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The International Journal Of Engineering And Science (IJES)
|| Volume || 3 || Issue || 12 || Pages || 05-09 || 2014 ||
ISSN (e): 2319 – 1813 ISSN (p): 2319 – 1805
www.theijes.com The IJES Page 5
Natural radiation levels and health hazard indices of soil in
Owerri Nigeria
1
Nwaka, B.U., 1
Emelue H.U. and 1
Nwokocha C
1
Department of Physics, Alvan Ikoku Federal College of Education, P.M.B. 1033 Owerri, Imo State Nigeria
---------------------------------------------------------------ABSTRACT------------------------------------------------------
The natural radiation of soil samples from three local governments areas that make up Owerri city in Imo state,
Nigeria were measured using gamma ray spectrometer. The mean values obtained were 167.2 ± 10.5
( ), 19.7 ± 1.9 ( ) and 18.1 ± 3.3 ( ) for 40
K , 226
Ra and 232
Th respectively. These values
were used to evaluate the radiological health hazard indices using standard analytical methods. The results
showed that the mean value of radium equivalent activity is 58.5 , while the values of absorbed dose
rate ( ) and annual effective dose equivalent ( ) are 27.1 and 132.78 respectively. The
values of external and internal health hazard indices are 0.16 and 0.21 respectively. All these values obtained
are lower than their world permissible United Nations Scientific Committee on the Effect of Atomic Radiation
(UNSCEAR) values for such environment. This shows that the risk due to radiation contamination in the city of
Owerri is low.
Keywords: Activity concentration, gamma ray spectrometer, health hazard indices, Owerri, world standard
values.
---------------------------------------------------------------------------------------------------------------------------------------
Date of Submission: 30 October 2014 Date of Accepted: 20 December 2014
---------------------------------------------------------------------------------------------------------------------------------------
I. INTRODUCTION
The human body is continuously exposed to ionizing radiation both from natural and artificial sources
[1]. The gamma radiation emitted from naturally occurring radionuclides materials NORMs is called terrestrial
background radiation. Materials such as rock, soil, underground water and air contain various NORMs in
different concentrations in various locations of the world. Terrestrial background radiation produced during
interaction of cosmic rays with the atmosphere is the major natural sources of radiation due to 40
K, 238
U, 232
Th
and their decay products. There are also artificial sources of radiation such as 137
Cs, 434
Cs, 90
Sr, which are
released due to human activities. The measurement of radionuclide concentrations in the environment is
essential to the assessment of possible radiological risk to human [2]. This is because, exposure of humans to
natural radiation is through inhalation of radon (222
Rn) gases, ingestion of food and direct external exposure [3].
Some radiological indices such as radium equivalent activity, absorbed dose rate, annual effective dose rate,
external and internal hazard indices also depend on the activity concentrations of 40
K, 226
Ra and 232
Th. These
values of radiological indices for different materials greater than the world average could contribute
significantly to health risk [4].
Imo State is one of the thirty six (36) states of Nigeria. It has been the capital of the State since 1967
and it has grown from a small town to become one of the commercial hubs of the Southeastern Nigeria. It is also
a gateway city from the Southwestern Nigeria to most of the Southeastern part of the country. As a result of this,
there has been a great increase in commercial activities and human settlement over the years. These could bring
about an increase in nuclear applications and its attendance risk of abuse or accident [6]. It is important therefore
to measure the levels of radiation present in the environment at any given time in order to adequately assess the
risk involved to the society.
[6, 7] have done some studies in major cities in Nigeria, but none looked at the radiological hazard indices of
Owerri city with the view to accurately ascertain the health risk to the area. The aim of the study therefore is to
determine
i The activity concentration of the three radionuclides of 40
K, 226
Ra and 232
Th
ii The radiological health hazard implications to the public.
iii And also to provide a radiometric data for further reference and research in the area.
