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Hello, and welcome to another edition of White Papers on Whiteboards. My name is Keith Flaherty, and I'm a validation engineer here at Engineered Seal Products. Today, we will be talking about alignments, or misalignments, in a radial shaft seal system.
Use a caliper and measure the depth from a known distance. The face of the housing to the face of the seal - and again on the opposite side a couple of times around the seal. See the difference between the face of the seal on one side to the other. Ideally, it is flush, and you'll have a reading of 0.
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A radial shaft seal flange case has an extrusion on the case, pointed outwards. When you install this flush, the flanged case will hit the face of the housing; therefore, you know that it's perpendicular to the shaft.
Place the base of a dial indicator on the shaft and the dial surface on the surface of the bore. Slowly rotate the shaft and let it follow the housing. Take the reading from the dial indicator. It's recommended to keep the shaft-to-bore misalignment below 0.25mm.
Angular misalignment is when the face of the radial shaft seal is not perpendicular to the shaft. The seal is not installed flush with its housing.
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What is Radial Shaft Seal Dynamic Runout? Dynamic runout is where the center of the shaft is offset from the true center of rotation. The shaft, instead of rotating true, has a wobbling effect.
Dynamic runout is the only misalignment that's dynamic. So, it's critical as runout increases; to run at lower speeds. Otherwise, the seal will not be able to follow the shaft as it's wobbling at those higher speeds and will create little pockets, or gaps, within the shaft seal interface and cause a leak.
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Shaft-to-bore misalignment is an offset from the center of the shaft to the center of your housing. In that case, it will have a lot of loading from the seal on one side vs. the opposite side.
Considering these factors, as misalignment increases, wear parameters increase, resulting in a decrease in overall seal life.
Because the interference of the seal lip is critical to its life. If we have more interference on one side than the other, it will lead to several issues in your system. An increase in any of these misalignments ultimately leads to an increase in your underlip temperature, generating more heat and more contact from the seal on the shaft and will generate higher torque and eventually consuming more power from the seal. When we have higher interference, we get premature wear or additional wear. And in cases like shaft-to-bore misalignment, the wear is acentric – an extreme amount of wear on one side, and the opposite side will hardly have any wear.