水泥和地聚合物稳定对热舒适性的影响——以布基纳法索一座土质建筑为例

IF 2.1 Q2 CONSTRUCTION & BUILDING TECHNOLOGY International Journal of Building Pathology and Adaptation Pub Date : 2023-03-28 DOI:10.1108/ijbpa-05-2022-0069
Ibrahim Neya, D. Yamegueu, A. Messan, Y. Coulibaly, Arnaud Louis Sountong-Noma Ouedraogo, Y. M. X. D. Ayité
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引用次数: 0

摘要

目的土坯的稳定性提高了土坯的机械强度,避免了土坯建筑因雨水的侵蚀。然而,稳定性会影响土块的热性能,从而影响其为居住者提供足够热舒适的能力。本文研究了水泥和地聚合物粘结剂对炎热干旱气候下压缩土建筑热舒适性的影响。设计/方法/方法测试单元位于布基纳法索的建筑平台上。该建筑由红土、水和粘合剂组成的压缩土块(CEB)制成。建筑的热模型是在EnergyPlus v9.0.1软件中实现的。通过经验验证,验证了所建立的热动力学模拟模型能否准确再现实际情况下的热行为。采用ASHRAE 55-2010自适应热舒适模型对热带长期干热条件下的热舒适进行评价。结果表明,尽管使用水泥或地聚合物粘结剂,CEB建筑仍保持高温。事实上,使用水泥和地聚合物粘合剂,在热和冷季节,每天分别有19小时和15小时不舒服。水泥掺量每增加1%,热季和冷季的舒适小时分别增加9.2 h和11.7 h。因此,舒适时间与建筑材料中水泥含量呈线性变化。此外,舒适时间与地聚合物率之间不存在线性关系。研究局限性/意义补充工作还应评估稳定对建筑物湿度水平的影响。事实上,土材料对室外湿度非常敏感,即使在ASHRAE自适应热舒适模型中没有考虑室内湿度对热舒适的影响。实际意义本研究肯定有助于在具有类似气候条件的国家更好地评估粘土潜力。社会意义使用地聚合物粘结剂是替代水泥粘结剂的一种合适的生态选择。值得一提的是,夜间舒适度可以通过自然通风等被动策略来提高。大多数CEB材料稳定性分析,包括水泥和地聚合物,主要是在实验室规模上进行研究,而很少在建筑规模上进行研究。此外,粘结剂用量对水泥和地聚合物建筑热工性能的影响尚未得到评估。本文通过评估水泥和地聚合物粘结剂对CEB住宅热舒适性的影响来填补这一知识空白。
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Effect of cement and geopolymer stabilization on the thermal comfort: case study of an earthen building in Burkina Faso
PurposeThe stabilization of earthen blocks improves their mechanical strength and avoids adobe construction erosion due to rainwater. However, the stabilization affects the thermal properties of the earthen blocks, and thus their capacity to provide adequate thermal comfort to occupants. This article examines the influence of cement and geopolymer binders on thermal comfort in compressed earthen buildings in hot and arid climates.Design/methodology/approachThe test cell is on the building platform in Burkina Faso. The building is made of compressed earth blocks (CEB) consisting of laterite, water and binder. The thermal models of the building were implemented in EnergyPlus v9.0.1 software. Empirical validation is used to check whether the model used for the thermal dynamic simulation can reproduce with accuracy the thermal behavior in a real situation. The adaptive thermal comfort model of ASHRAE 55–2010 was used to assess thermal comfort in long-term hot and dry tropical conditions.FindingsThe results show that the CEB buildings remain hot despite the use of cement or geopolymer binder. Indeed, with both cement and geopolymer binders, on a daily basis, 19 h and 15 h are uncomfortable during, respectively, the hot and cold seasons. An increase of 1% in cement content raises the comfort hours by 9.2 h during the hot season and 11.7 h during the cold season. Hence, the comfort time varies linearly with the cement content in the building material. Moreover, there is no linear relationship between comfort time and geopolymer rate.Research limitations/implicationsComplementary work should also assess the influence of stabilization on building humidity levels. In fact, earthen materials are very sensitive to outdoor humidity and indoor humidity affects thermal comfort even if it is not taken into account in the ASHRAE adaptive thermal comfort model.Practical implicationsThe present study will certainly contribute to a better valorization of clay potential in countries with similar climatic conditions.Social implicationsThe use of geopolymer binder is a suitable ecological option to replace the cement binder. It is important to mention that nighttime comfort can be increased through passive strategies such as natural ventilation.Originality/valueMost CEB material stabilization analyses including cement and geopolymer ones were mostly investigated at the laboratory scale and less at the building scale. Also, the influence of the binder rate on the thermal performance of buildings made of cement and geopolymer has not yet been assessed. This paper fills this gap of knowledge by assessing the impact of cement and geopolymer binder rates on the thermal comfort of CEB dwellings.
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期刊介绍: The International Journal of Building Pathology and Adaptation publishes findings on contemporary and original research towards sustaining, maintaining and managing existing buildings. The journal provides an interdisciplinary approach to the study of buildings, their performance and adaptation in order to develop appropriate technical and management solutions. This requires an holistic understanding of the complex interactions between the materials, components, occupants, design and environment, demanding the application and development of methodologies for diagnosis, prognosis and treatment in this multidisciplinary area. With rapid technological developments, a changing climate and more extreme weather, coupled with developing societal demands, the challenges to the professions responsible are complex and varied; solutions need to be rigorously researched and tested to navigate the dynamic context in which today''s buildings are to be sustained. Within this context, the scope and coverage of the journal incorporates the following indicative topics: • Behavioural and human responses • Building defects and prognosis • Building adaptation and retrofit • Building conservation and restoration • Building Information Modelling (BIM) • Building and planning regulations and legislation • Building technology • Conflict avoidance, management and disputes resolution • Digital information and communication technologies • Education and training • Environmental performance • Energy management • Health, safety and welfare issues • Healthy enclosures • Innovations and innovative technologies • Law and practice of dilapidation • Maintenance and refurbishment • Materials testing • Policy formulation and development • Project management • Resilience • Structural considerations • Surveying methodologies and techniques • Sustainability and climate change • Valuation and financial investment
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