSTS for a lunar habitat.” Proc., 9th Biennial SSI/Princeton Conf. on Space Manufacturing, Princeton, AIAA, Washington, D.C., 47–56.
Leonard, R. S., and Johnson, S. W. (1988). “Sulfur-based construction materials for lunar construction.” Engineering, construction, and operations in space, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 1295–1307.
Lin, T. D. (1987). “Concrete for lunar base construction.” Concr. Int., 9(7).
Lin, C. P., Goodings, D. J., Bernold, L. E., Dick, R. D., and Fourney, W. L.(1994). “Model studies of effects on lunar soil of chemical explosions.” J. Geotech. Eng., 120(10), 1684–1703.
Lin, T. D., Senseney, J. A., Arp, L. D., and Lindbergh, C.(1989). “Concrete lunar base investigation.” ASCE, J. Aerosp. Eng., 2(1), 10–19.
Lowman, P. D. (1985). “Lunar bases: A post-Apollo evaluation.” Lunar Bases and Space Activities of the 21st Century, Proc., Lunar and Planetary Institute, Houston, 35–46.
Mangan, J. J. (1988). “The expandable platform as a structure on the Moon.” Engineering, construction, and operations in space, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 375–388.
Mendell, W., ed. (1985). “Lunar bases and space activities of the 21st century.” Proc., Lunar and Planetary Institute, Houston.
Namba, H., Ishikawa, N., Kanamori, H., and Okada, T. (1988a). “Concrete production method for construction of lunar bases.” Engineering, construction, and operations in space, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 169–177.
Namba, H., Yoshida, T., Matsumoto, S., Sugihara, K., and Kai, Y. (1988b). “Concrete habitable structure on the Moon.” Engineering, construction, and operations in space, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 178–189.
Nelson, T. J., Olson, M. R., and Wood, H. C. (1998). “Long delay telecontrol of lunar equipment.” R. G. Galloway and S. Lokaj, eds., Space 98, ASCE, Reston, Va., 477–484.
Nowak, P. S., Criswell, M. E., and Sadeh, W. Z. (1990). “Inflatable structures for a lunar base.” Engineering, construction, and operations in space II, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 510–519.
Nowak, P. S., Sadeh, W. Z., and Criswell, M. E. (1992). “An analysis of an inflatable module for planetary surfaces.” Engineering, construction, and operations in space III, W. Z. Sadeh, S. Sture, and R. J. Miller, eds., ASCE, New York, 78–88.
Okumura, M., Ohashi, Y., Ueno, T., Motoyui, S., and Murakawa, K. (1994). “Lunar base construction using the reinforced earth method with geotextiles.” Engineering, construction, and operations in space IV, R. G. Galloway and S. Lokaj, ASCE, New York, 1106–1115.
Pieniazek, L. A., and Toups, L. (1990). “A lunar outpost surface systems architecture.” Engineering, construction, and operations in space II, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 480–489.
Prael, R. E., Strottman, D. D., Strniste, G. F., and Feldman, W. C. (1990). “Radiation exposure and protection for Moon and Mars missions.” Rep. LA-UR-90-1297, Los Alamos National Laboratory, Los Alamos, N.M.
Richter, P. J., and Drake, R. M. (1990). “A preliminary evaluation of extraterrestrial building systems.” Engineering, construction, and operations in space II, S. W. Johson, and J. P. Wetzel, eds., ASCE, New York, 409–418.
Richter, T., Lorenc, S. J., and Bernold, L. E. (1998). “Cable based robotic work platform for construction.” 15th Int. Symp. on Automation and Robotics in Construction, 137–144.
Sadeh, W. Z., and Criswell, M. E. (1994). “A generic inflatable structure for a Lunar/Martian base.” Engineering, Construction, and Operations in Space IV, R. G. Galloway and S. Lokaj, eds., ASCE, New York, 1146–1156.
Sadeh, W. Z., Sture, S., and Miller, R. J., eds. (1992). Engineering, construction, and operations in space III, ASCE, New York.
Sargent, R., and Hampson, K. (1996). “Challenges in the construction of a lunar base.” Engineering, construction, and operations in space, S. W. Johnson, ASCE, New York, 881–888.
Schroeder, M. E., and Richter, P. J. (1994a). “A membrane structure for a lunar assembly building.” Engineering, construction, and operations in space IV, R. G. Galloway and S. Lokaj, eds., ASCE, New York, 186–195.
Schroeder, M. E., Richter, P. J., and Day, J. (1994b). “Design techniques for rectangular lunar modules.” Engineering, construction, and operations in space IV, R. G. Galloway and S. Lokaj, eds., ASCE, New York, 176–185.
Seiheimer, H. E., and Johnson, S. W.(1969). “Adhesion of comminuted basalt rock to metal alloys in ultrahigh vacuum.” J. Geophys. Res., 74(22), 5321–5330.
Sherwood, B. (1990). “Site constraints for a lunar base.” Engineering, construction, and operations in space II, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 984–993.
Silberberg, R., Tsao, C. H., Adams Jr., J. H. and Letaw, J. R., (1985). “Radiation transport of cosmic ray nuclei in lunar material and radiation doses.” Lunar bases and space activities of the 21st century, W. W. Mendell, ed., Lunar and Planetary Institute, Houston, Tex.
Simmerer, S. J.(1988). “Preparing to bridge the lunar gap.” ASCE, J. Aerosp. Eng., 1(2), 117–128.
Slane, F. A. (1994). “Engineering implications of levitating lunar dust.” Engineering, construction, and operations in space IV, R. G. Galloway and S. Lokaj, eds., ASCE, New York, 1097–1105.
Strenski, D., Yankee, S., Holasek, R., Pletka, B., and Hellawell, A. (1990). “Brick design for the lunar surface.” Engineering, construction, and operations in space II, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 458–467.
Toups, L. (1990). “A survey of lunar construction techniques.” Engineering, construction, and operations in space II, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 399–408.
Vanderbilt, M. D., Criswell, M. E., and Sadeh, W. Z. (1988). “Structures for a lunar base.” Engineering, construction, and operations in space, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 352–361.
Watson, P. M. (1988). “Explosives research for lunar applications: A review.” Engineering, construction and operations in space, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 322–331.
Young, J. F., and Berger, R. L. (1988). “Cement-based materials for planetary materials.” Engineering, construction, and operations in space, S. W. Johnson and J. P. Wetzel, eds., ASCE, New York, 134–145.

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Go to Journal of Aerospace Engineering
Journal of Aerospace Engineering
Volume 15Issue 2April 2002
Pages: 33 - 45

History

Received: Sep 19, 2001
Accepted: Oct 23, 2001
Published online: Apr 1, 2002
Published in print: Apr 2002

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Haym Benaroya
Professor, Dept. of Mechanical and Aerospace Engineering, Rutgers Univ., Piscataway, NJ 08854 (corresponding author).
Leonhard Bernold, M.ASCE
Professor, Dept. of Civil Engineering, North Carolina State Univ., Raleigh, NC 27695.
Koon Meng Chua, F.ASCE
Professor, Dept. of Civil Engineering, Univ. of New Mexico, Albuquerque, NM 87131.

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