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Out-of-field dose measurements in radiotherapy - An overview of activity of EURADOS Working Group 9: Radiation protection in medicine

Identifieur interne : 005D45 ( PascalFrancis/Curation ); précédent : 005D44; suivant : 005D46

Out-of-field dose measurements in radiotherapy - An overview of activity of EURADOS Working Group 9: Radiation protection in medicine

Auteurs : Saveta Miljanic [Croatie] ; Jean-Marc Bordy [France] ; Francesco D'Errico [Italie] ; Roger Harrison [Royaume-Uni] ; Pawel Olko [Pologne]

Source :

RBID : Pascal:15-0018440

Descripteurs français

English descriptors

Abstract

This review of dosimetry for second cancer risk estimation introduces work carried out by Working Group 9 (WG9: Radiation Protection Dosimetry in Medicine) of the European Radiation Dosimetry Group (EURADOS). The work concentrates on the measurement of out-of-field doses in water phantoms using a variety of dosimeters to measure photon and neutron doses. These include optically stimulated luminescence (OSL), radiophotoluminescence (RPL) and thermoluminescence (TLD) dosimeters for photon dosimetry (together with ion chambers for reference measurements) and track etch and superheated emulsion detectors for neutron measurements. The motivation of WG 9 was to assess undue, non-target patient doses in radiotherapy and the related risks of second malignancy. Improvements in cancer treatment have increased survival times and thus increased incidence of second cancer may be expected in the future. In addition, increased whole body exposure may result from some developments in radiotherapy. This means that radiotherapy clinics will need to simulate their treatments in order to estimate and minimise doses to healthy tissues and organs. The proposed work is designed to generate a robust dataset of out-of-field dose measurements which can be used for the development and validation of dose algorithms.
pA  
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A08 01  1  ENG  @1 Out-of-field dose measurements in radiotherapy - An overview of activity of EURADOS Working Group 9: Radiation protection in medicine
A09 01  1  ENG  @1 Proceedings of the 17th Solid State Dosimetry Conference (SSD17), Recife, Brazil, 22th-27th September, 2013
A11 01  1    @1 MILJANIC (Saveta)
A11 02  1    @1 BORDY (Jean-Marc)
A11 03  1    @1 D'ERRICO (Francesco)
A11 04  1    @1 HARRISON (Roger)
A11 05  1    @1 OLKO (Pawel)
A12 01  1    @1 KHOURI (Helen) @9 ed.
A12 02  1    @1 DE AZEVEDO (Walter M.) @9 ed.
A12 03  1    @1 CALDAS (Linda V. E.) @9 ed.
A12 04  1    @1 BAFFA (Oswaldo) @9 ed.
