The present invention relates to an apparatus and method of bending a vehicle's axle and especially to a method and apparatus for bending a vehicle's solid or non-steering axle, such as the solid rear axle of a vehicle or a solid axle of a semi-trailer, to align the toe angle of the wheels mounted to the solid axle.
Properly aligned wheels of a vehicle have long been a necessity for long tire life, handling ease and for achieving optimal fuel economy. The vehicle wheels need to travel in a straight line, with all wheels pointing in the same direction. That is, all four wheels must be square to each other and square to the road surface. All four wheels need to be parallel to one another and the axles perpendicular to a common center line.
Full attention has generally focused on the alignment of the front wheels. However, a misaligned solid rear axle housing and axle, or the solid axle housing on a semi-trailer, can also result in reduced tire life and reduced fuel economy. A misaligned axle causes excessive tire drag and creates undesirable lateral forces. Even in new trucks, studies have shown that most solid axles need alignment to align the solid axle housing and axles relative to the suspension element and frame of the vehicle and to adjust the toe angle of the wheels mounted on the axle. The vehicle wheels need to be parallel to one another. Because of the increased tire wear and reduced fuel economy, even small mis-alignments of a fixed axle become particularly important for freight carrying vehicles that must travel long distances. However, obtaining the proper alignment in an assembly line setting is difficult as is the minute adjustment that must be made quickly and accurately.
It has been common to perform a front end alignment using laser based wheel alignment systems. The axis about which the front wheel of an automobile or truck turns as it travels down the road must be carefully set to minimize tire wear, for safety and for stable handling characteristics. The orientation of these axes is determined by three angles. The toe angle specifies the angle between the rim of the wheels and a line drawn parallel to the direction in which the vehicle is pointed while the camber angle specifies the angle between the rim of the wheels and vertical while the caster angle specifies the angle between the vertical and the axes about which individual wheels turn when changing direction. These angles are specified individually for each wheel for each model and make of a vehicle. It must be periodically tested and reset to ensure continued economic and safe vehicle performance. However, in addition to front wheel alignment, it is desirable to set the toe angle of a solid rear axle or semi-truck trailer solid axles to avoid wheel scrub or dog tracking and reduced tire wear and reduced mileage for the vehicle.
The present invention is directed to correcting the toe angle of wheels mounted to a solid rear or trailer axle housing to reduce scrub in the axle wheels. The wheel angle being only slightly out of alignment will produce increased tire wear and reduced mileage for a vehicle. A laser alignment system is used for aligning both the front end and the wheels mounted to an axle having a solid axle housing in which a laser is attached to each vehicle wheel spindle or hub, as set forth in the Loescher U.S. Pat. No. 6,823,598. The lasers are pointed at targets to measure and bring the wheels into proper alignment.
The present invention relates to a laser alignment system and especially to alignment of the toe angle of vehicle wheels mounted to an axle having a solid or non-steering axle housing to eliminate scrub in the wheels, reduced mileage, and increased wear on the tires mounted on the wheels of a vehicle.
An apparatus is provided for adjusting the toe angle of wheels mounted on an axle having a solid axle housing. The apparatus includes a pair of axle housing collars with each collar being shaped to be attached onto opposite ends of a vehicle solid axle housing and a center truss member shaped for attachment to the center portion of a vehicle solid axle housing between the pair of axle housing collars. The center truss member extends horizontally away from said axle housing and may be attached to the differential of a vehicle axle housing having a rear end differential. A pair of adjustable tie rods each being adjustable as to length and each having two ends. Each tie rod has one end thereof movably attached to the truss member with the other end being movably attached to one of the axle housing collars so that adjusting the length of the tie rods attached to a solid axle housing bends the solid axle housing. A pair of wheels attached to an axle of a solid axle housing are adjusted for toe angle by bending the solid axle housing by varying the length of attached adjustable tie rods.
