American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS) ISSN (Print) 2313-4410, ISSN (Online) 2313-4402 © Global Society of Scientific Research and Researchers http://asrjetsjournal.org/ Radon Concentrations Measurement for groundwater Using Active Detecting Method Wedad Reif Alharbia*, Adel G. E. Abbadyb, A. El-Taherc aPhysics Department, Faculty of Science, King Abdulaziz University, Jeddah, Saudi Arabia bPhysics Department, Faculty of Science, South Valley University, Qena, Egypt bPhysics Department, Faculty of Science, Al Jouf University, Al Jouf, Saudi Arabia cPhysics Department, Faculty of Science, Al-Azhar University, Assuit 71452, Egypt Abstract On global scale, groundwater has been gaining increasing attention as essential and vital water resource. Its demand has been rising rapidly in the last several decades with the overpopulation and enhanced standards of living. In recent years, a great interest arose towards the natural radioactivity in water. Radon concentrations were measured in thirty groundwater samples from Qassim area, Saudi Arabia by using RAD7 an electronic radon detector connected to a RAD- H2O accessory (Durridge Co., USA). The measured radon concentration ranges from 0.76 Bq/l to 9.15 Bq/l with an average value of 3.56 Bq/l. The measured values of radon concentration are well in the range within the EPA’s maximum contaminant level (MCL) of 11.1 Bq L-1. The total annual effective dose resulting from radon in groundwater from Buraydah area were significantly lower than the UNSCEAR and WHO recommended limit for members of the public of 1 mSv year-1. The measured values for underground water from the study area suggest that the area is safe for farmers and there is no significant threat to the population as per as radon concentration is concerned. Keywords: Radon; Groundwater; Annual effective dose; Buraydah. 1. Introduction Radioactive isotopes in nature occur both in the atmosphere and in the lithosphere. The most important radioactive series in the lithosphere are the uranium and thorium series. ------------------------------------------------------------------------ * Corresponding author. E-mail address: walharbi@kau.edu.sa. 1 http://asrjetsjournal.org/ American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS) (2015) Volume 14, No 1, pp 1-11 The first members of these series and their decay products are leached out of the rocks and dissolved by groundwater to varying degrees. The gaseous radioactive member of the uranium series, radon is easily dissolvable in water and is enriched in relation to other members of the series. Hence, the radioactivity of groundwater is mainly contributed by radon. Radon-222 and Radon-220, the gaseous daughter products of U- 238 and Thorium respectively accounts for more than 50% of the human exposure due to natural radiation. Water is the most important source for life and makes up 70 - 75% of total body weight. While 70% of the world's surface is covered by water, only 0.3 % of the total water resources on earth are suitable for drinking and daily use. Human being provides their water needs from surface water and ground water resources. Ground water has more radioactive contents than surface water since it passes through rocks and soil formations, dissolves many compounds, minerals and radioactive materials. Radioactive isotopes in nature occur both in the atmosphere and in the lithosphere. The most important radioactive series in the lithosphere are the uranium and thorium series. The first members of these series and their decay products are leached out of the rocks and dissolved by groundwater to varying degrees. In recent years, a great interest arose towards the natural radioactivity in water [1-3]. Activity concentration of the 222Rn radionuclide was determined in drinking water samples from the Sothern Greater Poland region by liquid scintillation technique. The measured values ranged from 0.42 to 10.52 Bq/l with the geometric mean value of 1.92 Bq/l. The calculated average annual effective doses from ingestion with water and inhalation of this radionuclide escaping from water were 1.15 and 11.8 μSv/y, respectively. Reference [4] measured 222Rn in groundwater and surface seawater during a full tidal period, estimated 222Rn activity along the coast of Xiangshan, Zhejiang, China. 