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一种基于指标驱动的方法来构建NGHA医院人员配置与工作量平衡的混合模型。

A Metrics-Driven Approach to Develop a Hybrid Model of Staffing and Workload Balance in the NGHA Hospitals.

作者信息

Al-Abdulkarim Meshari, Bakouri Mohsen, Alassaf Ahmad

机构信息

Department of Medical Equipment Technology, College of Applied Medical Science, Majmaah University, Majmaah, 11952, Saudi Arabia.

Department of Healthcare Technology Management, National Guard Health Affairs, Riyadh, Saudi Arabia.

出版信息

J Healthc Leadersh. 2025 Aug 26;17:395-416. doi: 10.2147/JHL.S532533. eCollection 2025.

Abstract

INTRODUCTION

Clinical Engineering Departments (CEDs) face growing challenges in managing rapidly evolving medical technologies and increasing equipment inventories under constrained budgets and limited human resources. These pressures often result in strained staffing capacity and imbalanced workload distribution. This study aimed to develop and validate a metrics-driven hybrid staffing model to optimize workforce allocation and improve workload efficiency across National Guard Health Affairs (NGHA) hospitals in Saudi Arabia.

METHODS

Five years of maintenance data were extracted from the Computerized Maintenance Management System (CMMS) and Oracle E-Business Suite. These data were analyzed to construct a hybrid staffing model that combined quantitative workload metrics with qualitative input from clinical engineering staff across 11 NGHA hospitals. Model validation included a detailed case study at King Abdullah Specialized Children's Hospital (KASCH), with comparisons to existing staffing models, including the Ottawa Hospital approach.

RESULTS

The case study revealed that the current staffing of 14 full-time equivalents (FTEs) at KASCH was insufficient, with the model projecting a requirement of 17 FTEs, indicating a 7.8% shortfall. Workload analysis showed highly uneven staff utilization rates, ranging from 20.8% to 71.5%. High-maintenance equipment, such as MRI machines, required up to 42.1 hours per device annually. The proposed hybrid model achieved more balanced staffing, predictive maintenance scheduling, and dynamic task assignments. Compared to traditional models, it demonstrated an estimated 25% cost savings, equipment uptime exceeding 95%, and improved workload distribution.

DISCUSSION

The hybrid staffing model provides a data-driven framework that integrates preventive and corrective maintenance requirements with staff input to support risk-based decisions. While validated within the NGHA system, the model is adaptable for healthcare facilities with different device profiles, regulatory pressures, and financial constraints. Successful implementation depends on strong institutional leadership, continuous data collection, and comprehensive staff training to ensure long-term sustainability and scalability.

摘要

引言

临床工程部门(CEDs)在管理快速发展的医疗技术以及在预算有限和人力资源受限的情况下增加设备库存方面面临着越来越大的挑战。这些压力常常导致人员配置能力紧张和工作量分配不均衡。本研究旨在开发并验证一种以指标为驱动的混合人员配置模型,以优化沙特阿拉伯国民警卫队卫生事务(NGHA)医院的劳动力分配并提高工作量效率。

方法

从计算机化维护管理系统(CMMS)和甲骨文电子商务套件中提取了五年的维护数据。对这些数据进行分析,以构建一个混合人员配置模型,该模型将定量工作量指标与沙特阿拉伯国民警卫队11家医院临床工程人员的定性意见相结合。模型验证包括在阿卜杜拉国王专科医院(KASCH)进行的详细案例研究,并与包括渥太华医院方法在内的现有人员配置模型进行比较。

结果

案例研究表明,KASCH目前14个全职等效人员(FTEs)的人员配置不足,模型预测需要17个FTEs,短缺7.8%。工作量分析显示人员利用率极不均衡,从20.8%到71.5%不等。高维护设备,如磁共振成像(MRI)机器,每台设备每年需要多达42.1小时的维护。所提出的混合模型实现了更均衡的人员配置、预防性维护计划安排和动态任务分配。与传统模型相比,它显示出估计25%的成本节约、设备正常运行时间超过95%以及工作量分配得到改善。

讨论

混合人员配置模型提供了一个数据驱动的框架,将预防性和纠正性维护要求与员工意见相结合,以支持基于风险的决策。虽然该模型在NGHA系统内得到了验证,但它适用于具有不同设备配置、监管压力和财务限制的医疗机构。成功实施取决于强有力的机构领导、持续的数据收集以及全面的员工培训,以确保长期的可持续性和可扩展性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/11a7/12399791/b874f80ee618/JHL-17-395-g0001.jpg

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