A12 05  1    @1 BAILLIFF (Ian) @9 ed.
A12 06  1    @1 BILSKI (Pawel) @9 ed.
A12 07  1    @1 BRANDAN (María-Ester) @9 ed.
A12 08  1    @1 CHEN (Reuven) @9 ed.
A12 09  1    @1 D'ERRICO (Francesco) @9 ed.
A12 10  1    @1 DEWERD (Larry) @9 ed.
A12 11  1    @1 MCKEEVER (Steve) @9 ed.
A12 12  1    @1 SAVETA (Miljanić) @9 ed.
A12 13  1    @1 ROSENFELD (Anatoly) @9 ed.
A12 14  1    @1 STADTMANN (Hannes) @9 ed.
A12 15  1    @1 SAWAKUCHI (Gabriel O.) @9 ed.
A12 16  1    @1 VANHAVERE (Filip) @9 ed.
A12 17  1    @1 WODA (Clemens) @9 ed.
A12 18  1    @1 YUKIHARA (Eduardo) @9 ed.
A12 19  1    @1 BOS (Adrie J. J.) @9 ed.
A14 01      @1 Ruder Bošković Institute, Bijenička c. 54 @2 10000 Zagreb @3 HRV @Z 1 aut.
A14 02      @1 CEA, LIST, LNE/LNHB @2 91191 Gif sur Yvette @3 FRA @Z 2 aut.
A14 03      @1 Department of Mechanical, Nuclear and Production Engineering, University of Pisa @3 ITA @Z 3 aut.
A14 04      @1 University of Newcastle upon Tyne @2 Newcastle @3 GBR @Z 4 aut.
A14 05      @1 Institute of Nuclear Physics @2 Krakow @3 POL @Z 5 aut.
A15 01      @1 Federal University of Pernambuco @2 Recife @3 BRA @Z 1 aut. @Z 2 aut.
A15 02      @1 IPEN-CNEN/SP @2 São Paulo @3 BRA @Z 3 aut.
A15 03      @1 University of São Paulo @3 BRA @Z 4 aut.
A15 04      @1 Durham University @3 GBR @Z 5 aut.
A15 05      @1 Institute of Nuclear Physics @2 Krakow @3 POL @Z 6 aut.
A15 06      @1 Universidad Nacional Autónoma de México @2 Mexico @3 MEX @Z 7 aut.
A15 07      @1 Tel-Aviv University @2 Tel-Aviv @3 ISR @Z 8 aut.
A15 08      @1 Yale University @2 New Haven @3 USA @Z 9 aut.
A15 09      @1 University of Wisconsin @2 Madison @3 USA @Z 10 aut.
A15 10      @1 Oklahoma State University @2 Stillwater @3 USA @Z 11 aut. @Z 18 aut.
A15 11      @1 Ruder Bošković Institute @2 Zagreb @3 HRV @Z 12 aut.
A15 12      @1 University of Wollongong @2 Wollongong @3 AUS @Z 13 aut.
A15 13      @1 Seibersdorf Labor GmgH @2 Seibersdorf @3 AUT @Z 14 aut.
A15 14      @1 Carletown University @2 Ottawa @3 CAN @Z 15 aut.
A15 15      @1 Belgian Nuclear Research Centre @2 Mol @3 BEL @Z 16 aut.
A15 16      @1 Helmholtz Zentrum München @2 Neuherberg @3 DEU @Z 17 aut.
A15 17      @1 Delft University of Technology @3 NLD @Z 19 aut.
A18 01  1    @1 International Solid State Dosimetry Organisation (ISSDO) @3 INT @9 org-cong.
A20       @1 270-275
A21       @1 2014
A23 01      @0 ENG
A43 01      @1 INIST @2 17536 @5 354000504590240580
A44       @0 0000 @1 © 2015 INIST-CNRS. All rights reserved.
A45       @0 1/4 p.
A47 01  1    @0 15-0018440
A60       @1 P @2 C
A61       @0 A
A64 01  1    @0 Radiation measurements
A66 01      @0 GBR
