Community

Equivalent Static Force Method results seem a bit off...

Equivalent Static Force Method results seem a bit off...

Anonymous
Not applicable
848 Views
6 Replies
Message 1 of 7

Equivalent Static Force Method results seem a bit off...

Anonymous
Not applicable
‎10-27-2017 01:22 PM

Hi everyone,

 

I modelled this 2 storey building with loads applied to it and ran a Equivalent Static Force Procedure for the seismic calculations. The data that I've gotten doesn't seem to make much sense when I perform the same calculations using RSA's data. Please refer to the attachments for more info.

 

According to my hand calculations when using RSA's own data for input, I seem to be getting different results when compared to RSA's result. I use the same values for the shear calculation as shown in "Hand Calcs" document and yet the image file shows the base shear as 63.04kips while my hand calculations show 94.55kips. Is this a bug? 

Preview file
1331 KB
Preview file
53 KB
0 Likes
Like
Report
Accepted solutions (1)
Solution 1
849 Views
6 Replies
Replies (6)
Message 2 of 7

Anonymous
Not applicable
‎10-27-2017 01:23 PM

Model file attached if needed.

Building Model.rtd
0 Likes
Like
Report
Message 3 of 7

marcinrakus
Autodesk
Autodesk
in reply to Anonymous
‎10-30-2017 05:32 AM

Hi,

 

There is a limitation of base shear according to 4.1.8.11 (2) (I have a copy of NBC2005, but maybe the limitation remains)

 

BaseShearLimitation.PNG

 

Regards,

Marcin

Report
Message 4 of 7

Anonymous
Not applicable
in reply to marcinrakus
‎10-30-2017 05:54 AM

Hi marcinrakus,

 

Applying the values for the max shear does not get me any where close to the 63.04kip base shear. That highlighted equation gives me 48.49kip when I do it by hand....

 

Am I missing something..??? And yes, that limitation still applies in the NBCC 2010 Code.

0 Likes
Like
Report
Message 5 of 7

marcinrakus
Autodesk
Autodesk
in reply to Anonymous
‎10-30-2017 07:31 AM
Accepted solution

My calculations:

 

Vmax = 2 / 3 * S(0.2) * Ie * W / Rd / Ro = 2 / 3 * Fa * Sa(0.2) * Ie * W / Rd / Ro = 2.0 / 3.0 * 1.3 * 0.17 * 1.0 * 834.35 / 1.3 / 1.5 = 63.72

 

Regards,

Marcin

0 Likes
Like
Report
Message 6 of 7

DennisVDijk
Advocate
Advocate
in reply to Anonymous
‎10-30-2017 08:59 AM

Hello Omusafer,

 

I think u shoul not convert case 1 in the load to mass conversion. the mass of your stucture wil be counted twise.

foto.PNG

 

when you cut out case 1 your mass wil be lower.

 

maybe this site will help (input in kN and meters):

http://www.jabacus.com/engineering/load_2005/seismicload.php

 

Maybe this would help.

 

Kind regards,

Dennis van Dijk
Structural engineer
www.ibureaunoordwolde.nl
Report
Message 7 of 7

Anonymous
Not applicable
in reply to DennisVDijk
‎10-30-2017 10:11 AM

Hello Dennis,

 

Thank you for your input. I checked it without its own self weight and it does add its own dead weight into the analysis. Thank you once again for pointing it out. Smiley Happy

0 Likes
Like
Report
Report a website issue