Scoculi de Lira Gilvana, Severo Ihana Aguiar, Ferraz Fernando Augusto, Costa Iago Gomes, Guimarães Matheus Murmel, Zattoni Ingrid Fátima, Bianchini Luiz Fernando, Vargas José Viriato Coelho, Taher Dhyogo Miléo, Mariano André Bellin
Graduate Program in Engineering and Material Science, Federal University of Paraná (PIPE/UFPR), Curitiba 81531-980, Brazil.
Sustainable Energy Research and Development Center, Federal University of Paraná (NPDEAS/UFPR), Curitiba 81531-990, Brazil.
Microorganisms. 2025 Jul 4;13(7):1583. doi: 10.3390/microorganisms13071583.
The microalga has emerged as a promising candidate for biotechnological and industrial applications due to its rapid growth, resilience under diverse environmental conditions, and potential for bioactive compound production. This study presents a multiparametric characterization of dry biomass cultivated in patented industrial-scale photobioreactors, integrating thermochemical, elemental, antioxidant, and protein analyses. Proximate and ultimate analyses were conducted to assess fuel potential, revealing favorable volatile matter (VM = 64.80-72.44%) and fixed carbon (FC = 15.77-21.23%) contents. The HHV (18.32-22.75 MJ·kg) and LHV (16.86-21.24 MJ·kg) confirmed the biomass as a viable candidate for solid biofuel. The elemental composition provided the total nitrogen values, subsequently used to estimate the protein content via both the Kjeldahl and Dumas methods, with results ranging from 36.66% to 40.02%, in line with the literature. Despite the absence of detectable antioxidant activity under the tested DPPH conditions, the biomass demonstrated a robust nutritional profile and energy potential. These findings support the industrial relevance of biomass, particularly for applications targeting sustainable protein sources and bioenergy solutions.
微藻因其生长迅速、在多种环境条件下具有韧性以及具有生产生物活性化合物的潜力,已成为生物技术和工业应用中一个有前景的候选者。本研究对在专利工业规模光生物反应器中培养的干生物质进行了多参数表征,整合了热化学、元素、抗氧化剂和蛋白质分析。进行了近似分析和元素分析以评估燃料潜力,结果显示挥发性物质含量良好(VM = 64.80 - 72.44%),固定碳含量也不错(FC = 15.77 - 21.23%)。高位发热量(HHV = 18.32 - 22.75 MJ·kg)和低位发热量(LHV = 16.86 - 21.24 MJ·kg)证实该生物质是固体生物燃料的可行候选者。元素组成提供了总氮值,随后通过凯氏定氮法和杜马斯法用于估算蛋白质含量,结果在36.66%至40.02%之间,与文献一致。尽管在测试的DPPH条件下未检测到抗氧化活性,但该生物质显示出强大的营养成分和能源潜力。这些发现支持了该生物质在工业上的相关性,特别是对于以可持续蛋白质来源和生物能源解决方案为目标的应用。