A method of adjusting the toe angle of wheels mounted on a vehicle's axle having a solid axle housing starts with the step of selecting a pair of axle housing collars and attaching each selected collar onto opposite ends of a vehicle solid axle housing. The next step is selecting a center truss member and attaching it to the center portion of a vehicle solid axle housing between the pair of attached axle housing collars. Then selecting a pair of adjustable tie rods and movably attaching each selected tie rod between one attached collar and the attached truss member. Then adjusting the length of each tie rod to vary the length thereof to bend a solid axle housing in order to adjust the toe angle of a pair of wheels attached to a solid axle by bending the solid axle housing by varying the length of attached tie rods to move the axle housing.
The method includes the step of attaching a laser to the axle housing or axle and positioning a target to measure the toe angle in the wheels mounted to the axle having a solid non-steering axle housing.
The accompanying drawings which are included to provide a further understanding of the invention are incorporated in and constitute a part of the specifications to illustrate an embodiment of the invention and, together with the description, serve to explain the principles of the invention.
In the Drawings
Referring to
Turning to
In the present invention, the apparatus 30 as seen in
As seen in
The process of the present invention includes the steps of mounting the lasers to the vehicle wheel spindles or hubs and positioning targets for directing the laser beams to check and correct the alignment of the wheels. This includes the step of selecting the apparatus 30 including selecting a pair of axle housing collars 31 and 32 and attaching them to the axle 20 housing 22. Next the center truss member 33 is selected and attached to the center portion of the axle 20 housing 22 which may be attached to a differential 21 where the axle 20 includes a differential. Then a pair of adjustable tie rods 38 and 40 are selected and attached between the center truss member and the axle housing collars. The adjustable tie rods 38 and 40 are then elongated or contracted to bend the axle 20 housing 22 and align the toe angle of the wheels attached to the vehicle axle 20 as indicated by the laser beams impinging upon the targets 15 and 16.
It should be clear at this point that the system for aligning the toe angle of the wheels mounted on an axle having a solid non-steering axle housing has been provided which bends the axle housing that the wheels are mounted on. The method of adjusting the toe angle of wheels mounted on an axle having a solid axle housing an axle housing bender attached to the solid axle housing of a vehicle and bends the housing to align the wheels attached to the axle to bring the position of the wheels into alignment to improve the handling of the vehicle along with reduced tire wear and improved fuel mileage. However, the present invention is not to be considered as limited to the embodiments shown which are to be considered illustrative rather than restrictive.
Number | Name | Date | Kind |
---|---|---|---|
242480 | Schofield | Jun 1881 | A |
507181 | Taylor | Oct 1893 | A |
844029 | Lease | Feb 1907 | A |
1144443 | Sunvold | Jun 1915 | A |
1153996 | Brocksmith | Sep 1915 | A |
1299732 | Kelly | Apr 1919 | A |
1765066 | Fogger | Jun 1930 | A |
2073322 | Siemiana | Mar 1937 | A |
2522066 | Smith | Sep 1950 | A |
2602007 | Van Der Wilt | Jul 1952 | A |
3095242 | Van Der Wilt | Jun 1963 | A |
3410575 | Turnbull et al. | Nov 1968 | A |
4310200 | Olender | Jan 1982 | A |
4537420 | Ito et al. | Aug 1985 | A |
4863267 | Bendickson et al. | Sep 1989 | A |
4867472 | Ward | Sep 1989 | A |
5645294 | Ward | Jul 1997 | A |
5724743 | Jackson | Mar 1998 | A |
5941545 | Park | Aug 1999 | A |
6047789 | Iwanaga | Apr 2000 | A |
6402168 | Chino et al. | Jun 2002 | B1 |
6435527 | Katae | Aug 2002 | B1 |
6823598 | Loescher | Nov 2004 | B1 |
6962356 | Kwon | Nov 2005 | B2 |
7325818 | Kwon | Feb 2008 | B1 |
7850178 | Fischer et al. | Dec 2010 | B2 |
8205892 | Mackin et al. | Jun 2012 | B2 |
20070273117 | Kwon | Nov 2007 | A1 |
20120013098 | Hart | Jan 2012 | A1 |
Number | Date | Country | |
---|---|---|---|
20120313337 A1 | Dec 2012 | US |