2026· Journal of Basics and Applied Sciences Research· Vol 4, pp. 165-174· 0 citations
TL;DR
The findings indicate that the investigated water sources may pose potential health risks if consumed without treatment, and appropriate water treatment and routine radiological monitoring are recommended to minimize radon exposure and protect public health.
Abstract
Radon (222Rn) is a naturally occurring radioactive gas that constitutes one of the major contributors to natural background radiation exposure and poses significant health risks to humans. Although alpha particles emitted by radon cannot penetrate the skin, inhalation of radon released from water during domestic activities and ingestion of radon-contaminated drinking water may increase the risks of lung and gastrointestinal cancers. This study assessed the concentration of 222Rn and the associated radiological health risks in drinking water obtained from selected communities in Birnin Kudu Local Government Area, Jigawa State, Nigeria. Eight water samples, comprising four borehole and four hand-dug well samples, were collected from four locations and analyzed using a Liquid Scintillation Counter (Tri-Carb LSA-1000) at the Centre for Energy Research and Training, Ahmadu Bello University, Zaria. The mean radon concentrations were 16.48 Bq/L for hand-dug well water and 16.23 Bq/L for borehole water. These values exceed the guideline limits of 10 Bq/L recommended by the World Health Organization (WHO) and 11.1 Bq/L recommended by the United States Environmental Protection Agency (USEPA). The estimated annual effective doses due to inhalation remained below the recommended safety limits for all age groups, whereas the annual effective doses due to ingestion and the corresponding excess lifetime cancer risks exceeded the recommended values. These findings indicate that the investigated water sources may pose potential health risks if consumed without treatment. Therefore, appropriate water treatment and routine radiological monitoring are recommended to minimize radon exposure and protect public health.
Groundwater is the principal drinking-water source on Nigerian university campuses, yet its radiological quality, and the age-differentiated radon doses delivered to the students, staff and resident children who depend on it, remains largely uncharacterised, and no comparative campus-scale assessment exists for the sem...
A. Z. Namadi, A. Lawal, Kado S. et al.· Journal of Basics and Applie...· 0 citations
Objectives of this study were to determine radon concentration in tap water and assess the annual effective dose (AED) and excess lifetime cancer risk (ELCR) associated with radon exposure in tap water in Chiang Khan District, Loei Province, Thailand. A total of 40 water samples were collected to determine radon concen...
Ing-orn Sittitanadol, K. Prakhammin, V. Atyotha· Sains Malaysiana· 0 citations
This study investigates the concentration of Rn-222 in domestic water sources within Nasarawa metropolis, Nasarawa State, Nigeria. With the aim of accessing the potential health concerns related to radon accumulation. A total of thirty water samples comprising ten each from wells, boreholes, and streams were collected...
Ahmad A. Sule, Ubaidullah Ahmad, Abdulkareem M. Hamza· Journal of Basics and Applie...· 0 citations
A number of communities in Ukwuani Local Government Area of Delta State are known to host several crude oil companies with exploration activities ongoing and may be responsible for the presence of high radon levels in drinking water. Radon (222Rn) has emerged as a major health concern due to its radiotoxic effects and...
This study aimed to measure radon concentration in Djiri River water and to evaluate the associated equivalent doses, effective doses, and lifetime cancer mortality risks for the population of Brazzaville, Republic of Congo. Radon concentration was measured in 29 water samples collected from the Djiri River using an Al...
Guy Romuald Mossa Efouka, J. Bazoma, R. M. Moubakou Diahou et al.· Carpathian Journal of Earth...· 0 citations
In this study, the Alpha Guard PQ2000 PRO detector was used to collect direct water samples from 36 locations southeast of Baghdad Governorate. This included 10 samples collected from the Tuwaitha nuclear site. Twenty-six samples were collected. While outside the Tuwaitha nuclear site, including from health centers, mo...
Ruqayah Mohammed Jawad, Hayder S. Hussain· Iraqi Journal of Physics· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.