Pumps & System, June 2008

Bigger Is Better-Or At Least It Used To Be

Owing partly to tradition, the shafts of electric motors are often larger than those of the equipment they drive. Engineers were very conservative a century ago when electric motors first came into widespread industrial use, so they typically designed in a sizable margin of error. Today's engineers haven't changed much in this respect. For example, standard NEMA frame dimensions, which have been revised only once since 1950, still specify much larger shaft sizes than commonly accepted principles of mechanical engineering would require.

Shaft Design Basics

Shaft size is dictated by torque, not horsepower, but changes in horsepower and speed (RPM) affect torque, as the following equation shows:

Torque (in pound-feet) = HP x 5252/RPM 

Accordingly, an increase in horsepower would require more torque, as would a decrease in rpm. For example, a 100-hp motor designed for 900-rpm would require twice as much torque as a 100-hp motor designed for 1,800-rpm. Each shaft must be sized for the torsional load it is expected to carry.

Two basic, quite conservative approaches are used to determine the required minimum shaft size for motors. One method calls for making the shaft large enough (and therefore strong enough) to drive the specified load without breaking, defined by mechanical engineers as the ability to transmit the required torque without exceeding the maximum allowable torsional shearing stress of the shaft material. In practice, this usually means that the minimum shaft diameter can withstand at least two times the rated torque of the motor.

Another way to design a shaft is to calculate the minimum diameter needed to prevent torsional deflection (twisting) during service, meaning for engineers that the allowable twisting moment, or torque, is a function of the allowable torsional shearing stress (in PSI or kPa) and the polar section modulus (a function of the cross-sectional area of the shaft).

Machinery's Handbook provides the following equations for determining minimum shaft sizes using both design approaches: resistance of torsional deflection and transmission of torque. Both sets of equations are based on standard values for steel, with allowable stresses of 4,000-psi (2.86-kg/mm2) for power-transmitting shafts, and 6,000-psi (4.29-kg/mm2) for line-shafts with sheaves (the proper name for what most of us incorrectly call pulleys). Some of the equations are also specific to keyed or non-keyed shafts-handy for pump users who need to know how to calculate the size of each kind.

The Transmission Of Torque Approach

easa-transmission-of-torque.jpgMost motor shafts are keyed, which increases the shear stress exerted on the shaft. Considering this, motor shaft designs typically use no more than 75 percent of the maximum recommended stress for a non-keyed shaft, which is also why electric motor shafts are often larger than the pump shafts they drive.

 

 

 

Example 1

Consider a 200-hp (150-kW), 1,800-rpm motor. For a direct-couple application, the standard frame size is 445TS, with a (keyed) shaft diameter of 2.375-in (60-mm). Using Equation [1], the minimum shaft size would be:

easa-example-1.jpgSince the calculated shaft diameter for a 200-hp motor is designed to withstand twice the rated torque, the shaft diameter of 2.371-in is at the absolute minimum for the 400-hp rating.

 

 

 

Resistance To Twisting Method 

The other way to calculate minimum shaft size for a motor is to set a limit on the amount of torsional deflection (twisting) that may occur. Resistance to torsional stress is directly proportional to shaft size: the larger the diameter, the greater the resistance to twisting.

A rule of thumb with this method is that the shaft must be large enough that it will not deflect more than 1 degree in a length of 20 times its diameter. To calculate the minimum shaft size to meet this specification, use the following equation:

easa-resistance-to-twist.jpgeasa-resistance-part-2.jpgExample 2 

For the 200-hp (150-kW), 1,800-rpm motor from Example 1, the minimum shaft size to limit torsional deflection would be:

 

easa-example-2.jpgThe minimum shaft diameters calculated by the torque transmission and torsional deflection methods are essentially the same for Examples 1 and 2. Still, a good approach is to calculate the size both ways, and then use the larger value as the absolute minimum.

Hollow-Shaft Designs 

Direct-coupled loads exert a twisting force (torsion) on the shaft, placing the greatest strain near the surface or radius and very little on the inside portion, which makes hollow-shaft designs practical for vertical motors. These designs allow the pump shaft to pass through the hollow motor shaft, which simplifies the coupling process for pump shafts that must support the heavy water column associated with a deep well.

The calculations for shaft diameter are not quite as straightforward for a vertical hollow-shaft motor. Two variables-the outside and inside diameters of the hollow-shaft-are not standardized, making it impossible to simplify the calculation with a ratio. For this reason, it is easier to demonstrate if a specific hollow-shaft is sufficient for a given power rating.

Example 3

A 200-hp (150-kW), 1,800-rpm hollow-shaft motor has an outside shaft diameter of 3-in (76-mm) and inside diameter of 2-in (51-mm). To determine if this shaft size is sufficient to transmit the required torque, solve the following equation for P:

easa-example-3.jpgFor this example, P must be greater than 200-hp to ensure that the shaft will be large enough to handle the torque of the motor.

80 x P/1800 = (34 - 24)/3

P = 1702-hp

Theoretically, this shaft is capable of transmitting 1,700-hp, so it is more than sufficient for the 200-hp requirement.

Example 4

The amount of torque that a hollow shaft can transmit depends on the thickness of the wall between its inside and outside diameters. A thinner wall cannot handle as much torque as a thicker one. The 3-in shaft in Example 3 was capable of transmitting 1,700-hp and had a wall .5-in thick: (3 - 2)/2 = .5-in. How much horsepower could a 3-in shaft transmit if the wall were only .25-in thick?

easa-example-4.jpgThe effect of a thinner wall is dramatic. The shaft with the .25-in wall can carry less than 20 percent of the torque of the shaft with .5-in wall.

 

Conclusion

Engineers tend to design using an ample safety factor, and older equipment in particular was over-designed even by today's standards. Of course, that is one reason many of us appreciate older machinery; it was darned reliable!

Keep in mind that adding a keyway to an existing shaft weakens the shaft. Likewise, increasing the bore diameter of a hollow-shaft reduces the torque capacity. Consider modifying a shaft only with good engineering support. Even then, remember that the greater the consequence of failure, the more generous the safety factor should be. After all, who wants to board an elevator that was designed and built with no safety factor?