西安交通大学动力工程多相流国家重点实验室,710049,西安
作者简介:许云童(1998—),男,博士生;
曹稳(通信作者),男,副研究员,硕士生导师。
收稿:2025-12-01,
网络首发:2026-06-24,
纸质出版:2026-09-10
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许云童, 于归源, 冯敏, 等. 碳酸氢钠体系中基于pH特征的聚球藻生长模型构建与验证[J]. 西安交通大学学报,2026,60 (9):197-207. https://doi.org/10.7652/xjtuxb202609019.
XU Yuntong, YU Guiyuan, FENG Min, et al. Growth-pH Coupling Mechanism and Prediction Model for
许云童, 于归源, 冯敏, 等. 碳酸氢钠体系中基于pH特征的聚球藻生长模型构建与验证[J]. 西安交通大学学报,2026,60 (9):197-207. https://doi.org/10.7652/xjtuxb202609019. DOI:
XU Yuntong, YU Guiyuan, FENG Min, et al. Growth-pH Coupling Mechanism and Prediction Model for
针对聚球藻培养过程中pH波动引发生长受限、生长状态难以实时精准预测的问题,提出了基于在线pH信号的多因子耦合生长预测模型。设置不同初始接种浓度(以730 nm波长下的光密度OD
730
表示,记为
A
(无量纲),其取值范围为0.1~1.3)、光照强度(14~181μmol·m
-2
·s
-1
)和碳酸氢钠物质的量浓度(25~125 mmol/L),监测聚球藻的生物量与pH动态变化数据;在无机碳形态转换机理分析基础上,采用Logistic模型定量表征生物量与pH的响应关系,并进一步构建多因子耦合生长预测模型。研究结果表明,生物量积累与培养液pH上升高度同步,生长限制主要由pH升高促使
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向
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转化,导致可利用无机碳不足引起;Logistic模型在15组条件下拟合优度
R
2
均大于0.98,拐点pH为9.5~9.8,且与碳源可利用性转折节点高度吻合;生长预测模型在两组独立实验中预测拟合优度
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分别为0.9879、0.8858,平均绝对误差
E
分别为0.0439、0.1181。营养代谢试验证实无机碳消耗与硝态氮消耗呈显著正相关;脂质的质量分数(以细胞干质量为基准)为13.0%~18.7%,脂肪酸以棕榈酸和棕榈油酸为主要组分,二者合计占总脂肪酸的75%~85%。经多目标优化得到最优培养条件为:光照强度为97μmol·m
-2
·s
-1
、初始接种浓度为0.1~0.4、碳酸氢钠物质的量浓度为25~50 mmol/L。该模型可依托现场pH在线监测,实现聚球藻培养过程精准预判与精细化调控。
To address the growth limitation caused by pH fluctuations during
Synechococcus
cultivation and the difficulty in accurate real-time prediction
a multifactor-coupled growth prediction model based on online pH signals is proposed.Experiments are conducted at different initial inoculation concentrations(expressed as optical density at 730 nm
OD
703
denoted by
A
ranging from 0.1 to 1.3)
light intensities(14—181 μmol·m
-2
·s
-1
)
and sodium bicarbonate concentrations(25—125 mmol/L)to obtain dynamic biomass and pH data.Based on an analysis of inorganic carbon speciation
a logistic model is used to quantify the biomass-pH relationship
and a multifactor-coupled growth prediction model is further established.It is shown that biomass accumulation is highly synchronized with the increase in culture-medium pH
and that growth limitation is mainly caused by the pH-driven conversion of
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to
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resulting in insufficient available inorganic carbon.
R
2
values above 0.98 are obtained by the Logistic model under all 15 conditions
with inflection-point pH values of 9.5—9.8
which closely correspond to the transition points of carbon-source availability.In two independent experiments
predicted determination coefficients
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values of 0.9879 and 0.8858 and mean absolute error
E
of 0.0439 and 0.1181 are obtained by the growth prediction model
respectively.A significant positive correlation between inorganic carbon consumption and nitrate-nitrogen consumption is confirmed by nutrient metabolism experiments.The dry cell mass-based lipid mass fraction ranges from 13.0% to 18.7%
and palmitic acid and palmitoleic acid are the main fatty acids
together accounting for 75%—85% of th
e total fatty acids.The optimal culture conditions are determined through multi-objective optimization as a light intensity of 97 μmol·m
-2
·s
-1
an initial inoculation concentration of 0.1—0.4
and a sodium bicarbonate concentration of 25—50 mmol/L.Accurate prediction and refined regulation of
Synechococcus
cultivation can be achieved using the model based on online pH monitoring.
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