Natural radiation levels and health hazard indices of soil in Owerri Nigeria
www.theijes.com The IJES Page 6
II. MATERIALS AND METHOD
2.1 Sample collection
Soil samples were collected from 30 different locations in the three local government areas that make
up the city of Owerri in Imo state. The local government areas are Owerri Municipal area (OWM), Owerri
North (OWN) and Owerri West (OWW). This is to ensure a very good coverage of the entire region. Samples at
each site were collected to a depth of about 150 mm to 200 mm below the soil surface. The samples were placed
in a labeled waterproof nylon bag and transferred to the laboratory for analysis. Then they were air – dried and
homogenized to pass 1mm mesh sieve. About 0.2kg of each sample were weighed and fed into a plastic
container of about 8cm in height and 7cm in diameter. The containers were sealed for twenty eight (28) days for
the short – lived members of Uranium and Thorium series to reach a secular equilibrium [8]. The samples were
placed symmetrically on top of the detector and measured for 10 hours (36000 seconds). The net area under the
corresponding photopeaks in the energy spectrum was computed by subtracting count due to Compton
scattering of the background source from the total area of the photopeaks. The radionuclides were computed
using the algorithm of the multichannel analyzer (MCA).
The measuring instrument used in this research is the gamma ray spectrometer of detector of dimension
7.6cm by 7.6cm housed in a 6cm thick lead shield to minimize background radiation. The choice of the detector was due to
its modest resolution. The detector was coupled to a Multichannel Analyzer (MCA) through a photomultiplier tube, which
converts the visible light photons produced in the crystal into amplified electrical pulses, and an amplifier. The gamma
spectrometry detector was calibrated before it was used for analysis. This was done to ensure that the radiation parameters in
the samples could be expressed in physical radiometric units. This calibration was done in two stages. This is energy and
efficiency calibrations and efficiency calibrations. The energy calibration converts channel numbers to γ-ray energy in Mev.
This was done by placing different gamma sources of known energy on the detector at a distance of 7cm from it. After a
preset counting time of 36,000s, the channels of the various photopeaks corresponding to the gamma energies were
identified.
The efficiency calibration was to determine the gamma ray counting efficiencies over energy range of
0.662 – 2.615 Mev. This was done by converting the count per seconds under the photopeaks to activity
concentration Bq/kg of certified reference standard samples. The certified reference standard samples have
activity concentrations of 7.24 Bq/kg for 137
Cs (0.662 Mev), 510.00 Bq/kg for 40K (1.460 Mev), 631.00 Bq/kg
for 226Ra (1760 Mev of 214
Bi) and 11.00 Bq/kg for 232
Th (2.615 Mev of 208 Ti). Efficiencies at different
gamma energy peaks are represented in Table 1. The reference standard sources were counted for 10 hours
(36,000s) after which the counting efficiencies of the different gamma energies were determined
Table 1: Efficiencies at different gamma energy peaks
Standard sources Energy( ) Efficiency (%) Channel number
137
Cs 0.662 5.57 40
40
K 1.460 1.87 72
226
Ra 1.760 1.67 84
232
Th 2.615 1.35 125
III. RESULTS AND DISCUSSION
3.1 The activity concentration
The activity concentration of the samples could be computed from the count rate ( net
A ) under the
photopeak of each of the three primordial radionuclides using equation 1 [7, 9].
tMYA
A
SS
net


  …………………….1
Where 
 = the efficiency of the detector at a particular γ – energy
net
A = count rate under the photopeak of the three primordial radionuclides,
s
A = activity concentration in Bqkg-1

Y = the yield of the gamma ray at a particular energy,
s
M = the mass of the samples (0.2kg)
t = the counting time in seconds.
The values of the mean activity concentrations for the three local government areas investigated are in Table 2
Natural radiation levels and health hazard indices of soil in Owerri Nigeria
www.theijes.com The IJES Page 7
Table 2: The mean activity concentration of radionuclides.
Sample location 40
K( ) 226
Ra ( ) 232
Th ( )
OWN 165.5 19.4 17.9 3.3
OWW 163.5 8.3 19.7 19.6 3.4
OWM 172.5 13.1 20.1 2.0 16.8 3.2
Mean 167.2 19.7 18.1
3.2 Radium equivalent activity ( )
The radium equivalent activity ( ) was computed in this work in order to assess the gamma
radiation risk to human being. This compares the specific activity of the samples containing different amounts of
40
K, 226
Ra and 232
Th. It is defined as an estimation of radiation 370 of 226
Ra, 259 of 232
Th and
4810 of 40
K that produces the same gamma ray dose rate. This index is determined using the equation
2 ([10, 11].
(2)
Where , and are the activity concentrations of 40
K, 226
Ra and 232
Th in respectively. The
values of the radium equivalent activity obtained in this research are in Table 3 while the chat is shown in figure
1.