C01 01    ENG  @0 This review of dosimetry for second cancer risk estimation introduces work carried out by Working Group 9 (WG9: Radiation Protection Dosimetry in Medicine) of the European Radiation Dosimetry Group (EURADOS). The work concentrates on the measurement of out-of-field doses in water phantoms using a variety of dosimeters to measure photon and neutron doses. These include optically stimulated luminescence (OSL), radiophotoluminescence (RPL) and thermoluminescence (TLD) dosimeters for photon dosimetry (together with ion chambers for reference measurements) and track etch and superheated emulsion detectors for neutron measurements. The motivation of WG 9 was to assess undue, non-target patient doses in radiotherapy and the related risks of second malignancy. Improvements in cancer treatment have increased survival times and thus increased incidence of second cancer may be expected in the future. In addition, increased whole body exposure may result from some developments in radiotherapy. This means that radiotherapy clinics will need to simulate their treatments in order to estimate and minimise doses to healthy tissues and organs. The proposed work is designed to generate a robust dataset of out-of-field dose measurements which can be used for the development and validation of dose algorithms.
C02 01  2    @0 001E01C02
C02 02  2    @0 220C02
C03 01  2  FRE  @0 Rayonnement @5 01
C03 01  2  ENG  @0 radiation @5 01
C03 01  2  SPA  @0 Radiación @5 01
C03 02  2  FRE  @0 Protection @5 02
C03 02  2  ENG  @0 protection @5 02
C03 03  2  FRE  @0 Neutron @5 03
C03 03  2  ENG  @0 neutrons @5 03
C03 03  2  SPA  @0 Neutrón @5 03
C03 04  2  FRE  @0 Luminescence @5 04
C03 04  2  ENG  @0 luminescence @5 04
C03 04  2  SPA  @0 Luminiscencia @5 04
C03 05  2  FRE  @0 Thermoluminescence @5 05
C03 05  2  ENG  @0 thermoluminescence @5 05
C03 05  2  SPA  @0 Termoluminescencia @5 05
C03 06  2  FRE  @0 Ion @5 06
C03 06  2  ENG  @0 ions @5 06
C03 06  2  SPA  @0 Ión @5 06
C03 07  2  FRE  @0 Algorithme @5 07
C03 07  2  ENG  @0 algorithms @5 07
C03 07  2  SPA  @0 Algoritmo @5 07
C03 08  2  FRE  @0 Luminescence stimulée optiquement @5 08
C03 08  2  ENG  @0 OSL @5 08
C03 09  2  FRE  @0 Irradiation @5 10
C03 09  2  ENG  @0 irradiation @5 10
C03 09  2  SPA  @0 Irradiación @5 10
C03 10  2  FRE  @0 Radiothérapie @4 INC @5 52
C03 11  2  FRE  @0 Dosimétrie @4 INC @5 53
C03 12  2  FRE  @0 EURADOS @4 INC @5 54
C03 13  2  FRE  @0 TL @4 INC @5 55
C03 14  2  FRE  @0 OSL @4 INC @5 56
C03 15  2  FRE  @0 Détecteur @4 INC @5 57
N21       @1 026
N44 01      @1 OTO
N82       @1 OTO
pR  
A30 01  1  ENG  @1 SSD17 Solid State Dosimetry Conference @2 17 @3 Recife BRA @4 2013-09-22

