# Architected Porosity Informed by Real-World Data for More-Than-Human Thermal Comfort Page: https://stenobird.com/podcast/cdfam-computational-design-symposium-7077587/architected-porosity-informed-by-real-world-data-for-more-than-human-thermal-comfort Text version: https://stenobird.com/podcast/cdfam-computational-design-symposium-7077587/architected-porosity-informed-by-real-world-data-for-more-than-human-thermal-comfort.md Podcast: [CDFAM Computational Design Symposium](https://stenobird.com/podcast/cdfam-computational-design-symposium-7077587) Published: 2026-09-12T22:00:41+00:00 Episode link: https://www.designforam.com/p/architected-porosity-informed-by Audio file: https://api.substack.com/feed/podcast/215419161/dfbb1a6e17a639e7bce9d0625d736911.mp3 Processing state: not_requested JSON: https://stenobird.com/v1/public/podcasts/cdfam-computational-design-symposium-7077587/episodes/architected-porosity-informed-by-real-world-data-for-more-than-human-thermal-comfort Duration seconds: 1141 ## Resource CDFAM Computational Design Symposium — Barcelona 2026 Maria Claudia Valverde Rojas · University of Stuttgart, IntCDC This presentation introduces a design and research framework that integrates geometry generation with real-world climatic and ecological data to support more-than-human thermal comfort in the exterior of building envelopes. Over the past two years, I have developed architected porous cellular structures, periodic and non-periodic, based on adaptive density minimal surfaces (ADMS) and triply periodic minimal surfaces (TPMS). These structures serve as protective envelopes for nesting tubes used by cavity-nesting wild bees. The novelty of this work lies not in the digital modelling itself, but in demonstrating how pore size and spatial gradients can be tuned to buffer heat threats inside nesting cavities, and how these porous morphologies behave under real outdoor conditions. Full-scale and small-scale prototypes were installed on real building settings, where they were exposed to solar radiation, diurnal temperature swings, summer heat events and varying humidity. Continuous monitoring revealed how these structures process and respond to environmental information, delaying heat peaks, modulating temperature transfer, and interacting with passive evaporative cooling strategies. In parallel, wild bee occupation of the prototypes provided biological feedback, confirming which geometries are perceived as suitable nesting habitats. Bringing together digital modelling, outdoor performance testing and ecological observation, this research proposes a design approach that situates building envelopes as active interfaces capable of supporting more-than-human thermal comfort in urban environments. Links Talk page with full transcript Watch the talk on YouTube Cite th… ## Actions - request_transcript: `POST https://stenobird.com/v1/public/podcasts/cdfam-computational-design-symposium-7077587/episodes/architected-porosity-informed-by-real-world-data-for-more-than-human-thermal-comfort/transcription-requests` — Idempotently request low-priority transcript generation for this episode. - read_markdown: `GET https://stenobird.com/podcast/cdfam-computational-design-symposium-7077587/architected-porosity-informed-by-real-world-data-for-more-than-human-thermal-comfort.md` — Read the agent-friendly Markdown representation of this episode resource. A page view does not enqueue transcription. Agents should invoke `request_transcript` explicitly when they need this episode processed. ## Transcript Full transcripts are not published on public pages unless there is a clear rights basis.