3.3 Absorbed dose rate ( ) and annual effective dose equivalent ( )
The absorbed dose rate in air ) in at about 1meter above the ground level due to the activity
concentration of 40
K, 226
Ra and 232
Th were computed using equation 3 [11, 12].
(3)
Where , and are the activity concentrations of 40
K, 226
Ra and 232
Th in respectively. The
values obtained are presented in Table 3 and the plot for the three LGAs investigated is shown in figure 1.
The annual effective dose equivalent due to the absorbed dose rate in air was computed using 8760
hours for one year, an indoor occupancy factor of 0.8 and the conversion coefficient of 0.7 using
equation 4. [11, 13].
(4)
The values of the effective dose equivalent (E) are presented in Table 3 and the plot is shown in figure 1
Natural radiation levels and health hazard indices of soil in Owerri Nigeria
www.theijes.com The IJES Page 8
Figure 1: The distribution of the mean values of radium equivalent activity ( ), absorbed dose rate ( ),
annual effective dose ( ) in the three LGAs that made up Owerri. (Note that the absorbed dose rate ( ) in the
graph is a multiple of 10-9
and annual effective dose equivalent ( ) is a multiple of 10-6
.)
3.4 External and internal health hazard indices ( and )
The concept of the hazard indices was used to assess the potential radiological risk associated with
human. Gamma radiation emitted by the radionuclides concern is an estimate of external hazard index that is
determined using equation 5 [11].
(5)
Radon (222
Rn) is a gaseous product of the decay of Radium (226
Ra). It is short-lived and constitute a major
source of internal radiation exposure [14, 15]. The internal exposure of living cells to radon and its daughter
products is referred to as internal hazard index ( ) and was estimated using equation 6 [11]
(6)
Where , and are the activity concentrations of 40
K, 226
Ra and 232
Th in respectively in both
equations 5 and 6. The values of external and internal health hazard indices are recorded in Table 3 and the plot
of their comparison to the world standard value is shown in figure 2
Table 3: The values of Raeq , D, E Hex and Hin compared to the world standard values
Sample location Number of samples
Bq/kg 10-9
(Gy/h) 10-6
(Svy-1)
OWN 10 57.7 26.7 130.98 0.16 0.21
OWW 10 60.3 27.8 136.38 0.17 0.22
OWM 10 57.4 26.7 130.98 0.15 0.20
Mean Values 58.5 27.1 132.78 0.16 0.21
World standard Values 370 60 450.00 1 1
Figure 2. The distribution of the internal and external hazard indices compared to their world standard value.
IV. CONCLUSION
The three primordial radionuclides of 40
K, 226
Ra and 232
Th have been measured and detected in all the
samples investigated from the three local government areas that make up Owerri city using Gamma ray
spectrometer of detector. These were used to compute the average terrestrial gamma radiation dose
rate, annual effective dose equivalents and the health hazard indices using standard analytical methods. Results
showed that the values of absorbed dose rate ( ) and annual effective dose equivalent ( ) are 27.1 and
132.78 respectively. The mean value of radium equivalent activity is 58.5 , while the values
of external and internal health hazard indices are 0.16 and 0.21 respectively. All these values obtained when
compared with the various United Nations Scientific committee on the Effect of Atomic Radiation (UNSCEAR)
Natural radiation levels and health hazard indices of soil in Owerri Nigeria
www.theijes.com The IJES Page 9
permissible values, were found to be below the standard for such environment. This shows that the risk of
radiological health hazard to Owerri city is considerably low. The values obtained could represent a baseline
study for natural radiation and the health hazard indices for future references and research in the city.
REFERENCES
[1]. Avwiri G.O., Chukwuocha E.O and Onwusika E.A (2011). Assessment of radionuclide concentration with depth in lithology of
Port Harcourt, Nigeria. Sciential Africana, 10(2):34-41.
[2]. Jibiri., N.N. and Emelue, H.U. (2008). Soil radioactivity concentration and radiological assessment in and around a refining and
petrochemical company in Warri, Delta State Nigeria. Journal of Radiological Protection, 28:361-368.
[3]. International Atomic Energy Agency Vienna, IAEA(1989): Guild book of the fallout radioactivity monitoring in environment
and food programme .