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Pascal:15-0018440

Le document en format XML

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<s1>Universidad Nacional Autónoma de México</s1>
<s2>Mexico</s2>
<s3>MEX</s3>
<sZ>7 aut.</sZ>
</fA15>
<fA15 i1="07">
<s1>Tel-Aviv University</s1>
<s2>Tel-Aviv</s2>
<s3>ISR</s3>
<sZ>8 aut.</sZ>
</fA15>
<fA15 i1="08">
<s1>Yale University</s1>
<s2>New Haven</s2>
<s3>USA</s3>
<sZ>9 aut.</sZ>
</fA15>
<fA15 i1="09">
<s1>University of Wisconsin</s1>
<s2>Madison</s2>
<s3>USA</s3>
<sZ>10 aut.</sZ>
</fA15>
<fA15 i1="10">
<s1>Oklahoma State University</s1>
<s2>Stillwater</s2>
<s3>USA</s3>
<sZ>11 aut.</sZ>
<sZ>18 aut.</sZ>
</fA15>
<fA15 i1="11">
<s1>Ruder Bošković Institute</s1>
<s2>Zagreb</s2>
<s3>HRV</s3>
<sZ>12 aut.</sZ>
</fA15>
<fA15 i1="12">
<s1>University of Wollongong</s1>
<s2>Wollongong</s2>
<s3>AUS</s3>
<sZ>13 aut.</sZ>
</fA15>
<fA15 i1="13">
<s1>Seibersdorf Labor GmgH</s1>
<s2>Seibersdorf</s2>
<s3>AUT</s3>
<sZ>14 aut.</sZ>
</fA15>
<fA15 i1="14">
<s1>Carletown University</s1>
<s2>Ottawa</s2>
<s3>CAN</s3>
<sZ>15 aut.</sZ>
</fA15>
<fA15 i1="15">
<s1>Belgian Nuclear Research Centre</s1>
<s2>Mol</s2>
<s3>BEL</s3>
<sZ>16 aut.</sZ>
</fA15>
<fA15 i1="16">
<s1>Helmholtz Zentrum München</s1>
<s2>Neuherberg</s2>
<s3>DEU</s3>
<sZ>17 aut.</sZ>
</fA15>
<fA15 i1="17">
<s1>Delft University of Technology</s1>
<s3>NLD</s3>
<sZ>19 aut.</sZ>
</fA15>
<fA18 i1="01" i2="1">
<s1>International Solid State Dosimetry Organisation (ISSDO)</s1>
<s3>INT</s3>
<s9>org-cong.</s9>
</fA18>
<fA20>
<s1>270-275</s1>
</fA20>
<fA21>
<s1>2014</s1>
</fA21>
<fA23 i1="01">
<s0>ENG</s0>
</fA23>
<fA43 i1="01">
<s1>INIST</s1>
<s2>17536</s2>
<s5>354000504590240580</s5>
</fA43>
<fA44>
<s0>0000</s0>
<s1>© 2015 INIST-CNRS. All rights reserved.</s1>
</fA44>
<fA45>
<s0>1/4 p.</s0>
</fA45>
<fA47 i1="01" i2="1">
<s0>15-0018440</s0>
</fA47>
<fA60>
<s1>P</s1>
<s2>C</s2>
</fA60>
<fA61>
<s0>A</s0>
</fA61>
<fA64 i1="01" i2="1">
<s0>Radiation measurements</s0>
</fA64>
<fA66 i1="01">
<s0>GBR</s0>
</fA66>
<fC01 i1="01" l="ENG">
<s0>This review of dosimetry for second cancer risk estimation introduces work carried out by Working Group 9 (WG9: Radiation Protection Dosimetry in Medicine) of the European Radiation Dosimetry Group (EURADOS). The work concentrates on the measurement of out-of-field doses in water phantoms using a variety of dosimeters to measure photon and neutron doses. These include optically stimulated luminescence (OSL), radiophotoluminescence (RPL) and thermoluminescence (TLD) dosimeters for photon dosimetry (together with ion chambers for reference measurements) and track etch and superheated emulsion detectors for neutron measurements. The motivation of WG 9 was to assess undue, non-target patient doses in radiotherapy and the related risks of second malignancy. Improvements in cancer treatment have increased survival times and thus increased incidence of second cancer may be expected in the future. In addition, increased whole body exposure may result from some developments in radiotherapy. This means that radiotherapy clinics will need to simulate their treatments in order to estimate and minimise doses to healthy tissues and organs. The proposed work is designed to generate a robust dataset of out-of-field dose measurements which can be used for the development and validation of dose algorithms.</s0>
