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Overview

The Rocket Team uses bolts as its standard method of fastening the motor. This page will provide information on bolt torque, bolt shear stress, and bolt thread engagement calculations. 

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Motor Case Bolt Torque Specifications

Grade 8 Steel Fasteners

In order for a fastener to perform its job, it must be appropriately pre-loaded. All fasteners shall have an installation torque called out on their assembly document. To determine the appropriate torque for a fastener, a specific value may be determined or a value my be used from the reference tables below. 

Grade 8 Steel Fasteners

All calculations are for non-lubricated, non-galvanized fasteners.

SizeMajor Diameter [in]MinimumNominalDo Not ExceedNotes
#2-56.0862.12.5 in-lbs4 in-lbs 
#4-40.1124.45.2 in-lbs8.7 in-lbs 
#6-32.1388.29.6 in-lbs16.3 in-lbs 
#8-32.16416.819.8 in-lbs33.7 in-lbs 
#10-24.19019.422.8 in-lbs41 in-lbs 
1/4-20.2563.975.2 in-lbs143 in-lbs 
5/16-18.313112132 in-lbs295 in-lbs 
3/8-16.375201236 in-lbs528 in-lbs 

 

Motor Case Bolt Torque Specifications

This will provide an example on how to calculate the optimal bolt torque, using calculations for the bolt torque specification of the Hermes 3 motor case.

While the upper section table provides more general information, this section will provide specifics to get a more optimal value of bolt torquemore specific calculations.

Max Tensile Load

First we must calculate the maximum tensile load of the bolts being used. This is the measurement of the maximum amount of tension force the bolt can withstand before it fractures.  In the case of Hermes 3, we are using 5/16-18 by 5/8" Grade 8 Steel Bolts. 

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30.5 ft/lbs is now our final value for the optimal torque. This is necessary to guarantee that the bolt is not too loose (which would cause our seal to not be as strong), or too tight (which would deform our bolts and potentially damage the material being clamped). 

 

 

 

 

 

 

 

 

 

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Motor Case Bolt Shear Stress Calculation