Lean Management Framework in Healthcare: Insights and Achievements on Hazardous Medical Waste
Abstract
1. Introduction
2. Literature Review on HMW Management
2.1. Technological Advances in HMW Treatment
2.2. Operational Optimization and Lean Principles
2.3. Behavioral Dimensions and Staff Engagement
2.4. Policy, Regulation, and Sustainability Frameworks
3. Materials and Methods
4. Results
5. Discussions
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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First Author | Year | Contributions | Reference |
---|---|---|---|
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Pillai et al. | 2025 | Neutrosophic decision method applied to improve biomedical waste disposal under uncertainty. | [20] |
Ebrahimzadehsarvestani et al. | 2025 | Highlights gaps in medical waste research; proposes tech, policy, and awareness strategies. | [21] |
Dsouza et al. | 2025 | Promotes integrated sterilization, pyrolysis, composting, and digital waste platforms. | [22] |
Soyler et al. | 2024 | Co-word analysis shows rising trends in pyrolysis and circular technologies in waste studies. | [23] |
Fang et al. | 2024 | Ash from incinerated medical waste used to degrade antibiotics through activation of peroxydisulfate. | [24] |
Bułkowska et al. | 2024 | Co-word analysis shows rising trends in pyrolysis and circular economy in waste studies. | [25] |
Kharmawphlang et al. | 2024 | Links waste to energy tech to waste traits and country income; essential amid urbanization. | [26] |
Zhou et al. | 2024 | Proposes a combined process of plasma gasification and Fischer–Tropsch synthesis to convert medical waste and biomass waste into synthetic fuels. | [27] |
Shen et al. | 2024 | Optimizes medical waste transport using advanced route and location algorithms. | [28] |
Suthagar et al. | 2024 | Proposes circular waste system with drone deliveries and reverse logistics. | [29] |
Kumari et al. | 2024 | Recycles medical plastic into carbon dots for sustainable fluorescent markers. | [30] |
Hu et al. | 2024 | Applies pyrolysis and gasification to treat infectious HMW. | [31] |
Ji et al. | 2024 | Evaluates waste technologies for urban-scale sustainable healthcare solutions. | [32] |
Liu et al. | 2024 | Improves waste crushing through parameter optimization in processing. | [33] |
Bhandari et al. | 2023 | Reviews modern sterilization methods like plasma and ozone for hospitals. | [34] |
Balaji et al. | 2023 | Uses sodium-ion supercapacitors made from recycled medical waste for sustainable energy. | [35] |
Mehmood et al. | 2023 | Presents microbial treatment of pharmaceutical waste as a cost-effective, eco-friendly option. | [36] |
Dri et al. | 2023 | Highlights advanced recycling like pyrolysis and bioremediation to recover hard-to-recycle waste. | [37] |
Baralla et al. | 2023 | Introduces blockchain to improve traceability and efficiency in waste management systems. | [38] |
Chandra et al. | 2023 | Discusses low-cost biological methods for degrading hazardous healthcare waste. | [39] |
Matalkah et al. | 2023 | Transforms HMW ash into concrete additives to enhance durability and reduce waste impact. | [40] |
Li et al. | 2023 | Explores plasma gasification for converting medical waste into hydrogen and methanol fuels. | [41] |
Zhao et al. | 2023 | Combines biogas and waste valorization for zero-emission hydrogen fuel production. | [42] |
Keleş et al. | 2023 | Analyzes polymer-based HMW for energy recovery through thermal treatment methods. | [43] |
Alaedini et al. | 2023 | Analyzes waste gasification and catalyst design for hydrogen fuel and fuel cell use. | [44] |
Andooz et al. | 2023 | Reviews pyrolysis for resource recovery; notes cost and tech barriers to implementation. | [45] |
Bolan et al. | 2023 | Details environmental risks of toxic elements from incinerated medical waste. | [46] |
Çelik et al. | 2023 | Applies fuzzy multi-criteria evaluation to improve hospital waste management. | [47] |
Chu et al. | 2023 | Calls for policy support to scale green waste technologies despite high costs. | [48] |
Długosz-Lisiecka et al. | 2023 | Assesses radioactive waste in radiotherapy using beam energy modeling. | [49] |
Dong, et al. | 2023 | Evaluates heat recovery + gasification system for energy-efficient waste treatment. | [50] |
El-Saadony et al. | 2023 | Warns of leachate risks; supports pyrolysis, gasification, and detox methods. | [51] |
Kaur et al. | 2023 | Studies bacterial effects on strength and toxicity of ash-based concrete. | [52] |
Krishna et al. | 2023 | Stresses education and infrastructure gaps in managing HMW in developing regions. | [53] |
Kumar Mishra et al. | 2023 | Explores biochar from HMW as an eco-solution for soil and carbon capture. | [54] |
Kumar et al. | 2023 | Highlights emission control tech for incinerated waste ash. | [55] |
Lv et al. | 2023 | Proposes an integrated system that combines plasma gasification of medical waste, solid oxide fuel cells, supercritical carbon dioxide cycles, and desalination technologies. | [56] |
Manjunath et al. | 2023 | Explores use of incinerated ash in concrete to improve durability and reduce waste. | [57] |
Peng et al. | 2023 | Analyzes emission control and dioxin migration in medical waste incineration. | [58] |
Qin et al. | 2023 | Studies technical feasibility of gasifying medical waste with converter gas. | [59] |