222Rn activity in Xiangshan coast was in range of 2.4 ×104 - 1.7 × 105 Bq/m3 with an average of 9.6 × 104 Bq/m3 for groundwater; 0.2 × 102 - 2.8 × 102 Bq/m3 with an average of 1.1 × 102 Bq/m3 for surface seawater. The authors in Reference [5] studied the distribution of radon in ground and surface water samples in Sankey Tank and Mallathahalli Lake areas, the mean radon activity in surface water was 7.24 ± 1.48 and 11.43 ± 1.11 Bq/l, respectively. The average radon activities in groundwater ranged from 11.6 ± 1.7 to 381.2 ± 2.0 Bq/l and 1.50 ± 0.83 to 18.9 ± 1.59 Bq/l, respectively. Correa et al. in Reference [6] analyzed concentration activity of 222Rn activity concentration in well water. About 70% of water samples from monitored wells presented 222Rn concentration values above the limit of 11.1 Bq/l recommended by the United States Environmental Protection Agency USEPA. Voltaggio and Spadoni Passive in Reference [7] studied the efficiency of 222Rn gas accumulators made of polydimethylsiloxane (PDMS) mixed with activated Carbon (AC) for sampling Rn in water. The high Rn volumetric enrichment factor in PDMS–AC disks respect to water resulted in about 206:1, so lowering detection limits for 222Rn in water to 20 Bq/m3 when the total activity of Rn progeny in disks is measured by high resolution gamma-ray spectrometry. The authors in Reference [8] estimated radon concentration in groundwater samples at different areas of the districts of SriGanganagar, Hanumangarh, Sikar and Churu in northern Rajasthan. Radon concentration in the groundwater ranged from 0.5 ± 0.3 Bq/l (Chimanpura) to 85.7±4.9 Bq/l (Khandela) with an average value of 9.03±1.03 Bq/l. Radon concentration is well below the allowed maximum contamination level (MCL) of radon concentration in water of 11 Bq/l, proposed by Reference [9]. In Saudi Arabia, studies on natural radioactivity contents in the environments are dispersed in last few years. The authors in Reference [10] measured Twenty-nine groundwater samples, collected from Wadi Nu'man wells, 2 American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS) (2015) Volume 14, No 1, pp 1-11 Mecca Province, Saudi Arabia. The 222Rn concentration ranged from 10-100 Bq/l with an average value of about 40 Bq/l. In Reference [11] Aleissa et al., measured 222Rn radioactivity concentration levels in 171 well waters located in and around the city of Riyadh in Saudi Arabia. The analyses were performed by an ultra-low level liquid scintillation spectrometer equipped with an α/β discrimination device. The measured 222Rn activities of deep wells ranged from 0.34±0.05 to 3.52±0.30 Bq/l (average: 1.01±0.10 Bq/l), whereas those of shallow wells ranged from 0.72±0.08 to 7.21±0.58 Bq/l (average: 2.74±0.24 Bq/l). In Reference [12] Alabdulaaly measured radon levels in eight water supply municipalities of the Central Region of Saudi Arabia. The well water radon level was in the range of 0.89- 35.44 Bq/l with an overall weighted geometric mean value of 8.80 Bq/l. Kadi In reference [13] found 222Rn in some groundwater samples, the concentration of 238U and 222Rn has been assessed in underground water samples collected from the Makkah Al-Mukarramah area west of Saudi Arabia. Observed radon activities lie in the range 0.6-3.9 Bq/l. In Reference [14] Alabdulaaly assayed radon levels in a water distribution network of the capital city of Saudi Arabia, Riyadh. All samples have shown low radon levels with an average concentration of 0.2 Bq/l and a range values of 0.1-1.0 Bq/l. The authors in Reference [15] studied 222Rn levels in the groundwater supplies of the capital city of Saudi Arabia (Riyadh). All samples have low radon levels with an average concentration of 2.99 ± 0.29 and 3.44 ± 0.35 Bq/l (61.8 ± 7.8 and 92.9 ± 9.5 pCi/l) for the deep and shallow well waters, respectively. 2. Materials and Methods 2.1. Sampling: on-site activities A total of 30 samples from Qassim area were Selected for investigation. The wells were purged through pumping for 10 min to ensure sample quality. All the water samples were collected in special glass bottles 250 mL capacity designed for radon in-water activity measurement ensuring minimum radon loss by degassing and without any air contact as shown in Reference [16]. 