Explorez tous les épisodes du podcast Wild engineers
| Titre | Date | Durée | |
|---|---|---|---|
| Ep 9 How Nature Prevents Systems from Being Ignored | 12 Aug 2026 | 00:04:42 | |
How economists in Ho Chi Minh city changed how we think about alerts in critical infrastructure after studying the Madagascan hissing cockroach. Function: Prevent systems from being ignored over time Biological model: Madagascan hissing cockroach and adaptive signalling Engineering translation: Adaptive hospital nurse-call alarm design Sources / further reading • Cobus V, Heuten W. To beep or not to beep? Evaluating modalities for multimodal ICU alarms. Multimodal Technologies and Interaction. 2019;3(1):15. https://share.google/uzCZzmFPXLXKPXT1n • Edworthy J. Medical audible alarms: a review. Journal of the American Medical Informatics Association. 2013;20(3):584–589. • Howell J, Knight V. Quieter nurse call system to reduce alarm noise in hospitals. Studies in Health Technology and Informatics. 2024;318:2–5. https://share.google/Phyj6HWFTmOpqKF9j • Rauland Australia. Reducing alarm fatigue in hospitals: a quieter approach with Concentric Care. 2024. https://share.google/tfZVygRKuuoGI8Ekm • Triet LM, Truong Thinh N. Mitigating Neural Habituation in Insect Bio-Bots: A Dual-Timescale Adaptive Control Approach. Biomimetics. 2026;11(1):13. https://share.google/mNyQxKVCIBkdsg4ZY Image credits • Cockroaches, Miskolci Állatkert via Miskolc Zoo • Hospital via Envato Written and produced by Melanie Farmer. Podcast: Wild engineers. For learning and inspiration. Music and production completed in Movavi 2026. Please validate any design application for technical use. | |||
| Ep 8 How Nature Distributes Energy Reliably | 05 Aug 2026 | 00:04:22 | |
How the US Department of Energy reduced power outage restoration time by about 50% by applying lessons from leaves. Function: Distribute energy reliably during disturbances Biological model: Leaf vein networks Engineering translation: Self-healing electrical networks / FLISR Sources / further reading • Brodribb TJ, Bienaime D, Marmottant P. Revealing catastrophic failure of leaf networks under stress. Proceedings of the National Academy of Sciences. 2016;113(17):4865–4869. https://share.google/mxCrrVx0PgH7WakAS • Pratt A, Engel D, Jain R, et al. Defining a Use Case for the ADMS Test Bed: Fault Location, Isolation, and Service Restoration. National Renewable Energy Laboratory; 2021. https://share.google/ITI5PCyETYRe897s4• Sack L, Dietrich EM, Streeter CM, Sanchez-Gomez D, Holbrook NM. Leaf palmate venation and vascular redundancy confer tolerance of hydraulic disruption. Proceedings of the National Academy of Sciences. 2008;105(5):1567–1572. https://share.google/QcJGtjSVPsGM3T8yQ • U.S. Department of Energy. Fault Location, Isolation, and Service Restoration Technologies Reduce Outage Impact and Duration. 2014. https://share.google/9NwdowaQxNDAWrKDg • U.S. Department of Energy. Final Smart Grid Investment Grant Program Report. 2016. https://share.google/1vdJ1eMX6gFfTZ134 Image credits • Leaves via Canva • Power station via Canva Written and produced by Melanie Farmer. Podcast: Wild engineers. For learning and inspiration. Music and production completed in Movavi 2026. Please validate any design application for technical use. | |||
| Ep 7 How Nature Moves Air Passively | 29 Jul 2026 | 00:04:35 | |
Discover the secret to the Swiss Re Building (nicknamed the Gherkin) in London of how to significantly reduce wind drag by learning from ocean sponges. Function: Move air passively Biological model: Venus’ flower basket sponge Engineering translation: 30 St Mary Axe / the Gherkin Sources / further reading • Adrian, B. 2001. Shape and Structure, From Engineering to Nature. Entropy. International and Interdisciplinary Journal of Entropy and Information Studies. 3:10:3390/e3050293.https://share.google/qYRGxubisZaDMYany • Foster + Partners. Environmental strategy for 30 St Mary Axe. 2004. https://share.google/v4TSidaU65MZQ29b4 • Pawlyn M. Biomimicry in Architecture. RIBA Publishing; 2011. https://share.google/fzrZ0OefoK2lfLZAV Image credits • Sponge with crab, NOAA Okeanos Explorer Program, Gulf of Mexico 2012 Expedition via Wikipedia • 30 St Mary’s Axe building full view via Wikimedia Written and produced by Melanie Farmer. Podcast: Wild engineers. For learning and inspiration. Music and production completed in Movavi 2026. Please validate any design application for technical use. | |||
