Methodological Assessment of Industrial Machinery Fleets in Senegal: A Quasi-Experimental Approach to Risk Reduction

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Autor principal: Diallo, Mamadou
Formato: Recurso digital
Lenguaje:inglés
Publicado: Zenodo 2012
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author Diallo, Mamadou
author_facet Diallo, Mamadou
contents <p>The industrial sector in Senegal is characterized by a diverse fleet of machinery across various sectors such as manufacturing and construction. Despite this growth, there are concerns about the operational efficiency and safety of these fleets. A mixed-methods approach was employed, combining quantitative data analysis from fleet maintenance records and qualitative interviews with stakeholders. The study used regression analysis to model the relationship between risk factors and fleet performance outcomes. Regression analysis revealed a significant negative correlation (p < 0.05) between the frequency of machinery breakdowns and the implementation of comprehensive safety protocols, indicating that proactive measures can effectively reduce operational risks. The findings suggest that integrating advanced risk assessment tools into industrial machinery management could significantly enhance fleet reliability and safety in Senegal. Policy makers are encouraged to implement mandatory safety training programmes for operators and regular audits of machinery fleets, supported by robust financial incentives to encourage compliance with best practices. The maintenance outcome was modelled as $Y_{it}=\beta_0+\beta_1X_{it}+u_i+\varepsilon_{it}$, with robustness checked using heteroskedasticity-consistent errors.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_18958887
institution Zenodo
language eng
publishDate 2012
publisher Zenodo
record_format zenodo
spellingShingle Methodological Assessment of Industrial Machinery Fleets in Senegal: A Quasi-Experimental Approach to Risk Reduction
Diallo, Mamadou
Sub-Saharan
fleet management
reliability engineering
stochastic models
predictive maintenance
asset optimization
experimental design
<p>The industrial sector in Senegal is characterized by a diverse fleet of machinery across various sectors such as manufacturing and construction. Despite this growth, there are concerns about the operational efficiency and safety of these fleets. A mixed-methods approach was employed, combining quantitative data analysis from fleet maintenance records and qualitative interviews with stakeholders. The study used regression analysis to model the relationship between risk factors and fleet performance outcomes. Regression analysis revealed a significant negative correlation (p < 0.05) between the frequency of machinery breakdowns and the implementation of comprehensive safety protocols, indicating that proactive measures can effectively reduce operational risks. The findings suggest that integrating advanced risk assessment tools into industrial machinery management could significantly enhance fleet reliability and safety in Senegal. Policy makers are encouraged to implement mandatory safety training programmes for operators and regular audits of machinery fleets, supported by robust financial incentives to encourage compliance with best practices. The maintenance outcome was modelled as $Y_{it}=\beta_0+\beta_1X_{it}+u_i+\varepsilon_{it}$, with robustness checked using heteroskedasticity-consistent errors.</p>
title Methodological Assessment of Industrial Machinery Fleets in Senegal: A Quasi-Experimental Approach to Risk Reduction
topic Sub-Saharan
fleet management
reliability engineering
stochastic models
predictive maintenance
asset optimization
experimental design
url https://doi.org/10.5281/zenodo.18958887