The present invention relates generally to motor vehicle shaft joints, and more particularly concerns a direct torque flow constant velocity joint having a male connection end.
Constant velocity joints (CVJ) connecting shafts to drive units are common components in automotive vehicles. The drive unit typically has an output shaft or an input shaft for receiving the joint. Typically, the drive unit is an axle, transfer case, transmission, power take-off unit or other torque device, all of which are common components in automotive vehicles. Typically, one or more joints are assembled to the shaft to form a propeller or drive shaft assembly. It is the propeller shaft assembly which is connected, for instance, at one end to the output shaft of a transmission and, at the other end, to the input shaft of a differential. The propeller shaft is solid or tubular with ends adapted to attach the shaft to an inner race of the joint thereby allowing an outer race connection with a drive unit. The inner race of the joint is typically press-fit, splined, or pinned to the shaft thereby making the outer race of the joint available to be bolted or press-fit to a hub connector, flange or stubshaft of the particular drive unit. At the other end of the propeller shaft, the same typical connection is made to a second drive unit when connecting the shaft between the two drive units. Connecting the shaft to a drive unit via the constant velocity joint in this manner is considered to be a traditional connection. Direct torque flow (DTF) connection is a newer connection style that has advantages and improvements over the traditional connection.
A DTF connection is different from the traditional connection because the outer race of the DTF connection is connected to the shaft that extends between different joints and the inner race is connectable to a drive unit. One example of a DTF connection provides the outer race of a CVJ friction welded to a propeller shaft, and the inner race of the CVJ includes a female spline that is connectable to a journal shaft of a transmission. However, a disadvantage of such an arrangement is that the inner race of the CVJ has a female connector type that necessitates connection to a shaft having a male connector extending from a drive unit. In addition, a seal is required somewhere between the shaft and inner race if the CVJ lubrication is to be maintained and the joint environment controlled. Moreover, the DTF connector is an indirect connection.
It would be advantageous to have a DTF constant velocity joint that overcomes the limitations indicated above. Moreover, it would be advantageous to have a DTF constant velocity joint that provides for direct connection to a drive unit. Furthermore, it would be advantageous to provide a DTF constant velocity joint having an improved seal.
Accordingly, the present invention provides a direct torque flow constant velocity joint (DTF CVJ) having a male connection end. The DTF CVJ male connector has a male extension shaft axially extending from the inner race that may provide for direct connection to a drive unit such as a transmission, transfer case or axle. The DTF CVJ male connector allows for additional flexibility in mounting positions of a sealing system and provides a reduction in the number of seals required for a constant velocity joint.
In one embodiment, a DTF CVJ direct connector includes an inner joint part, a shaft, a plurality of balls, and an outer joint part. The outer joint part is connected to the shaft and is articulately secured in a rotationally fast way to the inner joint part by the plurality of balls. The inner joint part includes an extension for direct engagement with a drive unit.
Also, a direct torque flow constant velocity joint connection is provided that includes a drive unit coupled to a direct torque flow constant velocity joint male spline connector.
The present invention provides a DTF CVJ male connector. The present invention itself will be best understood by reference to the following detailed description and taken in conjunction with the accompanying drawings.
For a more complete understanding of this invention, reference should now be made to the embodiments illustrated in greater detail in the accompanying drawings and described below by way of examples of the invention.
In the following description, various operating parameters and components are described for one or more constructed embodiments. These specific parameters and components are included as examples and are not meant to be limiting.
While the invention is described with respect to a direct torque flow constant velocity universal joint for use in a vehicle, the following apparatus is capable of being adapted for various purposes including automotive vehicle drive axles, motor systems that use a propeller shaft, or other vehicle and non-vehicle applications which require propeller shaft assemblies for torque transmission.
An exemplary drive system 12 for a typical four-wheel drive automobile is shown in
The shafts 22, 23, 24, 25, 27, 30, 32 may be solid or tubular with ends adapted to attach each shaft to an inner race or the outer race of a joint, in accordance with a traditional connection or a direct torque flow connection, thereby allowing the outer race or inner race to be connected to a hub connector 36, a flange 38 or stubshaft 40 of each drive unit, as appropriate, for the particular application. At least one of the connections identified in
For completeness of the description of the embodiment of the present invention as given in
Also, as used herein, a DTF connector refers to an outer race of a CVJ coupled to a shaft which forms a DTF assembly, such as a DTF propshaft assembly. Only together with the supplied drive unit, such as a differential, coupled to a inner race, for example, does a DTF connector combine to make a DTF connection. It is recognized that the drive unit may include any input or output drive unit and is not necessarily limited to a differential, a transmission or a transfer case.
The inner joint part 60 further includes a front face 88, a seat 90 and a groove 92. A clip (not shown) may be utilized in the groove 92 to axially secure the connector 50 to a drive unit (not shown) with a circlip (not shown) when the front face 88 of the inner joint part 60 is inserted into a connection port (not shown) of the drive unit, thereby bringing the seat 90 of the connector 50 into proximity with the drive unit.
Although the present invention as described in the embodiment illustrated in
A seat 90, a front face 88 or an extension 84 of an inner joint part may include, optionally, a drive unit seal (not shown) allowing for sealing connection between a drive unit and a connector 50. Moreover, more than one drive unit seal (not shown) may be utilized to seal or protect a spline 86 or an extension 84 of the inner joint part 60 from contamination when coupled to a drive unit.
Optionally, a power take-off (PTO) adaptor (not shown) may be included in an extension 84. The adaptor may include a female spline (not shown) extending internally into the extension 84 being accessible from the front face 88 of the extension. The adaptor may also axially extend through the extension to the inner joint part 60. By providing the power take-off adaptor, a second shaft (not shown) may be received and axially secured to a DTF CVJ male connector 50 in a rotationally fast way. Advantageously, the DTF CVJ male connector 50 together with the optional PTO adaptor enables shaft-to-shaft coupling for shaft extension and PTO applications.
Another option is a threaded port (not shown) that extends internally from a front face 88 into an extension 84 that axially extends from an inner joint part 60, whereby a bolt (not shown) may be received and axially secured to a DTF CVJ male connector 50 in a fast way. Advantageously, the DTF CVJ male connector 50 together with optional threaded port enable the inner joint part 60 to be secured to a drive unit (not shown) by the bolt. A person of skill in the art will recognized that the circlip (not shown) may be eliminated on the inventive DTF CVJ male connector 50 when the threaded port option is selected.
While the material, manufacture and treatment of the DTF CVJ male connector 50 has not been discussed, appropriate selection would be well understood by a person of skill in the art.
While the above embodiment of a DTF CVJ male connector having a spline on an extension of an inner joint part is provided as an example, it is recognized that various other types of direct or male connector configurations may also be used with the inventive DTF CVJ male connector, for example, without limitation, a keyed tooth.
Accordingly, the present invention provides a direct torque flow constant velocity joint (DTF CVJ) having a male connection end. The DTF CVJ has a male extension shaft axially extending from an inner race that may provide for direct connection to a drive unit such as a transmission, a transfer case or an axle. The DTF CVJ male connector allows for additional flexibility in mounting positions of a constant velocity joint and provides a reduction in the number of seals required for a constant velocity joint.
From the foregoing, it can be seen that there has been brought to the art a new and improved DTF CVJ male connector. While the invention has been described in connection with one or more embodiments, it should be understood that the invention is not limited to those embodiments. On the contrary, the invention covers all alternatives, modifications, and equivalents as may be included within the spirit and scope of the appended claims.