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    <journal-meta />
    <article-meta>
      <title-group>
        <article-title>Environmental control systems for defining the activity size distribution of radioactive aerosols - a case study</article-title>
      </title-group>
      <contrib-group>
        <contrib contrib-type="author">
          <string-name>Alexandra Ioannidou</string-name>
          <xref ref-type="aff" rid="aff0">0</xref>
        </contrib>
        <aff id="aff0">
          <label>0</label>
          <institution>Aristotle University of Thessaloniki, Physics Department, Nuclear Physics &amp; Elementary Particle Physics Division</institution>
          ,
          <addr-line>Thessaloniki 54124</addr-line>
          <country country="GR">Greece</country>
        </aff>
      </contrib-group>
      <pub-date>
        <year>2011</year>
      </pub-date>
      <fpage>765</fpage>
      <lpage>770</lpage>
      <abstract>
        <p>The 1ACFM cascade impactor and the High Volume cascade impactors are the instruments that mainly used to define the activity size distribution of radioactive aerosols in the environmental air. The impactors are instruments designed to collect and separate particulate matter according to its aerodynamic size, determining the penetration of particles in the human lung, as well as the transport and diffusion of particles in the ambient air. An example of the activity size distribution of the natural radionuclide tracer 7Be is given, as this determined by a 20cfm cascade impactor.</p>
      </abstract>
    </article-meta>
  </front>
  <body>
    <sec id="sec-1">
      <title>Introduction</title>
      <p>environmental
The aerodynamic diameter of particles is a critical parameter in characterization of
suspension aerosols, while the aerodynamic size distribution defines the manner in
which the particles are deposited in the lung during inhalation.</p>
      <p>The impactors are instruments designed to collect and separate particulate matter
according to its aerodynamic size, which is the most important size in particle work
because it determines the penetration of particles in the human lung, as well as the
transport and diffusion of particles in the ambient air. These samplers were calibrated
so that all particles collected, regardless of physical size, shape, or density, are sized
aerodynamically and can be directly related to human lung deposition.</p>
      <p>In this study two cascade impactors are presented. Finally, the activity size
distribution of the natural radionuclide tracer 7Be in different inhalable fractions
(&lt;0.39 m, 0.30-0.69 m, 0.69-1.3 m, 1.3-2.1 m, 2.1-4.2 m , 4.2-10.2 m and
&gt;10.2 m) is given as this obtained by measurements with a 20cfm cascade impactor
in the region of the city of Thessaloniki, Greece.
Measurements on aerodynamic sizes of atmospheric aerosols and associated
radionuclides are mainly carried out with Anderson 1-ACFM eight-stage cascade
impactors as well as with 20 cfm (six-stage) high-volume cascade impactors (HVI).
______________________________</p>
      <p>The 1-ACFM eight stage cascade impactor (Fig. 1), is operating at a flow rate of
28 l min-1 (1 ft3 min-1). The stages had effective cutoff diameters (ECDs) of 0.4, 0.7,
1.1, 2.1, 3.3, 4.7, 5.8 and 9.0 m.</p>
      <p>
        Each impactor stage contains multiple precision drilled orifices. Each stage has a
removable glass petri dish with a metal cover. By subsequently making the orifice
diameter smaller on each stage of the Cascade Impactor, the particles are increased in
velocity and the aerodynamic separation of particles over a large range can be
determined. (Fig. 2) Successively smaller particles are inertially impacted onto the
collection surfaces
        <xref ref-type="bibr" rid="ref2">(http://www.labautomate.net/, http://www.globalspec.com/
FeaturedProducts/Detail/ThermoScientificAirQualityInstruments/The_Original_And
ersen_Cascade_Impactors/123307/0)</xref>
        .
      </p>
      <p>The High Volume Cascade Impactors HVI, are multi-stage cascade impactors
which attach to any standard high volume air sampler and fractionate particles into as
many as six size ranges (www.staplex.com, http://www.westechinstruments.com
/prodlist.asp? productCategory=Ambient Air Samplers).</p>
      <p>The 20cfm High Volume six-stage Cascade Impactor (Fig. 3) has ECDs of 0.41,
0.73, 1.4, 2.1, 4.2, and 10.2 m. The impactor is operated at the flow rate of 20cfm
and collection occurred on impaction collection filters.