[4]. Odumo O.B., Mustapha, A.O., Patel J.P., Angeyo H.K.(2011). Radiological Survey and assessment of associated activity
concentration of the naturally occurring radioactive materials (NORMS) in the Migoriartisanal gold mining belt of Southern
Nyanza, Kenya. Applied Radiation and Isotopes, 69:912-916.
[5]. Farai, I. P and Jibiri, N.N.(2000). Baseline studies of terrestrial outdoor gamma dose rate levels in Nigeria. Radiation Protection
Dosimetry, 88(3):247-254.
[6]. Obed, R.I., Farai, I.P. and Jibiri, N.N. (2005). Population dose distribution due to soil radioactivity concentration levels in 18
cities across Nigeria. Journal of Radiological Protection 25:305-312.
[7]. Jibiri, N.N. and Okeyode , I.C.(2012). Evaluation of radiological hazards in the sediment of Ogun River South western Nigeria.
Radiation Physics and Chemistry,81:103-112.
[8]. Jibiri, N.N., Farai, I.P. and Alausa, S.K.(2007). Activity concentrations of 226
Ra,228
Th and 40
K in different food crops from high
background radiation area in Bitsichi, Jos, Plateau, Nigeria. Radiation Environmental Biophysics,46(1):53-59.
[9]. Beretka, J. and Mathew, P.J.(1985).Natural radioactivity of Australian building materials, industrial wastes and by-products,
Health Physics, 48(1):87-95.
[10]. United Nations Scientific Committee on the Effect of Atomic Radiation.(2000). Sources, effects and risks of ionizing radiation.
UNSCEAR report to the General Assembly, New York.
[11]. Farai, I.P. and Vincent, U.E.(2006). Outdoor radiation level measurement in Abeokuta, Nigeria with thermoluminiscent
dosimetry. Nigerian Journal of Physics, 18(1):121-126.
[12]. Akkurt, I., Mavi, B., Akyildirim, H. and Gunoglu, K. (2009). Natiral radioactivity 0f coals and its risk assessment. International
Journal of Physical Sciences, 4(7):403-406.
[13]. Akinloye, M.K. and Okeya, A.C.(2009). Contribution of fibre- cement building material to environmental radioactivity. Nigeria
Journal of Physics, 21(1):135-143.
[14]. Farai, I.P.(2011). Atomic energy: the myth and the truth. An inaugural lecture delivered at the university of Ibadan on Tuesday
15th
, September.Pp36-38.

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Natural radiation levels and health hazard indices of soil in Owerri Nigeria

  • 1. The International Journal Of Engineering And Science (IJES) || Volume || 3 || Issue || 12 || Pages || 05-09 || 2014 || ISSN (e): 2319 – 1813 ISSN (p): 2319 – 1805 www.theijes.com The IJES Page 5 Natural radiation levels and health hazard indices of soil in Owerri Nigeria 1 Nwaka, B.U., 1 Emelue H.U. and 1 Nwokocha C 1 Department of Physics, Alvan Ikoku Federal College of Education, P.M.B. 1033 Owerri, Imo State Nigeria ---------------------------------------------------------------ABSTRACT------------------------------------------------------ The natural radiation of soil samples from three local governments areas that make up Owerri city in Imo state, Nigeria were measured using gamma ray spectrometer. The mean values obtained were 167.2 ± 10.5 ( ), 19.7 ± 1.9 ( ) and 18.1 ± 3.3 ( ) for 40 K , 226 Ra and 232 Th respectively. These values were used to evaluate the radiological health hazard indices using standard analytical methods. The results showed that the mean value of radium equivalent activity is 58.5 , while the values of absorbed dose rate ( ) and annual effective dose equivalent ( ) are 27.1 and 132.78 respectively. The values of external and internal health hazard indices are 0.16 and 0.21 respectively. All these values obtained are lower than their world permissible United Nations Scientific Committee on the Effect of Atomic Radiation (UNSCEAR) values for such environment. This shows that the risk due to radiation contamination in the city of Owerri is low. Keywords: Activity concentration, gamma ray spectrometer, health hazard indices, Owerri, world standard values. --------------------------------------------------------------------------------------------------------------------------------------- Date of Submission: 30 October 2014 Date of Accepted: 20 December 2014 --------------------------------------------------------------------------------------------------------------------------------------- I. INTRODUCTION The human body is continuously exposed to ionizing radiation both from natural and artificial sources [1]. The gamma radiation emitted from naturally occurring radionuclides materials NORMs is called terrestrial background radiation. Materials such as rock, soil, underground water and air contain various NORMs in different concentrations in various locations