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通过新型腔室系统对与行业相关的黑水虻进行全面生物转化特性分析。

Comprehensive industry-relevant black soldier fly bioconversion characterisation by a novel chamber system.

作者信息

Fuhrmann A, Gold M, Lau Heckmann L H, Pedersen P, Shakhnovich K, Chu C X, Haberkorn I, Puniamoorthy N, Mathys A

机构信息

ETH Zurich, Laboratory of Sustainable Food Processing, Schmelzbergstrasse 9, 8092, Zurich, Switzerland; Singapore-ETH Centre,1 Create Way, 138602, Singapore.

ETH Zurich, Laboratory of Sustainable Food Processing, Schmelzbergstrasse 9, 8092, Zurich, Switzerland; Singapore-ETH Centre,1 Create Way, 138602, Singapore.

出版信息

Waste Manag. 2025 Feb 1;193:409-418. doi: 10.1016/j.wasman.2024.12.016. Epub 2024 Dec 24.

Abstract

Black soldier fly larvae (BSFL) efficiently convert biowaste into valuable animal feed. Sustainable and reliable bioconversion is desirable to achieve optimal economic and environmental outcomes. Thus, science and industry require an accessible research platform to study complex bioconversion processes under conditions mirroring industrial-scale settings. In this study, industry-relevant respiration chambers were designed, tested, and replicated for BSFL feeding trials. Each open-circuit chamber housed three industrial rearing crates. The substrate/frass and air temperature, mass change, NH and CO emissions, and relative humidity were measured. The design was validated for CO recovery, airtightness, airflow homogeneity, and BSFL performance using firstly, a uniform control substrate and secondly, uniform food waste across four parallel chambers. In a third trial, the composition of food waste was varied across parallel chambers to detect differences in metabolic processes. For trials using uniform substrates, low variability across chambers in performance parameters confirmed the reproducibility and comparability of the design (e.g. bioconversion rate: <1%, final larval mass: ≤2 mg, standard deviations, dry matter based). In contrast, the trial with varying food waste compositions showed a strong effect on average substrate/frass temperature (e.g. 31.5 °C vs 41.8 °C) and final dry larval mass (e.g. 67 mg vs 40 mg). This is the first study to systematically assess heat generation directly from heterogeneous food waste, a crucial parameter for efficient BSFL bioconversion. These chambers provide an opportunity for science and industry to thoroughly assess and understand the metabolic bioconversion characteristics. The findings are key for the optimisation of sustainable bioconversion processes.

摘要

黑水虻幼虫能有效地将生物废弃物转化为有价值的动物饲料。实现可持续且可靠的生物转化对于达成最佳经济和环境效益而言是十分必要的。因此,科学界和产业界需要一个可利用的研究平台,以便在模拟工业规模的条件下研究复杂的生物转化过程。在本研究中,设计、测试并复制了与产业相关的呼吸室用于黑水虻饲养试验。每个开路呼吸室容纳三个工业饲养箱。对底物/粪便和空气温度、质量变化、氨和二氧化碳排放以及相对湿度进行了测量。首先使用均匀的对照底物,其次在四个平行呼吸室中使用均匀的食物垃圾,对该设计在二氧化碳回收、气密性、气流均匀性和黑水虻性能方面进行了验证。在第三次试验中,平行呼吸室中食物垃圾的成分有所不同,以检测代谢过程中的差异。对于使用均匀底物的试验,各呼吸室性能参数的低变异性证实了该设计的可重复性和可比性(例如生物转化率:<1%,最终幼虫质量:≤2毫克,基于干物质的标准差)。相比之下,食物垃圾成分不同的试验对平均底物/粪便温度(例如31.5℃对41.8℃)和最终幼虫干质量(例如67毫克对40毫克)有显著影响。这是第一项系统评估直接来自异质食物垃圾的产热情况的研究,产热是黑水虻高效生物转化的关键参数。这些呼吸室为科学界和产业界全面评估和理解代谢生物转化特性提供了契机。研究结果对于优化可持续生物转化过程至关重要。

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