2.2. Laboratory measurements 222Rn measurement of ground water samples was carried out using a radon-in-air monitor RAD-7 (Durridge Co. Ltd) using RAD H2O technique (Figure 1) with closed loop aeration concept as it is cleared in Reference [17] . RAD H2O technique employs closed loop concept, consisting of three components, (a) the RAD7 or radon monitor, on the left, (b) the water vial with aerator, in the case near the front, and (c) the tube of desiccant, supported by the retort stand above as marked in Figure1a. Schematic representations of the radon-in-air monitor RAD-7 with RAD H2O given in Figure 2. The radon activity was measured using a radon-in-air monitor (RAD7) coupled with a specially fabricated closed loop of aeration system that strip/free radon from the water. The sample bottles of 250 mL were connected to the RAD-7 and the internal air pump of the radon- monitor was used for re-circulating a closed air-loop through the water sample, purging radon from the water into the air-loop. The air was re-circulated through the water continuously to extract the radon until RAD-H2O system reaches a state of equilibrium. After reaching equilibrium between water, air, and radon progeny attached to (PIPS) detector, the radon activity concentration measured in the air loop was used for calculating the initial radon-in-water concentration of the respective sample. The RAD-7 allows determination of radon-in- 3 American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS) (2015) Volume 14, No 1, pp 1-11 air activity concentrations by detecting the alpha-decaying radon progeny 218Po and 214Po using a passivated implanted planar silicon detector (PIPS). The radon monitor (RAD7) uses a high electric field above a silicon semi-conductor detected at ground potential to attract the positively charged polonium daughters, 218+Po (t1/2 = 3.1 min; alpha energy = 6.00 MeV) and 214+Po (t1/2 = 164 µs; alpha energy = 7.67 MeV), which are counted as a measure of 222Rn concentration in air. At the end of the run (30 min after the start), the RAD7 prints out a summary, showing the average radon reading. The time elapsed for the sample collection and analysis corrected using the equation C = C0 e-λt ---------------------------- (1) where C is the measured concentration, C0 initial concentration (to be calculate) after the decay correction and t is the time elapsed since collection (days), λ = (0.693)/ (t 1/2) =0.181, t 1/2= 3.83 days. 2.3. Calculation the annual effective dose Radon gas is the largest contributor to the collective exposition to natural radiation of the population in the world [18-19,5] . The inhalation of short-lived decay products of radon (222Rn) accounts on average about 50% of the effective equivalent dose on the human being as cleared in Reference [20]. The annual effective dose to an individual consumer due to intake of radon from drinking water is evaluated using the relationship as defined from Reference [21]. DW = CW CRWDCW ----------------------------- (2) where Dw is the annual effective dose (Sv y-1) due to ingestion of radio-nuclides from the consumption of water, Cw concentration of 222Rn in the ingested drinking water (Bq L-1), CRw annual intake of drinking water (L y-1), Dcw is the ingested dose conversion factor for 222Rn (Sv Bq-1) [22-23]. For calculation of effective dose, a dose conversion factor of 5 x 10-9 Sv Bq-1 suggested by the United Nations Scientific Committee on the Effects of Atomic Radiation has been used [24-25]. Annual effective dose due to intake of 222Rn from drinking water has been calculated considering that an adult (Age >1 8 year), on average, takes 730 L water annually. Following ingestion of 222Rn dissolved in drinking water, annual effective doses (μSv y-1) and effective doses per liter (nSv L-1) were calculated. 