Suspended particles enter the high volume air sampler and pass through the
parallel slots in the first impactor stage. Those particles larger than the particle
cutoff size of the first stage impact on a slotted collection substrate. The air stream
passes through the slots of the substrate and accelerates as it flows through the
narrower parallel slots of the following impactor stage and eventually most of the
particles acquire a sufficient momentum to impact on one of the collection substrates.
A back-up filter collects the remaining small particles passing through the last
impactor stage. All particles are collected allowing for determination of total particle
concentration.</p>
      <p>The cascade impactor was designed as a substitute for the human respiratory tract
to collect and separate particulate matter according to its aerodynamic size and
property (Fig. 4). Stage distribution of collected particle mass will indicate the extent
to which the aerosol sampled would have penetrated the human respiratory system.
This information is vital to environmentalist, aerosol physicists and industrial
hygienists for determining health risk and epidemiological risk.</p>
      <p>After sampling is completed, the sampling time is recorded and the collection
substrates are removed from the sampling instrument. Each substrate for each
cascade stage is counted in detectors for determining the radioactivity for each
radionuclide of interest in each stage. Knowing the air sampling flow rate and the
sampling time, the mean activity of a radionuclide per unit volume of air can be
calculated for each radionuclide of interest, and the percentage radioactivity in each
size range can be estimated.
3.</p>
    </sec>
    <sec id="sec-2">
      <title>A case study</title>
      <p>
        Beryllium-7 (t1/2 = 53.3 d) is a natural occuring radionuclide with cosmogenic origin
with an important fraction of its production taking place in the upper troposphere.
Soon after its formation 7Be is attached to atmospheric aerosol particles
        <xref ref-type="bibr" rid="ref6 ref7 ref8">(Porstendörfer et al., 1991; Papastefanou &amp; Ioannidou, 1995; Paatero and Hatakka,
2000; Eleftheriadis et al., 2007)</xref>
        .
      </p>
      <p>Our purpose is to define the aerodynamic size distributions of naturally occurring
radioactive aerosols of 7Be in the region of the city of Thessaloniki, Greece in the
temperate zones (40°N).
3.1 Aerosol Collection Procedure
Aerosol samplings were carried out in the open air by using a 20cfm high volume
6stage cascade impactor with a regulated air flow rate of about 0.57 m3 min!1 (20 cfm)
and Efficient Cutoff Diameters of 0.39, 0.69, 1.4, 2.1, 4.2 and 10.2 m.</p>
      <p>The length of each collection period was 24 h and the collected air volume was
3
about 800m . Glass fiber filters were used as impaction substrates. After the
collection procedure the filters were measured for 7Be activity (E"=477 keV) using a
high resolution (1.9 keV at 1.33 MeV), with 42% relative efficiency, low-background
HPGe detector (Fig.5). Activity Median Aerodynamic Diameters (AMAD) were
derived by calculating the percentage distribution in each size fraction and plotting
the cumulative frequency distribution on log probability paper.
The activity median aerodynamic diameter (AMAD) of 7Be aerosols ranged from
0.58 m to 1.22 m (avg 0.80 m) (Table 1). More than 80% of the 7Be activity was
found to be associated with particles smaller than 1.3 m (Fig. 6). Finally, the age of
aerosol particles was defined in the order of week.</p>
      <p>
        The local meteorological conditions seems to affect the activity size distribution of
7Be, while increased relative humidity during the sampling period results in incresed
AMAD values
        <xref ref-type="bibr" rid="ref9">(Ioannidou, 2011)</xref>
        .
4.
      </p>
    </sec>
    <sec id="sec-3">
      <title>Conclusions</title>
      <p>The 20cfm Cascade Impactor has been proved the ideal impactor for characterizing
the activity size distribution 7Be aerosols in a daily measurements. The estimation of
the AMAD values of 7Be aerosols allow us to detrmine the AMAD value of any
tropospheric aerosol of the same origin, and calculate the total residence time of
tropospheric aerososl in the order of a week.
1.4
1.2
0.0
0.1</p>
      <p>1
Aerodynamic Diemeter, !m</p>
      <p>10</p>
    </sec>
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