AGMA 05FTM18-2005 Planet Pac Increasing Epicyclic Power Density and Performance Through Integration《Planet Pac 通过集成提高周转功率的密度和性能》.pdf
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1、05FTM18Planet Pac: Increasing Epicyclic PowerDensity and Performance ThroughIntegrationby: D.R. Lucas, The Timken CorporationTECHNICAL PAPERAmerican Gear Manufacturers AssociationPlanet Pac: Increasing Epicyclic Power Density andPerformance through IntegrationDouglas R. Lucas, The Timken Corporation
2、The statements and opinions contained herein are those of the author and should not be construed as anofficial action or opinion of the American Gear Manufacturers Association.AbstractEpicyclical gear systems are typically equipped with straddle-mounted planetary idlers and are supported bypins on t
3、he input and output sides of a carrier. These carriers can be either one-piece or two-piece carrierdesigns. Traditionally many of the higher power rated epicyclic gear systems use cylindrical roller bearings tosupport the planetary gears. This paper will demonstrate that using a preloaded taper roll
4、er bearing in anintegrated package should be the preferred choice for this application to increase the bearing capacity, powerdensity, and fatigue life performance. Based on DIN281-4 calculations, this patented 1, fully integratedsolution allows for calculated bearing fatigue lives to be 5 times gre
5、ater than a non-integrated solution andmore than 1.5 times greater than a semi-integrated solution, without changing the planet gear envelope.Copyright 2005American Gear Manufacturers Association500 Montgomery Street, Suite 350Alexandria, Virginia, 22314October, 2005ISBN: 1-55589-866-11 Planet Pac:
6、Increasing Epicyclic Power Density And Performance through Integration Douglas R. Lucas: Principal Application Engineer The Timken Corporation Introduction - Design Challenges of an Epicyclic Gear System An epicyclical gearing system is particularly well suited for achieving a high reduction ratio i
7、n a relatively small, power dense package. A typical straddle mounted planetary idler utilizing cylindrical roller bearings (CRB) is shown in Figure 1. Because of the power density, epicyclic systems have become a popular choice for designers. They have consequently been incorporated into countless
8、types of machines including automobile transmissions, off-highway equipment final drives, wind turbine gearboxes, and cement mill crusher drives, to name a few. As with any type of power transmission system, an engineer is faced with many analytical challenges during the design phase to ensure that
9、a highly reliable power train is achieved. In the case of an epicyclical gearing system, this challenge is made particularly difficult due to the complex interaction of revolving and rotating components as they transmit power. Figure 1 - Conventional Planetary Idler But, for just about all equipment
10、 types, economics dictate the need for increased power density and improved reliability. A Planet Pac can be used to further utilize an existing design and provide increased reliability, while minimizing the expense of design changes. On the other hand, power density also allows for a design to be m
11、ade smaller, thus reducing cost and weight. What Is Planet Pac? Traditionally high power planetary gear sets are composed of a gear, two outer races, two inner races, two rows of rolling elements, two cages, and a carrier pin. Some applications may also include spacers or snap rings. Most times the
12、gear lives are calculated using a 99% reliability or L1fatigue life; whereas the bearings that support the gears are calculated using a 90% reliability, an L10fatigue life. Some gearbox manufacturers have implemented semi-integrated bearings into their planetary systems. The semi-integrated solution
13、, as shown in Figure 2, involves integrating the bearing outer races into the gear. There are design guidelines that define recommended gear rim thicknesses as a ratio of the gear module, i.e. three times the gear module. By making this change, the bearing pitch diameters and roller diameters can be
14、 increased, thus increasing the bearing capacity and resulting fatigue performance. Figure 2 - Semi-Integrated Planet Pac 2 Substantial improvements can be made by taking advantage of modern bearing technology and further integration of components to achieve an extremely power dense design. This int
15、egration, as shown in Figure 3, may include full integration of the gears with the bearing outer races and full integration of the carrier pin with the bearing inner races. A full complement of rollers is used in combination with a proprietary coating, ES300, to prevent metal adhesion from roller to
16、 roller. This advancement is the Planet Pac. This specific design requires a two-piece carrier design that must be bolted together for assembly of the planetary system. This design eliminates two outer races, two inner races, a spacer, and four surfaces interfaces. Eliminating the interfaces will el
17、iminate potential precessing of the races, fretting corrosion, and loss of bearing setting which then leads to premature bearing failure. There is an additional rib ring that is required to control the bearing setting and unitize the package product. Additional features like force oil lubrication ca
18、n be added to the package. Figure 3 Two-Piece Carrier, Fully-Integrated Planet Pac Some gearbox manufacturers may use a one-piece carrier design. This carrier design uses similar carrier plates as the two-piece carrier design, however they are not separable. The gears must be slid between the two fi
19、xed carrier plates. A pin is then located through the bearing inner races to hold the bearings and gears in place. In this case the Planet Pac, as shown in Figure 4, cannot utilize the inner races integrated into the pin. However, the inner races can be integrated together, a rib ring added for sett
20、ing, and a full complement of rollers with ES300 coating can be used to increase the power density of the bearing assembly. Figure 4 One-Piece Carrier, Integrated Planet Pac Integration allows for increased bearing capacity by adding additional rolling elements to the bearing, increasing the size of
21、 the rolling element, and/or increasing the bearing pitch diameter. This novel approach to design and construction provides increased opportunity to add power density to an epicyclical gear drive in the axial and radial directions. By integrating the inner races into the shaft, the shaft sections wi
22、ll increase under the bearing rolling elements, resulting in decreased beam stresses. The pin diameter into the carrier plate can be maintained at the same size and the bending and shear stresses will not increase. However the integration will introduce a square corner at the pin-carrier interface.
23、This will require a stress concentration factor analysis, per the ANSI/AGMA 6001-D97 2 and if necessary, a pin diameter adjustment. As mentioned previously, both of these designs utilize a detachable large rib ring on the inner race, as shown to the right of the right row of rollers (see Figure 3 an
24、d Figure 4). For tapered roller bearings (TRB) this rib ring would be used to very accurately define the bearing setting at the bearing factory. This eliminates the need for the epicyclic gearbox manufacturer to preload the bearings, one reason that many gearbox manufacturers use CRB or spherical ro
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