3. Results and Discussion The measurements for radon concentration have been carried out for groundwater samples from Buraydah city, Saudi Arabia, RAD7. The radon concentrations ranged from 0.76 Bq/l to 9.15 Bq/l with an average value of 3.56 Bq/l. The obtained results are far less compared to radon results obtained by [26-29]. Hence, an attempt has been carried out in the current study to estimate the total annual effective dose resulting from radon in the sampled groundwater and it was noticed that annual effective dose-rate (AED) and effective dose-rate per liter (EDL) were varying with increase in radon concentration. The calculated effective dose per liter (EDL) and annual effective dose (AED) were ranging from 3.8 to 45.75 nSv/l and 2.77 to 33.39 μSv/y, respectively (Table 1). It was evident that the total annual effective doses resulting from radon in groundwater from Buraydah were 4 American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS) (2015) Volume 14, No 1, pp 1-11 significantly lower than the recommended limit 1 mSv/y for the public [30-31]. Several national and international health organizations have determined acceptable action levels for radon concentrations. The USEPA defined a value of 11.1 Bq/l for radon concentration in water in its report in 1999 in Reference [9]. United Nations Scientific Committee on the Effects of Atomic Radiations Reference [30] defined a value of 40 Bq/l and the WHO defined in Reference [31] a value of 100 Bq/l as an action limit. Table 1 represents the overall radon concentration levels and their annual effective dose exposure. It can be seen that radon activity varies from 0.76 Bq/l to 9.15 Bq/l with an average value of 3.56 Bq/l. Although, all the samples are within the maximum contaminant level (MCL) of 11.1 Bq/l as shown in reference [9]. 1a. Aerating a 250 mL water sample 1b. Aeration in progress Figure 1: Measurement apparatus RAD 7 (RAD H2O User Manual) The spatial variations in radon concentration could be a function of the geological structure of the area, depth of the water source and also differences in the climate and geo-hydrological processes that occurs in the area. When the measured radon concentration values are compared with the allowed maximum contamination level for radon concentration in water (which is 11.1 Bq/l), proposed by the USEPA in Reference [9], it can be seen that the present value are below this recommended value .Also, when the measured values for radon concentration are compared with the European Commission Recommendations on the protection of the public against exposure to radon in drinking water supplies which recommends action levels of 100 Bq/l for public water supplies, it can be seen that the levels we measured were below these limits. 5 American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS) (2015) Volume 14, No 1, pp 1-11 Figure 2: A: Schematic representation of the RAD 7 instrument for measuring radon in water; B: aerator assembly Table 1: Radon concentration and their annual effective dose exposure in ground water from Qassim area, Saudi Arabia. Sample N0. Rn-222 Bq L-1 Annual Effective dose rate EDE (μSv y-1) Annual effective doses per liter EDL (nSvL-1) Total Annual Effective dose rate (mSv y-1) 1 1.34 4.89 6.70 0.0049 2 1.28 4.67 6.40 0.0047 3 1.02 3.72 5.10 0.0037 4 0.76 2.77 3.80 0.0028 5 1.00 3.65 5.00 0.0037 6 1.08 3.94 5.40 0.0040 7 2.70 9.65 13.50 0.0097 8 2.44 8.90 12.20 0.0089 9 3.29 12.01 16.45 0.0120 10 3.17 11.57 15.85 0.0116 6 American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS) (2015) Volume 14, No 1, pp 1-11 ۱۱ 3.46 12.63 17.30 0.0126 ۱۲ 3.01 10.95 9.23 0.0110 ۱۳ 4.69 17.12 23.45 0.0171 1٤ 4.42 16.14 22.10 0.0161 1٥ 4.52 16.51 22.60 0.0165 1٦ 4.24 15.49 21.20 0.0155 1۷ 4.44 16.22 22.20 0.0162 1۸ 3.20 11.68 16.00 0.0117 1۹ 4.49 16.38 22.45 0. 0164 ۲۰ 9.15 33.39 45.75 0.0334 ۲۱ 8.26 30.14 41.30 0.0301 ۲۲ 5.12 18.69 25.60 0.0187 2۳ 5.52 20.14 27.60 0.0201 2٤ 7.88 28.75 39.40 0.0208 2٥ 3.40 12.40 17.00 0.0124 26 3.12 11.38 15.60 0.0114 27 2.60 09.48 13.00 0.0095 28 2.05 07.48 10.25 0.0075 29 2.15 07.84 10.75 0.0079 30 3.30 12.04 16.50 0.0120 Min 0.76 2.77 3.80 0.0028 Max 9.15 33.39 45.75 0.0334 Average 3.56 13 17.65 0.0126 The radon concentrations found in this work are presented together with comparable measurements from the rest of the world in Tables 2. Radon concentration in groundwater may vary with time because of factors such as dilution by recharge and changes in recharge area due to pumping etc. The seasonal changes may be high or low depending on the factors responsible for enrichment of radon in groundwater. A study on radon concentration in tube wells by Sonkawade et al. in Reference [32] found that de-ionization of water reduces the radon concentration. Also, the concentration of radon was found to be inversely correlated with the pH value of water samples. Various studies conducted in different terrains on the concentration of radon in groundwater indicates a direct relation between the presence of uranium and thorium in the parent rock and radon enrichment in groundwater. In tectonically disturbed areas high radon concentration in groundwater is observed due to contribution of radon from greater depths. Spatial variations in radon concentrations are generally related to changes in geology, soil type, and structural controls. High radon concentrations in groundwater and soil are observed above structural planes like fault, fracture, fold, and lineaments. It is used as a natural tracer in many hydro geological investigations and for quantifying submarine discharge along sea coats. 