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May 18, 2026Energy Conversion and Management X0 citationsOpen Access

PV on heavy duty vehicles (HDVs): monitoring 200 trucks with PVs

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KAKenji ArakiUniversity of MiyazakiTKTakumi KonumaKagoshima UniversityMTMakoto TanakaLintec Corporation (Japan)

Key Points

  • This study investigates the real-world performance and fuel-saving potential of photovoltaic systems on heavy-duty vehicles.
  • Monitored 200 commercial trucks equipped with 300–500 W CIGS photovoltaic systems nationwide.
  • Collected data on photovoltaic output, alternator behavior, battery flow, and vehicle operation.
  • Employed a local-coordinate irradiance model to estimate solar irradiance and used statistical methods for PV generation analysis.
  • Actual VIPV performance achieved 70% of the theoretical irradiation ratio due to shading and control dynamics.
  • VIPV reduced alternator load by an average of 102 W, correlating to approximately 7% fuel consumption reduction.
  • Widespread VIPV implementation could reduce transport sector emissions by roughly 4% if fuel-saving efficiency increases to 12%.

Abstract

• Monitoring 200 PV-equipped trucks in real business. • 30% of overpromises, but was explained by shading impacts. • Fuel-saving was estimated 7% but varied among trucks. This study examines the real-world performance and potential for fuel savings of Vehicle-Integrated Photovoltaics (VIPV) installed on heavy-duty vehicles (HDVs). A comprehensive nationwide monitoring campaign was conducted involving approximately 200 commercial trucks equipped with 300–500 W CIGS photovoltaic systems. Data collected included photovoltaic output, alternator behavior, battery flow, and vehicle operation. Unlike prior VIPV investigations, this research provides the first extensive, long-term dataset obtained under actual commercial logistics conditions, facilitating a quantitative assessment of alternator suppression and fuel-saving effects across various truck types and driving environments. To accurately estimate solar irradiance under fluctuating shading conditions, the study employs a validated local-coordinate irradiance model and utilizes statistical methods to determine nominal PV generation. Results indicate that actual VIPV performance approximates 70% of the theoretical irradiation ratio predicted by standard models, primarily due to shading, orientation variations, and alternator control dynamics. Across all monitored vehicles, VIPV reduced alternator load by an average of 102 W during operation, corresponding to an estimated fuel consumption reduction of approximately 7%, with variations depending on truck type and driving pattern. Extrapolating these findings to Japan’s HDV fleet suggests that widespread VIPV implementation—coupled with anticipated technological advancements that increase fuel-saving efficiency to 12%—could reduce greenhouse gas emissions by roughly 4% of the transport sector’s total emissions. These findings demonstrate that VIPV is a practical and scalable approach to decarbonizing logistics operations, supported by empirical evidence from real-world operational data.

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Cite This Study

Araki et al. (2026) studied this question.

synapsesocial.com/papers/6a0aac2b5ba8ef6d83b6fc00https://doi.org/10.1016/j.ecmx.2026.101959
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