of the world. Terrestrial background radiation produced during interaction of cosmic rays with the atmosphere is the major natural sources of radiation due to 40 K, 238 U, 232 Th and their decay products. There are also artificial sources of radiation such as 137 Cs, 434 Cs, 90 Sr, which are released due to human activities. The measurement of radionuclide concentrations in the environment is essential to the assessment of possible radiological risk to human [2]. This is because, exposure of humans to natural radiation is through inhalation of radon (222 Rn) gases, ingestion of food and direct external exposure [3]. Some radiological indices such as radium equivalent activity, absorbed dose rate, annual effective dose rate, external and internal hazard indices also depend on the activity concentrations of 40 K, 226 Ra and 232 Th. These values of radiological indices for different materials greater than the world average could contribute significantly to health risk [4]. Imo State is one of the thirty six (36) states of Nigeria. It has been the capital of the State since 1967 and it has grown from a small town to become one of the commercial hubs of the Southeastern Nigeria. It is also a gateway city from the Southwestern Nigeria to most of the Southeastern part of the country. As a result of this, there has been a great increase in commercial activities and human settlement over the years. These could bring about an increase in nuclear applications and its attendance risk of abuse or accident [6]. It is important therefore to measure the levels of radiation present in the environment at any given time in order to adequately assess the risk involved to the society. [6, 7] have done some studies in major cities in Nigeria, but none looked at the radiological hazard indices of Owerri city with the view to accurately ascertain the health risk to the area. The aim of the study therefore is to determine i The activity concentration of the three radionuclides of 40 K, 226 Ra and 232 Th ii The radiological health hazard implications to the public. iii And also to provide a radiometric data for further reference and research in the area.
  • 2. Natural radiation levels and health hazard indices of soil in Owerri Nigeria www.theijes.com The IJES Page 6 II. MATERIALS AND METHOD 2.1 Sample collection Soil samples were collected from 30 different locations in the three local government areas that make up the city of Owerri in Imo state. The local government areas are Owerri Municipal area (OWM), Owerri North (OWN) and Owerri West (OWW). This is to ensure a very good coverage of the entire region. Samples at each site were collected to a depth of about 150 mm to 200 mm below the soil surface. The samples were placed in a labeled waterproof nylon bag and transferred to the laboratory for analysis. Then they were air – dried and homogenized to pass 1mm mesh sieve. About 0.2kg of each sample were weighed and fed into a plastic container of about 8cm in height and 7cm in diameter. The containers were sealed for twenty eight (28) days for the short – lived members of Uranium and Thorium series to reach a secular equilibrium [8]. The samples were placed symmetrically on top of the detector and measured for 10 hours (36000 seconds). The net area under the corresponding photopeaks in the energy spectrum was computed by subtracting count due to Compton scattering of the background source from the total area of the photopeaks. The radionuclides were computed using the algorithm of the multichannel analyzer (MCA). The measuring instrument used in this research is the gamma ray spectrometer of detector of dimension 7.6cm by 7.6cm housed in a 6cm thick lead shield to minimize background radiation. The choice of the detector was due to its modest resolution. The detector was coupled to a Multichannel Analyzer (MCA) through a photomultiplier tube, which converts the visible light photons produced in the crystal into amplified electrical pulses, and an amplifier. The gamma spectrometry detector was calibrated before it was used for analysis. This was done to ensure that the radiation parameters in the samples could be expressed in physical radiometric units. This calibration was done in two stages. This is energy and efficiency calibrations and efficiency calibrations. The energy calibration converts channel numbers to γ-ray energy in Mev. This was done by placing different gamma sources of known energy on the detector at a distance of 7cm from it. After a preset counting time of 36,000s, the channels of the various photopeaks corresponding