7 American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS) (2015) Volume 14, No 1, pp 1-11 Table 2: Range of radon concentrations in various types of water worldwide Water type Country Range (Bq/l) Reference Drinking India 0.87-32.10 [33] Groundwater Brazil 0.95-36.00 [34] Well Turkey 0.70–31.70 [35] Well Mexico 1.78–39.75 [36] Ground Italy 1.80–52.70 [37] Drinking Poland 0.42-10.52 [3] Groundwater China 110-36.00 [4] Groundwater India 11.7–381.2 [5] Groundwater Brazil 1.6–215 [6] Groundwater India 0.50–85.7 [8] Groundwater Saudi Arabia 10-100 [10] Groundwater Saudi Arabia 0.34-3.52 [11] Groundwater Saudi Arabia 0.76- 4.69 [38] Drinking Saudi Arabia 0.89-35.44 [12] Groundwater Saudi Arabia 0.76- 9.15 Present work 4. Conclusion A total of 30 groundwater samples collected from Buraydah, Qassim area were examined for 222Rn. The results obtained show that the radon concentration in water are below 11 Bq/l the maximum contamination level recommended from the U.S. Environmental Protection Agency. Even the effective dose per liter and annual effective dose values were varying with respect to the increase in radon concentration and were significantly lower than the UNSCEAR and WHO recommended limit for members of the public of 1 mSv y-1. Acknowledgements This project was funded by the Deanship of Scientific Research (DSR), King Abdulaziz University, Jeddah, under grant No.(364/363/ 1432) . The authors, therefore, acknowledge with thanks DSR technical and financial support. References [1] Schwartz, M.C."Significant groundwater input to a coastal plain estuary: Assessment from excess radon". Estuarine, Coastal and Shelf Science 56, 31-42. 2003 8 American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS) (2015) Volume 14, No 1, pp 1-11 [2] Snow, D.D. and Spalding, R.F.,"Short-term aquifer residence times estimated from 222Rn disequilibrium in artificially-recharged ground water". Journal of Environmental Radioactivity 37, 307-325. 1997 [3] Bem, H., et al.,." Radon (222Rn) in underground drinking water supplies of the Southern Greater Poland Region". J Radioanal Nucl Chem 299, 1307-1312. 2014 [4] Wen, T., et al., "Use of 222Rn to trace submarine groundwater discharge in a tidal period along the coast of Xiangshan, Zhejiang, China". J Radioanal Nucl Chem 299, 53-60. 2014. [5] Ravikumar, P. and Somashekar, R.K.,"Determination of the radiation dose due to radon ingestion and inhalation". International Journal of Environmental Science and Technology 11, 493-508. 2014. [6] Corrêa, J.N., et al., "Measurements of 222Rn activity in well water of the Curitiba metropolitan area (Brazil)". Radiation Physics and Chemistry. 2014. [7] Voltaggio, M. and Spadoni, M.,. "Determination of 222Rn in water by absorption in polydimethylsiloxane mixed with activated carbon and gamma-ray spectrometry: An example application in the radon budget of Paterno submerged sinkhole (Central Italy)". Applied Geochemistry 34, 65-74. 2013. [8] Rani, A., et al., ," Radon monitoring in groundwater samples from some areas of northern Rajasthan, India, using a RAD7 detector". Radiation protection dosimetry 153, 496-501. 2013 [9] USEPA,. 'United States Environmental Protection Agency Office of Water : 40 CFR Parts 141, and 142 : National Primary Drinking Water Regulations ; radon-222: proposed rule". US Environmental Protection Agency, [Washington, D.C.]. 1999. [10] Shabana, E.I. et al, "Natural radioactivity in the groundwater of Wadi Nu'man, Mecca Province, Saudi Arabia". Radiochimica Acta 101, 461-469. 2013 [11] Aleissa, K.A., et al., "Measurement of radon levels in groundwater supplies of riyadh with liquid scintillation counter and the associated radiation dose". Radiation Protection Dosimetry 154, 95-103. 