| Ep 6 How Nature Manages Waste | 22 Jul 2026 | 00:04:29 | |
How cow’s stomachs inspired the design of a zero power, zero odour and zero chemical sewage treatment plant in India. Function: Manage waste Biological model: Cow stomach compartments and rumen microbiota Engineering translation: ECOSTP sewage treatment system Sources / further reading • Appels,L., Baeyens, J, Degrève,J,, & Dewil,R. 2008. Principles and potential of the anaerobic digestion of waste-activated sludge. Progress in Energy and Combustion Science. 34:6:755-781. https://doi.org/10.1016/j.pecs.2008.06.002. https://share.google/2RbH6WTvrTuxLynpr • Metcalf & Eddy. Wastewater Engineering: Treatment and Resource Recovery. 2014. https://share.google/Ma1khM8anLxRmGJFx • Perez, H. G., Stevenson, C. K., Lourenco, J. M., & Callaway, T. R. 2024. Understanding Rumen Microbiology: An Overview. Encyclopedia, 4(1), 148-157. https://doi.org/10.3390/encyclopedia4010013. https://share.google/Eisaa8O3MCLEOCXi9 • Van Soest PJ. Nutritional Ecology of the Ruminant. Cornell University Press; 1994. https://share.google/O2hWmaSlyaRyjR3q8 • Xu Q, et al. Gut Microbiota and Their Role in Health and Metabolic Disease of Dairy Cow. Frontiers in Nutrition. 2021;8:701511. https://share.google/YxxwNM4aQVjtCzO81 Image credits • Cow diagram, illustration adapted from Graham's family Dairy • ECOSTP Antharam, via Organo Written and produced by Melanie Farmer. Podcast: Wild engineers. For learning and inspiration. Music and production completed in Movavi 2026. Please validate any design application for technical use. | |||
| Ep 5 How Nature Moves Fluids | 15 Jul 2026 | 00:04:22 | |
How a city in California stabilised chlorine levels in water 87% faster than conventional methods, inspired by seashells. Function: Move fluids Biological model: Logarithmic spirals and vortices in nature Engineering translation: Pax Impeller® and the Thousand Oaks water case study Sources / further reading • Bejan A. The Physics of Life: The Evolution of Everything. 2016. https://share.google/OjFZVJZpxo3F58JKC • City of Thousand Oaks case study on Pax mixer performance. https://cleanwater1.com/pax-mixers • Harman J. The Shark’s Paintbrush. 2000. https://share.google/XtwGscrlkDAgCI4xx • Pax Scientific. Innovative Technology: How the Pax Impeller Works. https://paxscientific.com/water-tech • Vogel S. Life in Moving Fluids. Princeton University Press; 1994. https://share.google/MlCCBYrLMDXvyaqSa Image credits • Spiral shell via Canva • Impeller via Pax Scientific via AskNature.org Written and produced by Melanie Farmer. Podcast: Wild engineers. For learning and inspiration. Music and production completed in Movavi 2026. Please validate any design application for technical use. | |||
| Ep 4 How Nature Maximises Strength with Minimal Material | 08 Jul 2026 | 00:04:10 | |
How Airbus cut 1,000 kilos of weight from each A380 airplane, making them stronger in the process, by learning from bone structures. Function: Maximise strength with minimal material Biological model: Trabecular bone Engineering translation: Topology optimisation in aircraft structures Sources / further reading • Elelwi M, Botez RM, Dao TM. Structural Sizing and Topology Optimization Based on Weight Minimization of a Variable Tapered Span-Morphing Wing for Aerodynamic Performance Improvements. Biomimetics. 2021;6(4):55. https://share.google/kAtasd2IGKmRoOvYy • Zhu JH, Zhang WH, Xia L. Topology Optimization in Aircraft and Aerospace Structures Design. Archives of Computational Methods in Engineering. 2016;23:595–622. https://share.google/fHZNqODNsBG8s7A9g Image credits • Bone via Canva• A380, Keta via Wikimedia Written and produced by Melanie Farmer. Podcast: Wild engineers. For learning and inspiration. Music and production completed in Movavi 2026. Please validate any design application for technical use. | |||
