Hello,<br><br>well, obviously I don't have molecular mass for A, B and C, so I've assumed all was identical ( A=B=C=X g/mol ) to write an example for you.<br><br>in the same way if I use real molecular mass for the NaITl, and not Na=I=Tl, the material NaI(Tl)1% will be :<br><br>[Elements]<br>Sodium:     S= Na  ; Z= 11. ; A=  22.99  g/mole<br>Iodine:        S= I   ; Z= 53. ; A= 126.90  g/mole<br>Thallium:   S= Tl  ; Z= 81. ; A= 204.37  g/mole<br><br>[Materials]<br>NaI: d=3.67 g/cm3; n=2;  state=solid<br>    +el: name=Sodium ; n=1<br>      +el: name=Iodine ; n=1<br><br>NaITl: d=3.67 g/cm3; n=3;  state=solid<br>    +el: name=Sodium ; f=0.152<br>      +el: name=Iodine ; f=0.838<br>      +el: name=Thallium ; f=0.010<br><br>good luck,<br><br><br>Best regards,<br><br>Samuel BURG<br><br><br><br><b><i>k z <ksz589@yahoo.co.uk></i></b> a écrit :<blockquote class="replbq" style="border-left: 2px solid rgb(16, 16, 255); margin-left: 5px; padding-left: 5px;"> <div>Many thanks Samule, but how did you get it without knowing molecular mass for A, B and C?</div> <div> </div> <div>Thanks for elo and concern in advance.<br><br><b><i>Samuel BURG <samuel_burg@yahoo.fr></i></b> wrote:</div> <blockquote class="replbq" style="border-left: 2px solid rgb(16, 16, 255); padding-left: 5px; margin-left: 5px;">well, I think that you should use this syntax :<br><br> <div>ABC: d= 4.5 g/cm3 ; n=3 ; state=solid</div> <div>        +el: name=A;    <span style="font-weight: bold;">f</span>=xxx<br>        +el: name=B;    <span style="font-weight: bold;">f</span>=xxx<br>        +el: name=C;    <span style="font-weight: bold;">f</span>=xxx</div><br>or <br><br> <div>ABC: d= 4.5 g/cm3 ; n=3 ; state=solid</div> <div>        +el: name=A;    <span style="font-weight: bold;">n</span>=xxx<br>        +el: name=B;    <span style="font-weight: bold;">n</span>=xxx<br>        +el: name=C;    <span style="font-weight: bold;">n</span>=xxx</div><br>but don't mix "<span style="font-weight: bold;">f</span>" and "<span style="font-weight: bold;">n</span>" descriptor.<br><br>I've succefully defined NaI(Tl1 %) like this :<br><br>NaITl: d=3.67 g/cm3; n=3;  state=solid<br>    +el: name=Sodium ; f=0.495<br>      +el: name=Iodine ; f=0.495<br>      +el: name=Thallium ; f=0.01<br><br>so for you, try :<br><br> <div>ABC: d= 4.5 g/cm3 ; n=3 ; state=solid</div> <div>        +el: name=A;    <span style="font-weight: bold;">f</span>=0.18<br>        +el: name=B;    <span style="font-weight: bold;">f</span>=0.72<br>        +el: name=C;    <span style="font-weight: bold;">f</span>=0.10</div><br>Regards,<br><br>Samuel<br><br><b><i>k z <ksz589@yahoo.co.uk></i></b> a écrit : <blockquote class="replbq" style="border-left: 2px solid rgb(16, 16, 255); padding-left: 5px; margin-left: 5px;"> <div>Hi Gaters,</div> <div> </div> <div>I am tying to define new materials AB3C:(10%). Firstly I defined A, B, and C as element then I defined new material as:</div> <div> </div> <div>ABC: d= 4.5 g/cm3 ; n=3 ; state=solid</div> <div>        +el: name=A;    n=1<br>        +el: name=B;    n=4<br>        +el: name=C;    f=0.1</div> <div> </div> <div>When I run it I received this error:</div> <div> </div> <div><font color="#0000bf">This material is being already defined via element byatoms.</font></div> <div><font color="#0000bf">You are mixing apples and oranges..</font></div> <div><font color="#0000bf"></font> </div> <div><font color="#000000">Can you help please?</font></div> <div> </div> <div>Best wishes.</div> <div> </div> <div><br> </div> <div>Send instant messages to your online friends http://uk.messenger.yahoo.com _______________________________________________<br>Gate-users mailing list<br>Gate-users@lists.healthgrid.org<br>http://lists.healthgrid.org/mailman/listinfo/gate-users<br></div></blockquote><br> <div> <hr size="1"> Découvrez une nouvelle façon d'obtenir des réponses à toutes vos questions ! Profitez des connaissances, des opinions et des expériences des internautes sur <a href="http://fr.rd.yahoo.com/evt=42054/*http://fr.answers.yahoo.com">Yahoo! Questions/Réponses</a>.</div></blockquote><br><div> Send instant messages to your online friends http://uk.messenger.yahoo.com </div></blockquote><br><p>  <hr size="1"> Découvrez une nouvelle façon d'obtenir des réponses à toutes vos questions ! Profitez des connaissances, des opinions et des expériences des internautes sur <a href="http://fr.rd.yahoo.com/evt=42054/*http://fr.answers.yahoo.com">Yahoo! Questions/Réponses</a>.