Please use this identifier to cite or link to this item: https://repositori.mypolycc.edu.my/jspui/handle/123456789/7291
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dc.contributor.authorMohd Ridhuan Ismail-
dc.contributor.authorZafri Azran Abdul Majid-
dc.contributor.authorSany Izan Ihsan-
dc.contributor.authorMohd Syahriman Mohd Azmi-
dc.contributor.authorKamaruzzaman Sopian-
dc.contributor.authorHazim Abdul Aziz Moria-
dc.date.accessioned2025-11-12T05:00:23Z-
dc.date.available2025-11-12T05:00:23Z-
dc.date.issued2024-07-01-
dc.identifier.issn2462-2052-
dc.identifier.issn2600-8718-
dc.identifier.otherdoi.org/10.37134/jsml.vol12.2.12.2024-
dc.identifier.urihttps://repositori.mypolycc.edu.my/jspui/handle/123456789/7291-
dc.description.abstractThis research studies the performance and efficiency of a solar hybrid gravity system integrated with battery energy storage. The study aims to optimize the design using a 50-Watt Solar PV, an 18Ah SLA Battery, and a Water Gravity Energy Storage Tank. Energy consumption was evaluated using the SLA Battery, Solar PV, and a 22-Watt Water Pump at various tank heights to measure efficiency improvements and battery lifespan extension. The methodology involved three procedures with five data loggers: a flow meter, a pyranometer, and three unit Watt Meter. Initially, a fully charged SLA Battery was tested at different tank heights (1.5m to 3.5m) every 15 minutes. Subsequently, the 50-Watt Solar PV was tested directly at a 3-meter height. Lastly, the Solar Hybrid Gravity System with Battery Energy Storage was monitored for seven days at a 3-meter height. Results indicated a 600% increase in battery performance at 80% Depth of Discharge (DOD), suggesting the battery's optimal use as a backup power source, thereby extending its lifespan. The SLA Battery shows a 22.1% charging and discharging loss at 5% DOD, while the 22-Watt Water Pump is achieved an 11.0 L/min rate at peak solar radiation, with a maximum motor power of 24.32 Watts. The minimum solar radiation required for efficient pump operation was 300 W/m². In conclusion, the study optimizes the solar hybrid gravity system's energy efficiency, reduces battery dependence, and enhances battery lifespan, promoting sustainable solutions for elevation applications.ms_IN
dc.language.isoenms_IN
dc.relation.ispartofseriesJournal of Science and Mathematics Letters;Volume 12, Issue 2, 151-160, 2024-
dc.subjectSolar energyms_IN
dc.subjectGravity energy storagems_IN
dc.subjectBattery efficiencyms_IN
dc.subjectWater pumpingms_IN
dc.subjectEnergy optimizationms_IN
dc.titleOPTIMIZATION OF SOLAR HYBRID GRAVITY SYSTEM WITH BATTERY ENERGY STORAGE FOR ELEVATION SYSTEMSms_IN
dc.typeArticlems_IN
Appears in Collections:JABATAN MATEMATIK, SAINS DAN KOMPUTER



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