to the gamma energies were identified. The efficiency calibration was to determine the gamma ray counting efficiencies over energy range of 0.662 – 2.615 Mev. This was done by converting the count per seconds under the photopeaks to activity concentration Bq/kg of certified reference standard samples. The certified reference standard samples have activity concentrations of 7.24 Bq/kg for 137 Cs (0.662 Mev), 510.00 Bq/kg for 40K (1.460 Mev), 631.00 Bq/kg for 226Ra (1760 Mev of 214 Bi) and 11.00 Bq/kg for 232 Th (2.615 Mev of 208 Ti). Efficiencies at different gamma energy peaks are represented in Table 1. The reference standard sources were counted for 10 hours (36,000s) after which the counting efficiencies of the different gamma energies were determined Table 1: Efficiencies at different gamma energy peaks Standard sources Energy( ) Efficiency (%) Channel number 137 Cs 0.662 5.57 40 40 K 1.460 1.87 72 226 Ra 1.760 1.67 84 232 Th 2.615 1.35 125 III. RESULTS AND DISCUSSION 3.1 The activity concentration The activity concentration of the samples could be computed from the count rate ( net A ) under the photopeak of each of the three primordial radionuclides using equation 1 [7, 9]. tMYA A SS net     …………………….1 Where   = the efficiency of the detector at a particular γ – energy net A = count rate under the photopeak of the three primordial radionuclides, s A = activity concentration in Bqkg-1  Y = the yield of the gamma ray at a particular energy, s M = the mass of the samples (0.2kg) t = the counting time in seconds. The values of the mean activity concentrations for the three local government areas investigated are in Table 2
  • 3. Natural radiation levels and health hazard indices of soil in Owerri Nigeria www.theijes.com The IJES Page 7 Table 2: The mean activity concentration of radionuclides. Sample location 40 K( ) 226 Ra ( ) 232 Th ( ) OWN 165.5 19.4 17.9 3.3 OWW 163.5 8.3 19.7 19.6 3.4 OWM 172.5 13.1 20.1 2.0 16.8 3.2 Mean 167.2 19.7 18.1 3.2 Radium equivalent activity ( ) The radium equivalent activity ( ) was computed in this work in order to assess the gamma radiation risk to human being. This compares the specific activity of the samples containing different amounts of 40 K, 226 Ra and 232 Th. It is defined as an estimation of radiation 370 of 226 Ra, 259 of 232 Th and 4810 of 40 K that produces the same gamma ray dose rate. This index is determined using the equation 2 ([10, 11]. (2) Where , and are the activity concentrations of 40 K, 226 Ra and 232 Th in respectively. The values of the radium equivalent activity obtained in this research are in Table 3 while the chat is shown in figure 1. 3.3 Absorbed dose rate ( ) and annual effective dose equivalent ( ) The absorbed dose rate in air ) in at about 1meter above the ground level due to the activity concentration of 40 K, 226 Ra and 232 Th were computed using equation 3 [11, 12]. (3) Where , and are the activity concentrations of 40 K, 226 Ra and 232 Th in respectively. The values obtained are presented in Table 3 and the plot for the three LGAs investigated is shown in figure 1. The annual effective dose equivalent due to the absorbed dose rate in air was computed using 8760 hours for one year, an indoor occupancy factor of 0.8 and the conversion coefficient of 0.7 using equation 4. [11, 13]. (4) The values of the effective dose equivalent (E) are presented in Table 3 and the plot is shown in figure 1
  • 4. Natural radiation levels and health hazard indices of soil in Owerri Nigeria www.theijes.com The IJES Page 8 Figure 1: The distribution of the mean values of radium equivalent activity ( ), absorbed dose rate ( ), annual effective dose ( ) in the three LGAs that made up Owerri. (Note that the absorbed dose rate ( ) in the graph is a multiple of 10-9 and annual effective dose equivalent ( ) is a multiple of 10-6 .) 3.4 External and internal health hazard indices ( and ) The concept of the hazard indices was used to assess the potential radiological risk associated with human. Gamma radiation emitted by the radionuclides concern is an estimate of external hazard index that is determined using equation 5 [11]. (5) Radon (222 Rn) is a gaseous product of the decay of Radium (226 Ra). It is short-lived and constitute a major source of internal radiation exposure [14, 15]. The internal exposure of living cells to radon and its daughter products is referred to as internal hazard index ( ) and was estimated using equation 6 [11] (6) Where , and are the activity concentrations of 40 K, 226 Ra and 232 Th in respectively in both equations 5 and 