自动化配送柜库存时间表和库存管理优化优化
Daniel Elkes1, Victoria Timmons2
1Virginia Commonwealth University Health System, Richmond, Virginia.
HCA healthcare journal of medicine
|July 11, 2025
概括
优化自动化药柜 (ADC) 减少了技术人员和护士在药物通行证期间的重叠. 这项质量改进项目在六个月内减少了38%的库存,提高了药物的可用性.
科学领域:
- 医疗保健操作 医疗保健操作
- 药房实践 在药房实践.
- 提高质量 提高质量
背景情况:
- 在社区医院的自动化药剂柜 (ADC) 每日补充导致技术人员在药物管理高峰时间重新补充.
- 这种工作流造成了患者护理的低效和潜在干扰.
- 启动了一项质量改进计划,以优化ADC补充流程.
研究的目的:
- 评估新的每隔一天补充ADCs计划的影响.
- 评估药物管理期间技术人员和护士重叠的变化.
- 为了确定对药物缺货事件的影响.
主要方法:
- 实施分阶段,每隔一天补充ADC,并得到专业技术人员的支持.
- 收集了关于ADC补充和发放交易的每月数据.
- 分析了库存数据,并计算了在高峰时段充电和发放活动之间的重叠比率.
主要成果:
- 在实施后的六个月内,每月的库存交易下降了38%.
- 药物发行模式保持不变.
- 重灌活动转移,早晨峰值重叠减少,但晚上峰值重叠增加.
结论:
- 优化的ADC补充过程显著改变了补充模式,减少了早晨峰值重叠.
- 变化没有影响分发习惯.
- 虽然库存量减少,但需要进一步的数据来充分评估新填充工艺的影响.
相关概念视频
Rational Dosage Regimen: Maintenance Dose and Loading Dose
4.4K
A rational dosage regimen considers a drug's pharmacokinetics, including its absorption, distribution, metabolism, and elimination from the body. By understanding these factors, the appropriate dosage can be determined, and the dosing schedule can be designed to achieve and maintain the desired therapeutic effect while minimizing adverse effects.
In most cases, drugs are administered repetitively or infused continuously to maintain a steady-state concentration in the body. At a steady...
In most cases, drugs are administered repetitively or infused continuously to maintain a steady-state concentration in the body. At a steady...
4.4K
Clearance Models: Compartment Models
132
Clearance measures drug elimination from the central compartment, including plasma and highly perfused organs like kidneys and liver. Its calculation varies depending on pharmacokinetic models and administration routes. The one-compartment model, for instance, portrays the pharmacokinetics of polar drugs such as aminoglycoside antibiotics administered intravenously and readily excreted in urine. In this case, clearance is influenced by the terminal rate constant (λz) and the total volume...
132
Compartment Models: Two-Compartment Model
6.0K
The two-compartment model divides the body into central and peripheral compartments to account for varying blood perfusion rates among organs and tissues, affecting drug distribution. The central compartment includes blood and highly perfused tissues with rapid drug distribution, while the peripheral compartment contains tissues with slower drug distribution. After a single IV bolus dose, the drug concentration is high in plasma and low in tissues. The drug distribution between compartments...
6.0K
Two-Compartment Open Model: IV Bolus Administration
713
The two-compartment model for intravenous (IV) bolus administration illustrates drug distribution in the body, subdividing it into central and peripheral compartments. This model operates on the concept of two-compartment kinetics. The drug's plasma concentration shows a bi-exponential decline following IV bolus administration, signaling the presence of two disposition processes: distribution and elimination.
The disparity between drug input and the sum of drug transfer rates between...
The disparity between drug input and the sum of drug transfer rates between...
713
Three-Compartment Open Model
446
The three-compartment open model is a pharmacokinetic model used to describe the distribution and elimination of drugs following extravascular administration. It comprises a central compartment representing the plasma and two peripheral compartments. The highly perfused peripheral compartment represents organs and tissues with a rich blood supply, such as the liver, kidneys, and lungs. The scarcely perfused peripheral compartment represents tissues with lower blood supply, such as adipose...
446
One-Compartment Open Model for IV Bolus Administration: Estimation of Elimination Rate Constant, Half-Life and Volume of Distribution
516
The one-compartment open model is a simplified approach used in pharmacokinetics to understand the distribution and elimination of a drug administered through an intravenous bolus. This model assumes rapid drug dispersal throughout the body and elimination using a first-order process. Key pharmacokinetic parameters, such as the elimination rate constant (k), half-life (t1/2), and the apparent volume of distribution (Vd), can be estimated from this model. The elimination rate is calculated...
516