Ramalingam et al. | 2023 | Uses thermal cracking to produce biofuels from plastic medical waste generated by personal protective equipment such as masks and gloves. | [60] |
Sančanin et al. | 2023 | Recommends improved HMW storage to prevent risks from hazardous substances. | [61] |
Sapkota et al. | 2023 | Compares disposal methods; promotes circular solutions like chemical recycling. | [62] |
Tan et al. | 2023 | Evaluates catalytic pyrolysis of medical plastic waste for fuel and chemical recovery. | [63] |
Tang et al. | 2023 | Applies pyrolysis and ash stabilization for sustainable plastic HMW management. | [64] |
Thakur et al. | 2023 | Combines chemical and oxidation methods to treat toxic medical waste in low-resource settings. | [65] |
Wang et al. | 2023 | Proposes biodegradable masks and stricter disposal regulations to address plastic pollution. | [66] |
Wu et al. | 2023 | Compares remediation methods for endocrine-disrupting compounds; calls for regulation and monitoring. | [67] |
Sepetis et al. | 2022 | Stresses public policy, green tech, and stakeholder collaboration for medical waste management. | [68] |
Quan et al. | 2022 | Promotes gasification and combustion integration to support the circular economy and renewable energy. | [69] |
Pokson et al. | 2022 | Evaluates energy efficiency of combined heat–power systems fueled by infectious medical waste. | [70] |
Bharti et al. | 2022 | Reviews advanced sterilization like Ultraviolet-C radiation and ozone for safer medical waste disinfection. | [71] |
Wawale et al. | 2022 | Recommends real-time tracking using sensors and fuzzy classification to manage hazardous waste. | [72] |
Lemma et al. | 2022 | Highlights risks of poor infectious waste handling; urges standard procedures and staff training. | [73] |
Govindan et al. | 2022 | Advocates for reverse logistics to recover and reuse protective equipment and syringes. | [74] |
Erdem | 2022 | Proposes a logistics model to manage increased medical waste during pandemics sustainably. | [75] |
Zhao et al. | 2022 | Supports rapid destruction and recycling technologies for emergency HMW management. | [76] |
Zhao et al. | 2021 | Compares disposal technologies by efficiency, emissions, and costs; supports balanced solutions. | [77] |
Giakoumakis et al. | 2021 | Reviews incineration, pyrolysis, gasification, and fermentation for valorizing HMW. | [78] |
Su et al. | 2021 | Recommends integrated waste treatment adapted to local needs for effective management. | [79] |
Soldatos et al. | 2021 | Highlights digital tools like Internet of Things (IoT) and blockchain for traceability and resource monitoring. | [80] |
Patel et al. | 2020 | Describes pyrolysis as a cleaner method to convert HMW into fuel and reduce fossil use. | [81] |
Alam et al. | 2020 | Assesses incineration vs. landfill in Chittagong using life cycle analysis for impact comparison. | [82] |
Thematic Dimension | Key Findings | Implications for Research and Practice |
---|---|---|
Technological systems | Strong focus on advanced treatment methods (e.g., pyrolysis, gasification, sterilization) | Further research needed on integration of these technologies into scalable, cost-effective waste infrastructures |
Environmental metrics | Emergence of carbon footprint, LCA, circular economy concepts in recent literature | Encourages adoption of performance-based sustainability indicators in waste policy and system design |
Operational efficiency | Frequent use of optimization, process, value terms; alignment with lean management logic | Suggests the applicability of lean tools (Value Stream Mapping, 5S method, Kaizen) for enhancing efficiency and minimizing waste in healthcare systems |
Computational modeling | New terms: algorithm, network, simulation, sensitivity analysis | Opens directions for AI- and data-driven decision support systems in smart waste management |
Behavioral and policy | Clusters include training, awareness, guidelines, intervention | Highlights the need for participatory, education-based, compliance-focused strategies in waste reduction efforts |
Global collaboration | Dense international co-authorship network with key hubs in China, India, USA | Reinforces the need for knowledge-sharing platforms and capacity building, especially in emerging and low-resource countries |
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Ciobanu, A.D.; Ozunu, A.; Tănase, M.; Gligor, A.; Veres, C. Lean Management Framework in Healthcare: Insights and Achievements on Hazardous Medical Waste. Appl. Sci. 2025, 15, 6686. https://doi.org/10.3390/app15126686
Ciobanu AD, Ozunu A, Tănase M, Gligor A, Veres C. Lean Management Framework in Healthcare: Insights and Achievements on Hazardous Medical Waste. Applied Sciences. 2025; 15(12):6686. https://doi.org/10.3390/app15126686
Chicago/Turabian StyleCiobanu, Adela Dana, Alexandru Ozunu, Maria Tănase, Adrian Gligor, and Cristina Veres. 2025. "Lean Management Framework in Healthcare: Insights and Achievements on Hazardous Medical Waste" Applied Sciences 15, no. 12: 6686. https://doi.org/10.3390/app15126686
APA StyleCiobanu, A. D., Ozunu, A., Tănase, M., Gligor, A., & Veres, C. (2025). Lean Management Framework in Healthcare: Insights and Achievements on Hazardous Medical Waste. Applied Sciences, 15(12), 6686. https://doi.org/10.3390/app15126686