PLANETARY PINION SHAFT
A planetary drive including a planet carrier with two axially spaced supports that include aligned bores is provided. A planetary gear is located on a through hardened pinion shaft extending axially through the aligned bores. The pinion shaft includes locally deformed axial ends such that the pinion shaft is axially fixed within the planet carrier and is circumferentially rotatable.
1 . A planetary drive, comprising:
a planet carrier including two axially spaced supports that include aligned bores, and
a planetary gear located on a through hardened pinion shaft extending axially through the aligned bores and including locally deformed axial ends such that the pinion shaft is axially fixed within the planet carrier and is circumferentially rotatable.
2 . The planetary drive of claim 1 , wherein the pinion shaft has a Rockwell hardness between 58-64.
3 . The planetary drive of claim 1 , wherein an axial clearance is provided between each of the locally deformed axial ends and a respective one of the supports.
4 . The planetary drive of claim 1 , wherein a needle roller bearing assembly is provided between the planetary gear and the pinion shaft.
5 . A method of fixing a pinion shaft within a planetary drive, said pinion shaft comprising a through hardened shaft blank, the method comprising:
arranging a planetary gear in a planet carrier,
positioning the pinion shaft in aligned bores of two axially spaced supports of the planet carrier and through the planetary gear, and
applying an impact force to axial ends of the pinion shaft such that the axial ends of the pinion shaft are locally deformed and the pinion shaft is axially fixed within the planet carrier and is circumferentially rotatable.
6 . The method of claim 5 , further comprising:
locating a needle roller assembly between the planetary gear and the pinion shaft.