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The development of autonomous robots capable of constructing intricate structures without human assistance has been inspired by the intricate mounds that termites construct.222 These robots work independently and can proceed by themselves on a monitored grid, capable of climbing and lifting up bricks. Such robots may be useful for future jobs on Mars, or even for building levees to prevent flooding.223.
Termites utilize sophisticated means to control the temperatures of the mounds. As mentioned above, the shape and orientation of the mounds of the Australian compass termite stabilises their internal temperatures during the day. As the towers heating up, the solar chimney impact (stack effect) generates an updraft of air within the mound.224 Wind blowing across the tops of the towers enhances the circulation of air through the mounds, which also include side vents in their construction.
Especially in Africa, the stack effect has turned into a popular means to achieve natural ventilation and passive cooling in modern buildings.224.
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The Eastgate Centre is a shopping centre and office block in central Harare, Zimbabwe, whose architect, Mick Pearce, utilized passive cooling inspired by that used by the local termites.226 It was the first major building exploiting termite-inspired cooling techniques to draw international attention. Other these buildings include the Learning Resource Center at the Catholic University of Eastern Africa and the Council House 2 building in Melbourne, Australia.224.
Few zoos hold termites, on account of the difficulty in keeping them captive and into the reluctance of government to allow potential pests. One of those few that do, the Zoo Basel in Switzerland, has two thriving Macrotermes bellicosus populations resulting in an event very rare in captivity: the mass migrations of young flying termites.
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In Malaysia, Singapore and Thailand, termite mounds are commonly worshiped among the people.229 Abandoned mounds are seen as structures created by spirits, believing a neighborhood guardian dwells within the mound; this is known as Keramat and Datok Kong. In urban areas, local residents construct red-painted shrines over mounds that have been abandoned, in which they pray for good health, protection and luck.229.
It's unknown whether the termite was male or female. When it was check my site a female, then the body length would be far more than 25 millimetres when mature.
Lobeck, A. Kohl (1939). Geomorphology; an Introduction to the Study of Landscapes (1st ed.) . University of California: McGraw Hill Book Company, Incorporated. pp. 431432. ASIN B002P5O9SC.
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Cleveland, L.R.; Hall, S.K.; Sanders, E.P.; Collier, J. (1934). "The Wood-Feeding Roach Cryptocercus, its own protozoa, and the symbiosis between protozoa and roach". Memoirs of the American Academy of Arts and Sciences. 17 (2): 185382. doi:10.1093/aesa/28.2.216.
McKittrick, F.A. (1965). "A contribution to the understanding of cockroach-termite affinities". Annals of the Entomological Society of America. 58 (1): 1822. doi:10.1093/aesa/58.1.18. PMID 5834489.
Ware, J.L.; Litman, J.; Klass, K.-D.; Spearman, L.A. (2008). "Relationships among the significant lineages of Dictyoptera: the impact of outgroup selection on dictyopteran tree topology". Systematic Entomology. 33 (3): 429450. doi:10.1111/j.1365-3113.2008.00424.x.
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a b Inward, D.; Beccaloni, G.; Eggleton, P. (2007). "Death of an arrangement: a comprehensive molecular phylogenetic study confirms that termites are eusocial cockroaches". Click This Link Biology Letters. 3 (3): 3315. doi:10.1098/rsbl.2007.0102. PMC 2464702. PMID 17412673.
Eggleton, P.; Beccaloni, G.; Inward, D. (2007). "Response to Lo et al.". Biology Letters. 3 (5): 564565. doi:10.1098/rsbl.2007.0367. PMC 2391203.
Ohkuma, M.; Noda, S.; Hongoh, Y.; Nalepa, C.A.; Inoue, T. (2009). "Inheritance and diversification of symbiotic trichonymphid flagellates by a common ancestor of termites and the cockroach Cryptocercus". Proceedings of the Royal Society B: Biological Sciences. 276 (1655): 239245. doi:10.1098/rspb.2008.1094. PMC 2674353. PMID 18812290.
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Lo, N.; Tokuda, G.; Watanabe, H.; Rose, H.; Slaytor, M.; Maekawa, K.; Bandi, C.; Noda, H. (June 2000). "Evidence from several gene sequences indicates that termites evolved from wood-feeding cockroaches". Current Biology. 10 (13): 801814. doi:10.1016/S0960-9822(00)00561-3. PMID 10898984.
Grimaldi, D.; Engel, M.S. (2005). Evolution of the insects (1st ed.) . Cambridge: Cambridge University Press. p. 237. ISBN 978-0-521-82149-0.
Klass, K.D.; Nalepa, C.; Lo, N. (2008). "Wood-feeding cockroaches as models for termite evolution (Insecta: Dictyoptera): Cryptocercus vs. Parasphaeria website here boleiriana". Molecular Phylogenetics & Evolution. 46 (3): 809817. doi:10.1016/j.ympev.2007.11.028. PMID 18226554.