</fC01>
<fC02 i1="01" i2="2">
<s0>001E01C02</s0>
</fC02>
<fC02 i1="02" i2="2">
<s0>220C02</s0>
</fC02>
<fC03 i1="01" i2="2" l="FRE">
<s0>Rayonnement</s0>
<s5>01</s5>
</fC03>
<fC03 i1="01" i2="2" l="ENG">
<s0>radiation</s0>
<s5>01</s5>
</fC03>
<fC03 i1="01" i2="2" l="SPA">
<s0>Radiación</s0>
<s5>01</s5>
</fC03>
<fC03 i1="02" i2="2" l="FRE">
<s0>Protection</s0>
<s5>02</s5>
</fC03>
<fC03 i1="02" i2="2" l="ENG">
<s0>protection</s0>
<s5>02</s5>
</fC03>
<fC03 i1="03" i2="2" l="FRE">
<s0>Neutron</s0>
<s5>03</s5>
</fC03>
<fC03 i1="03" i2="2" l="ENG">
<s0>neutrons</s0>
<s5>03</s5>
</fC03>
<fC03 i1="03" i2="2" l="SPA">
<s0>Neutrón</s0>
<s5>03</s5>
</fC03>
<fC03 i1="04" i2="2" l="FRE">
<s0>Luminescence</s0>
<s5>04</s5>
</fC03>
<fC03 i1="04" i2="2" l="ENG">
<s0>luminescence</s0>
<s5>04</s5>
</fC03>
<fC03 i1="04" i2="2" l="SPA">
<s0>Luminiscencia</s0>
<s5>04</s5>
</fC03>
<fC03 i1="05" i2="2" l="FRE">
<s0>Thermoluminescence</s0>
<s5>05</s5>
</fC03>
<fC03 i1="05" i2="2" l="ENG">
<s0>thermoluminescence</s0>
<s5>05</s5>
</fC03>
<fC03 i1="05" i2="2" l="SPA">
<s0>Termoluminescencia</s0>
<s5>05</s5>
</fC03>
<fC03 i1="06" i2="2" l="FRE">
<s0>Ion</s0>
<s5>06</s5>
</fC03>
<fC03 i1="06" i2="2" l="ENG">
<s0>ions</s0>
<s5>06</s5>
</fC03>
<fC03 i1="06" i2="2" l="SPA">
<s0>Ión</s0>
<s5>06</s5>
</fC03>
<fC03 i1="07" i2="2" l="FRE">
<s0>Algorithme</s0>
<s5>07</s5>
</fC03>
<fC03 i1="07" i2="2" l="ENG">
<s0>algorithms</s0>
<s5>07</s5>
</fC03>
<fC03 i1="07" i2="2" l="SPA">
<s0>Algoritmo</s0>
<s5>07</s5>
</fC03>
<fC03 i1="08" i2="2" l="FRE">
<s0>Luminescence stimulée optiquement</s0>
<s5>08</s5>
</fC03>
<fC03 i1="08" i2="2" l="ENG">
<s0>OSL</s0>
<s5>08</s5>
</fC03>
<fC03 i1="09" i2="2" l="FRE">
<s0>Irradiation</s0>
<s5>10</s5>
</fC03>
<fC03 i1="09" i2="2" l="ENG">
<s0>irradiation</s0>
<s5>10</s5>
</fC03>
<fC03 i1="09" i2="2" l="SPA">
<s0>Irradiación</s0>
<s5>10</s5>
</fC03>
<fC03 i1="10" i2="2" l="FRE">
<s0>Radiothérapie</s0>
<s4>INC</s4>
<s5>52</s5>
</fC03>
<fC03 i1="11" i2="2" l="FRE">
<s0>Dosimétrie</s0>
<s4>INC</s4>
<s5>53</s5>
</fC03>
<fC03 i1="12" i2="2" l="FRE">
<s0>EURADOS</s0>
<s4>INC</s4>
<s5>54</s5>
</fC03>
<fC03 i1="13" i2="2" l="FRE">
<s0>TL</s0>
<s4>INC</s4>
<s5>55</s5>
</fC03>
<fC03 i1="14" i2="2" l="FRE">
<s0>OSL</s0>
<s4>INC</s4>
<s5>56</s5>
</fC03>
<fC03 i1="15" i2="2" l="FRE">
<s0>Détecteur</s0>
<s4>INC</s4>
<s5>57</s5>
</fC03>
<fN21>
<s1>026</s1>
</fN21>
<fN44 i1="01">
<s1>OTO</s1>
</fN44>
<fN82>
<s1>OTO</s1>
</fN82>
</pA>
<pR>
<fA30 i1="01" i2="1" l="ENG">
<s1>SSD17 Solid State Dosimetry Conference</s1>
<s2>17</s2>
<s3>Recife BRA</s3>
<s4>2013-09-22</s4>
</fA30>
</pR>
</standard>
</inist>
</record>

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