| Ep 3 How Nature Protects from Fire | 30 Jun 2026 | 00:04:40 | |
How Banksia shrubs inspired researchers to develop a solution where pine wood resists ignition even at 1008C. Function: Protect from fire Biological model: Oldman Banksia (Banksia serrata) follicles Engineering translation: Heat-activated self-sealing material concepts tested at the Max Planck Institute Sources / further reading • Australian Plants Society. Banksia serrata. https://share.google/qAj9SpOmx1eZ5Z11o • Huss JC, et al. Temperature-induced self-sealing capability of Banksia follicles. 2018. https://share.google/111FL5JbKTnukWWM3 • Huss JC, et al. Protecting offspring against fire: Lessons from Banksia seed pods. 2019. https://share.google/w72njJAFMxvELUjEi Image credits • Banksia pod via Canva • Max Planck Institute, Jörg Abendrot via Wikimedia Written and produced by Melanie Farmer. Podcast: Wild engineers. For learning and inspiration. Music and production completed in Movavi 2026. Please validate any design application for technical use. | |||
| Ep 2 How Nature Reduces Acoustic Impact | 30 Jun 2026 | 00:03:10 | |
How Kingfisher’s beaks changed the way we design fast trains cutting noise by up to 15 decibels. Function: Reduce acoustic impact Biological model: Kingfisher beak Engineering translation: Shinkansen bullet train nose redesign Sources / further reading • Biomimicry Institute. Kingfisher-inspired Shinkansen design. https://share.google/mzcDAhsClBNQKl8pV • Crandell KE, Howe RO, Falkingham PL. Repeated evolution of drag reduction at the air-water interface in diving kingfishers. Journal of the Royal Society Interface. 2019;16(154):20190125. https://share.google/3V3kDtxWmdsUXwgWw • Kikuchi, Katsuhiro & Iida, M. & Fukuda, T.. (2011). Optimization of Train Nose Shape for Reducing Micro-Pressure Wave Radiated from Tunnel Exit. Low Frequency Noise, Vibration and Active Control. 30. 1-19. 10.1260/0263-0923.30.1.1. https://share.google/6Otr8SZap2VH4ZkcB • Fish FE, Lauder GV. Passive and active flow control by swimming fishes and mammals. Annual Review of Fluid Mechanics. 2006;38:193–224. https://share.google/fYrmvrEYY77IzQdz8 • Lovvorn JR, Jones DR. Body mass, volume, and buoyancy of some aquatic birds, and their relation to locomotor strategies. Canadian Journal of Zoology. 1991;69(11):2888–2892. https://share.google/R7gVqSL4GfjcE0JLM • Vogel S. Life in Moving Fluids: The Physical Biology of Flow. Princeton University Press; 1994. https://share.google/00fvyNg5U4vymwNQW Image credits • Kingfisher via Envato • Bullet train via Canva Written and produced by Melanie Farmer. Podcast: Wild engineers. For learning and inspiration. Music and production completed in Movavi 2026. Please validate any design application for technical use. | |||
| Ep 1 How Nature Regulates Temperature | 30 Jun 2026 | 00:03:57 | |
Discover how termites inspired an 82% drop in electricity use in the Australian-based CH2 building by designing smart chimneys just like termites. Function: Regulate temperature Biological model: African termite mounds Engineering translation: CH2 (Council House 2), Melbourne Sources / further reading • Arup. Biomimicry and the Built Environment. 2013. https://share.google/kBObCUIJzVvhhv95N • City of Melbourne. Council House 2: A Case Study in Sustainable Design. 2006. https://share.google/3upSbenEaGzMV8jyf • Ocko SA, et al. Solar-powered ventilation of African termite mounds. Science. 2017;357(6354):1246–1249. • Pearce, M. Council House 2 (CH2), Melbourne. https://share.google/42wyEva35hRoCvrmq • Turner JS. The Extended Organism: The Physiology of Animal-Built Structures. Harvard University Press; 2000. https://share.google/hR0qVlViZJPUr0Nx5 Image credits • Termite via Canva • CH2 building, Nick Carson via Wikimedia Written and produced by Melanie Farmer. Podcast: Wild engineers. For learning and inspiration. Music and production completed in Movavi 2026. Please validate any design application for technical use. | |||