6. The values of external and internal health hazard indices are recorded in Table 3 and the plot of their comparison to the world standard value is shown in figure 2 Table 3: The values of Raeq , D, E Hex and Hin compared to the world standard values Sample location Number of samples Bq/kg 10-9 (Gy/h) 10-6 (Svy-1) OWN 10 57.7 26.7 130.98 0.16 0.21 OWW 10 60.3 27.8 136.38 0.17 0.22 OWM 10 57.4 26.7 130.98 0.15 0.20 Mean Values 58.5 27.1 132.78 0.16 0.21 World standard Values 370 60 450.00 1 1 Figure 2. The distribution of the internal and external hazard indices compared to their world standard value. IV. CONCLUSION The three primordial radionuclides of 40 K, 226 Ra and 232 Th have been measured and detected in all the samples investigated from the three local government areas that make up Owerri city using Gamma ray spectrometer of detector. These were used to compute the average terrestrial gamma radiation dose rate, annual effective dose equivalents and the health hazard indices using standard analytical methods. Results showed that the values of absorbed dose rate ( ) and annual effective dose equivalent ( ) are 27.1 and 132.78 respectively. The mean value of radium equivalent activity is 58.5 , while the values of external and internal health hazard indices are 0.16 and 0.21 respectively. All these values obtained when compared with the various United Nations Scientific committee on the Effect of Atomic Radiation (UNSCEAR)
  • 5. Natural radiation levels and health hazard indices of soil in Owerri Nigeria www.theijes.com The IJES Page 9 permissible values, were found to be below the standard for such environment. This shows that the risk of radiological health hazard to Owerri city is considerably low. The values obtained could represent a baseline study for natural radiation and the health hazard indices for future references and research in the city. REFERENCES [1]. Avwiri G.O., Chukwuocha E.O and Onwusika E.A (2011). Assessment of radionuclide concentration with depth in lithology of Port Harcourt, Nigeria. Sciential Africana, 10(2):34-41. [2]. Jibiri., N.N. and Emelue, H.U. (2008). Soil radioactivity concentration and radiological assessment in and around a refining and petrochemical company in Warri, Delta State Nigeria. Journal of Radiological Protection, 28:361-368. [3]. International Atomic Energy Agency Vienna, IAEA(1989): Guild book of the fallout radioactivity monitoring in environment and food programme . [4]. Odumo O.B., Mustapha, A.O., Patel J.P., Angeyo H.K.(2011). Radiological Survey and assessment of associated activity concentration of the naturally occurring radioactive materials (NORMS) in the Migoriartisanal gold mining belt of Southern Nyanza, Kenya. Applied Radiation and Isotopes, 69:912-916. [5]. Farai, I. P and Jibiri, N.N.(2000). Baseline studies of terrestrial outdoor gamma dose rate levels in Nigeria. Radiation Protection Dosimetry, 88(3):247-254. [6]. Obed, R.I., Farai, I.P. and Jibiri, N.N. (2005). Population dose distribution due to soil radioactivity concentration levels in 18 cities across Nigeria. Journal of Radiological Protection 25:305-312. [7]. Jibiri, N.N. and Okeyode , I.C.(2012). Evaluation of radiological hazards in the sediment of Ogun River South western Nigeria. Radiation Physics and Chemistry,81:103-112. [8]. Jibiri, N.N., Farai, I.P. and Alausa, S.K.(2007). Activity concentrations of 226 Ra,228 Th and 40 K in different food crops from high background radiation area in Bitsichi, Jos, Plateau, Nigeria. Radiation Environmental Biophysics,46(1):53-59. [9]. Beretka, J. and Mathew, P.J.(1985).Natural radioactivity of Australian building materials, industrial wastes and by-products, Health Physics, 48(1):87-95. [10]. United Nations Scientific Committee on the Effect of Atomic Radiation.(2000). Sources, effects and risks of ionizing radiation. UNSCEAR report to the General Assembly, New York. [11]. Farai, I.P. and Vincent, U.E.(2006). Outdoor radiation level measurement in Abeokuta, Nigeria with thermoluminiscent dosimetry. Nigerian Journal of Physics, 18(1):121-126. [12]. Akkurt, I., Mavi, B., Akyildirim, H. and Gunoglu, K. (2009). Natiral radioactivity 0f coals and its risk assessment. International Journal of Physical Sciences, 4(7):403-406. [13]. Akinloye, M.K. and Okeya, A.C.(2009). Contribution of fibre- cement building material to environmental radioactivity. Nigeria Journal of Physics, 21(1):135-143. [14]. Farai, I.P.(2011). Atomic energy: the myth and the truth. An inaugural lecture delivered at the university of Ibadan on Tuesday 15th , September.Pp36-38.