2013 [12] Alabdula'aly, A.I.. "Occurrence of radon in the central region groundwater of Saudi Arabia". Journal of Environmental Radioactivity 44, 85-95. 1999. [13] Kadi, M.W.," 222Rn in some underground water-samples and examination of correlation to 238U concentration". Asian Journal of Chemistry 22, 148-152. 2010. [14] Alabdula'aly, A.I.,. "Radon levels in a water distribution network". Journal of Environmental Radioactivity 37, 215-221.,1997. [15] Alabdula'aly, A.I.. 'Occurrence of radon in Riyadh groundwater supplies'. Health physics 70, 103-108, 1996. 9 American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS) (2015) Volume 14, No 1, pp 1-11 [16] Stringer, C and Burnett, WC., "Sample bottle design improvements for radon emanation analysis of natural waters". Health Phys 87:642–646. 2004. [17] Lee, JM and Kim, G., " A simple and rapid method for analyzing radon in coastal and ground waters using a radon-in-air monitor". J Environ Radioact 89:219–228. 2006. [18] Bonotto, D.M.,. "222Rn, 220Rn and other dissolved gases in mineral waters of southeast Brazil". Journal of Environmental Radioactivity 132, 21-30, 2014. [19] Jantsikene, A., et al.,"Groundwater treatment as a source of indoor radon". Applied Radiation and Isotopes. 2014. [20] et al., "Radon activity and exhalation rates in Indian fly ash samples". Indian journal of pure and applied physics 48, 457. 2010. [21] Alam, M.N., et al.,"Radiological assessment of drinking water of the Chittagong region of Bangladesh". Radiat Prot Dosim 82:207–214. 1999. [22] Somashekar, R.K. and Ravikumar, P.,"Radon concentration in groundwater of Varahi and Markandeya river basins, Karnataka State, India". J Radioanal Nucl Chem 285, 343-351,2010. [23] Harrison, J.D. and Marsh, J.W.,"Effective dose from inhaled radon and its progeny". Annals of the ICRP 41, 378-388. 2012. [24] UNSCEAR Effects of Atomic Radiation: sources and effects of ionising radiation. New York, United Nations, 1993. [25] Cevik, U., et al., "Natural radioactivity in tap waters of eastern black sea region of Turkey". Radiat Prot Dosim 118:88–92. 2006. [26] Eleftheriou, G., et al,." Radioactivity measurements in the aquatic environment using in-situ and laboratory gamma-ray spectrometry". Applied Radiation and Isotopes 82, 268-278. 2013. [27] Küsters, M. and Schraven, W.,"Determination and differentiation of 226Ra and 222Rn by gamma-ray spectrometry in drinking water". J Radioanal Nucl Chem 280, 475-480. 2009. [28] Mauring, A. and Gäfvert, T.," Radon tightness of different sample sealing methods for gamma spectrometric measurements of 226Ra". Applied Radiation and Isotopes 81, 92-95. 2013. [29] Wójcik, M. and Zuzel, G.," 226Ra, 210Pb, 210Bi and 210Po deposition and removal from surfaces and liquids". J Radioanal Nucl Chem 296, 639-645. 2013. [30] UNSCEAR, United Nations Scientific Committee on the Effects of Atomic Radiation, Effects of ionizing 10 http://nopr.niscair.res.in/handle/123456789/9898 American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS) (2015) Volume 14, No 1, pp 1-11 radiation 2009. [31] WHO, "World Health Organization, Progress on Drinking Water and Sanitation". World Health Organization, Geneva. 2012 [32] Sonkawade, R.G.,et al. "Radon in tubewell drinking water and indoor air".Indoor Built Environment, 13: 383-386. 1984. [33] Singh, J., et al. " Estimation of uranium and radon concentration in some drinking water samples of Upper Siwaliks, India". Environ. Monit. Assess. 154, 15–22.2009. [34] Marques, A. L., et al. " Direct measurements of radon activity in water from various natural sources using nuclear track detectors". Appl. Radiat. Isot. 60, 801–804. 2004. [35] Yalim, H. A., et al. "Measurements of radon concentrations in well waters near the Aks¸ehir fault zone in Afyonkarahisar, Turkey". Radiat. Meas. 42, 505–508. 2007. [36] Villalba, L., et al. "Radon concentrations in ground and drinking water in the state of Chihuahua, Mexico". J. Environ. Radioact. 80, 139–151. 2005. [37] D’Alessandro, W. and Vita, F., "Groundwater radon measurements in the Mt. Etna area". J. Environ. Radioact. 65, 187–201. 2003. [38] El-Taher, A,. "Measurement of radon concentrations and their annual effective dose exposure in groundwater from Qassim area, Saudi Arabia". Journal of Environmental Science and Technology 5, 475-481. 2012. 11