锡下流悬浮海绵反应堆具有影响绕行系统,可提高同时化-脱化效率
Shehani Sharadha Maheepala1, Masashi Hatamoto2, Takahiro Watari2
1Department of Civil Engineering and Bioengineering, Nagaoka University of Technology, Nagaoka 940-2188, Japan.
Bioresource technology
|January 22, 2026
概括
这项研究通过修改siphon下流悬浮海绵 (siphon DHS) 反应器来改善废水处理. 改进的设计增强了化和总去除,提供了一个具有成本效益的解决方案.
科学领域:
- 环境工程 环境工程
- 微生物学 微生物学
- 废水处理技术 废水处理技术
背景情况:
- 传统的siphon下流悬浮海绵 (siphon DHS) 反应堆由于有氧体积不足而导致化效率受到限制.
- 增强的脱化需要特定的条件,这些条件通常无法满足标准的DHS设计.
研究的目的:
- 为了提高 DHS 吸管反应堆中化和脱化速率.
- 通过反应器修改和影响绕道系统来增强同时化-脱 (SND).
- 为了评估优化反应器中的成本效益和微生物社区转移.
主要方法:
- 修改了 DHS 气管反应堆体积比为 50:25:25 (有氧:无氧:无氧).
- 整合了20%的影响绕道系统到无氧区.
- 进行微生物分析以评估细菌种群的变化,特别是脱剂.
主要成果:
- 实现了76%的化和20%的总 (TN) 去除,比传统的DHS提高了三倍.
- 保持了86%的可溶性化学氧需求 (sCOD) 清除.
- 观察到脱剂的丰富度增加 (科蒙纳达科: 14%) 和酸盐积累减少.
- 证明了去除的44%的成本降低.
结论:
- 经过修改的 DHS 反应堆和影响绕道系统显著提高了去除效率.
- 改进的设计提供了一种可持续且具有成本效益的分散废水处理解决方案.
- 微生物群落的转移支持综合系统的增强性能.
相关概念视频
Improving Translational Accuracy
14.1K
Base complementarity between the three base pairs of mRNA codon and the tRNA anticodon is not a failsafe mechanism. Inaccuracies can range from a single mismatch to no correct base pairing at all. The free energy difference between the correct and nearly correct base pairs can be as small as 3 kcal/ mol. With complementarity being the only proofreading step, the estimated error frequency would be one wrong amino acid in every 100 amino acids incorporated. However, error frequencies observed in...
14.1K
Improving Translational Accuracy
3.6K
3.6K
Production Efficiency
18.2K
Net production efficiency (NPE) is the efficiency at which organisms assimilate energy into biomass for the next trophic level. Due to low metabolic rates and less energy spent on thermoregulatory processes, the NPE of ectotherms (cold-blooded animals) is 10 times higher than endotherms (warm-blooded animals).
18.2K
Trophic Efficiency
25.1K
Trophic level transfer efficiency (TLTE) is a measure of the total energy transfer from one trophic level to the next. Due to extensive energy loss as metabolic heat, an average of only 10% of the original energy obtained is passed on to the next level. This pattern of energy loss severely limits the possible number of trophic levels in a food chain.
25.1K
Efficiency of The Carnot Cycle
3.6K
The hypothetical Carnot cycle consists of an ideal gas subjected to two isothermal and two adiabatic processes. Since the internal energy of an ideal gas depends only on its temperature, which is the same before and after the completion of the Carnot cycle, there is no change in its internal energy. Hence, using the first law of thermodynamics, the total heat exchanged by the ideal gas equals the total work done. Thus, we can quantify the efficiency of the Carnot cycle via the heat exchanged...
3.6K
Turnover Number and Catalytic Efficiency
20.4K
The turnover number of an enzyme is the maximum number of substrate molecules it can transform per unit time. Turnover numbers for most enzymes range from 1 to 1000 molecules per second. Catalase has the known highest turnover number, capable of converting up to 2.8×106 molecules of hydrogen peroxide into water and oxygen per second. Lysozyme has the lowest known turnover number of half a molecule per second.
Chymotrypsin is a pancreatic enzyme that breaks down proteins during digestion....
Chymotrypsin is a pancreatic enzyme that breaks down proteins during digestion....
20.4K


