基于INSGA-Ⅱ考虑混合时间窗的医院诊疗设备机会维护策略研究

      Research on Multi-Objective Opportunity Maintenance Strategy of Diagnostic Equipment Considering Mixed Time Windows Based on INSGA-Ⅱ

      • 摘要:
        目的 针对医院大型诊疗设备维护成本高、停机影响患者诊疗且效率低的问题,构建一种更贴合临床实际的维护策略。
        方法 首先,分析诊疗设备维护在患者安全、设备质控及停机影响等方面的特殊性,构建考虑设备性能衰退的单部件故障率演化模型。其次,引入由软、硬时间窗形成的混合时间窗机制,以模拟临床维护时间选择的灵活性及维护节点偏移带来的风险与成本;在此基础上,建立以最低化预防性维护成本、最低化机会维护成本和最大程度改善有效役龄为目标的多目标机会维护优化模型。
        结果 用改进后的非支配排序遗传算法(INSGA-Ⅱ)求解模型;相较于传统方法,该模型能有效减少设备停机次数,优化后的方案平均维护间隔延长,理论上可增加设备的可用时间。
        结论 该模型能在保障设备可靠性的同时,兼顾经济性与临床可用性,为医院医学工程部门制定科学的设备维护计划提供决策支持。

         

        Abstract:
        Objective To address the issues of high maintenance costs, low efficiency, patient care disruption due to equipment downtime, and low maintenance efficiency in large-scale hospital diagnostic equipment, this study aims to develop a maintenance strategy that is more aligned with actual clinical practices.
        Methods First, the specific characteristics of diagnostic equipment maintenance in terms of patient safety, equipment quality control, and downtime impact are analyzed, and a single-component failure rate evolution model that accounts for equipment performance degradation is constructed. Second, a mixed time window mechanism consisting of soft and hard time windows is introduced to simulate the flexibility of clinical maintenance scheduling and the risks and costs associated with maintenance node deviations. On this basis, a multi-objective opportunistic maintenance optimization model is established, aiming to minimize preventive maintenance costs and opportunistic maintenance costs, while maximizing the improvement in effective age.
        Results An improved non-dominated sorting genetic algorithm Ⅱ (INSGA-Ⅱ) is employed to solve the model. Compared with traditional methods, the proposed model can effectively reduce the frequency of equipment downtime, extend the average maintenance interval in the optimized scheme, and theoretically increase equipment availability.
        Conclusion The proposed model can ensure equipment reliability while balancing economic efficiency and clinical applicability, providing decision-making support for hospital medical engineering departments to formulate scientific equipment maintenance plans.

         

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