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New Energy Bound-Based Model for Optimal Charging of Electric Vehicles with Solar Photovoltaic Considering Low-Voltage Network's Constraints

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Mendeley Data2026-04-18 收录
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This directory contains the following datasets: SOURCE CODE Three scripts in Python are included to obtain the parameters of the whole network and test the proposed optimisation approach. SENSITIVITY MATRICES OF THE 905-NODES LOW-VOLTAGE FEEDER * dVcal.txt: voltage sensitivity matrix of household nodes due to the addition of load, expressed in V/kW * dVGen.txt: voltage sensitivity matrix of household nodes due to the addition of generation, expressed in V/kW * dLline.txt: loading sensitivity matrix of the feeder's main cable due to the addition of load, expressed in kW/kW * dLlineGen.txt: loading sensitivity matrix of the feeder's main cable due to the addition of generation, expressed in kW/kW * dStcal.txt: loading sensitivity matrix of the distribution transformer due to the addition of load, expressed in kW/kW * dStGen.txt: loading sensitivity matrix of the distribution transformer due to the addition of generation, expressed in kW/kW INITIAL VOLTAGES AND LOADING LEVELS These data were obtained for a test period of 30 hours with a 10-minute interval (i.e., 180 slots of time). * Vini.txt: time-series of voltage per phase for every household node obtained from the unbalanced quasi-dynamic power flow (QDPF) * PLini.txt: time-series of loading per phase for the feeder's main cable obtained from the unbalanced QDPF * STini.txt: time-series of loading per phase for the distribution transformer obtained from the unbalanced QDPF INPUT AND ADDITIONAL PARAMETERS Both folders "Winter parameters" and "Summer parameters" contain 100 text files, which correspond to each simulated scenario, numbered from one to one hundred for the following variables: * DtX.txt: the daily travelled distance of each EV for scenario X * e_arrX.txt: the arrival energy level of each EV for scenario X * taIntX.txt: the arrival time interval of each EV for scenario X * tpIntX.txt: the number of time intervals of each EV parked at home for scenario X * e_reqX.txt: the objective energy level of each EV for scenario X * xX.txt: the availability of each EV for scenario X, which is based on taIntX.txt and tpIntX.txt * eLowerX.txt: the lower energy boundary of each EV for scenario X * eUpperX.txt: the upper energy boundary of each EV for scenario X * PpvX.txt: time-series of PV power output for scenario X It is also included the IEEE LV network in PowerFactory V15.1 with a series of EVs and PVs. These have a time-series profile assigned from the proposed optimisation problem results. Additionally, the parameters and results obtained by comparing the addition of network constraints are included.

本目录包含如下数据集: ### 源代码 包含3个Python脚本,用于获取全网络参数并测试所提出的优化方法。 ### 905节点低压馈线灵敏度矩阵 * dVcal.txt:负荷新增时居民用户节点的电压灵敏度矩阵,单位为V/kW * dVGen.txt:新增发电出力时居民用户节点的电压灵敏度矩阵,单位为V/kW * dLline.txt:负荷新增时馈线主电缆的负载灵敏度矩阵,单位为kW/kW * dLlineGen.txt:新增发电出力时馈线主电缆的负载灵敏度矩阵,单位为kW/kW * dStcal.txt:负荷新增时配电变压器的负载灵敏度矩阵,单位为kW/kW * dStGen.txt:新增发电出力时配电变压器的负载灵敏度矩阵,单位为kW/kW ### 初始电压与负载水平 此类数据取自时长30小时、时间间隔为10分钟的测试周期(共180个时间槽): * Vini.txt:基于非平衡准动态潮流(quasi-dynamic power flow, QDPF)得到的各居民用户节点各相电压的时间序列数据 * PLini.txt:基于非平衡准动态潮流得到的馈线主电缆各相负载的时间序列数据 * STini.txt:基于非平衡准动态潮流得到的配电变压器各相负载的时间序列数据 ### 输入与附加参数 “冬季参数”与“夏季参数”两个文件夹均包含100个文本文件,分别对应编号1至100的模拟场景下的如下变量: * DtX.txt:场景X下每台电动汽车(Electric Vehicle, EV)的每日行驶里程 * e_arrX.txt:场景X下每台电动汽车的抵达时荷电水平 * taIntX.txt:场景X下每台电动汽车的抵达时间区间 * tpIntX.txt:场景X下每台电动汽车居家停靠的时间区间数量 * e_reqX.txt:场景X下每台电动汽车的目标荷电水平 * xX.txt:场景X下每台电动汽车的可用状态,该状态基于taIntX.txt与tpIntX.txt生成 * eLowerX.txt:场景X下每台电动汽车的荷电下限 * eUpperX.txt:场景X下每台电动汽车的荷电上限 * PpvX.txt:场景X下的光伏(Photovoltaic, PV)出力时间序列数据 本目录同时包含PowerFactory V15.1软件中的IEEE低压电网模型,其中集成了多台电动汽车与光伏系统,并为其分配了基于所提优化问题结果得到的时间序列曲线。此外,还包含了对比添加网络约束后得到的参数与计算结果。

创建时间:
2021-06-11
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