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基于变工况碳流模型的综合能源园区源-荷双侧协同优化OA

Source-Load Bilateral Coordination Optimization of Park-Level Integrated Energy System Based on Off-Design Carbon Flow Model

中文摘要英文摘要

综合能源园区的优化调度对提升能源利用率和实现低碳化运行具有重要意义.然而,传统的优化研究对能源转换设备效率模型的线性化假设难以准确反映设备实际变工况运行特性.此外,在用能碳排放计量方面,碳排放流理论的提出为负荷侧碳责任追溯提供了方法论基础.但鲜有研究考虑设备变工况特性对系统碳流计算的动态影响机制.为此,该文提出一种基于设备变工况碳流模型的系统源-荷双侧协同优化方法.首先,建立考虑负载率和温度影响的能源转换设备变工况碳流模型,精确表征设备变工况运行情况下系统的碳排放动态特性;其次,提出融合能源生产价格和碳价格的能碳耦合动态定价策略,进而构建系统源-荷双侧协同优化调度模型,通过线性化处理将模型转换为混合整数线性规划问题,采用 Gurobi 求解器实现高效求解;最后,通过算例分析,验证了所提方法在提升系统运行经济性和环境友好性方面的优势.

The efficient and low-carbon operation of park-level integrated energy systems is crucial for supporting energy transition and carbon reduction objectives.Traditional scheduling methods often rely on simplified constant-efficiency models for energy conversion equipment,which fail to capture their actual performance under varying loads and ambient conditions.Furthermore,although carbon emission flow theory provides a viable approach for allocating carbon responsibility on the load side,the dynamic coupling between equipment off-design characteristics and system-level carbon flow remains insufficiently studied.This paper proposed a novel source-load collaborative optimization framework based on an off-design carbon flow model. First,we developed detailed off-design efficiency models for key energy conversion devices.The efficiency of the absorption chiller was represented as a fifth-order polynomial function of its load rate,while the electric chiller and heat pump were modeled with efficiency curves that depend on ambient temperature.The combined heat and power unit adapted to different system conditions by adjusting its thermoelectric ratio.To balance modeling accuracy with computational efficiency,nonlinear efficiency relationships were piecewise linearized using Special Ordered Sets of type 2,transforming the overall problem into a mixed-integer linear programming model.Based on the carbon flow conservation principle,a variable-condition carbon flow model was established,incorporating equipment operational characteristics.The model also integrated energy storage cycles to track dynamic carbon footprints and achieved precise allocation of load-side carbon responsibilities. A dynamic carbon-energy-coupled pricing strategy was introduced to enhance source-load coordination.The pricing mechanism comprises two components:energy production cost and carbon emission cost.The former reflects operational and maintenance expenses under different scheduling strategies,while the latter internalizes emission costs based on the marginal carbon flow density of consumed energy.A bi-level optimization model was constructed for source-load interaction.The upper level minimizes the total cost of the system operator,and the lower level minimizes users'energy purchase and comfort costs.Considering the cost of energy comfort can avoid significant deviations in energy consumption behavior caused by excessive demand response from users.The model was linearized and solved using the Gurobi solver.Additionally,an energy-carbon security domain is defined to ensure operational feasibility under carbon and energy constraints. Finally,the effectiveness of the proposed method in improving the economy and environmental friendliness of the system is verified by a case study.Under two time-of-use electricity price schemes,the approach achieves total cost reductions of 18.7%and 19.7%,respectively,compared to conventional constant-efficiency models without demand response.The off-design modeling optimizes energy use according to ambient conditions and load requirements,fully leveraging the complementary advantages of multi-energy integration.The incentive-based demand response model shows good adaptability across varying load conditions,effectively enhancing the low-carbon operation and economic efficiency of the system.This study provides a practical decision-making tool for achieving low-carbon,economical,and secure operation in integrated energy parks.

赵黎媛;李辉;张献;闵春华;陈海文

智能配用电设备与系统全国重点实验室(河北工业大学) 天津 300401||河北省电磁场与电器可靠性重点实验室(河北工业大学) 天津 300401智能配用电设备与系统全国重点实验室(河北工业大学) 天津 300401||河北省电磁场与电器可靠性重点实验室(河北工业大学) 天津 300401智能配用电设备与系统全国重点实验室(河北工业大学) 天津 300401||河北省电磁场与电器可靠性重点实验室(河北工业大学) 天津 300401河北工业大学能源与环境工程学院 天津 300401智能配用电设备与系统全国重点实验室(河北工业大学) 天津 300401||河北省电磁场与电器可靠性重点实验室(河北工业大学) 天津 300401

信息技术与安全科学

综合能源园区变工况碳流模型能碳耦合定价源-荷协同优化调度

Park-level integrated energy systemoff-design carbon flow modelenergy-carbon integrated pricessource-load synergyoptimal scheduling

《电工技术学报》 2026 (15)

5146-5161,16

河北省自然科学基金项目(E2025202270,F2024202005)、河北省教育厅科学研究项目(BJK2024151)、天津市自然科学基金项目(23JCQNJC01060)、国家自然科学基金面上项目(52477005)、河北省燕赵青年科学家项目(E2024202109)和河北省省级科技计划项目(21567605H)资助.

10.19595/j.cnki.1000-6753.tces.251139

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