1. Field of the Invention
An electromagnetic friction brake for a heavy-duty power transmission for controlling deceleration of a torque input shaft for the transmission during transmission ratio changes.
2. Background Art
A powertrain for a heavy-duty vehicle, such as a truck or a tractor trailer, typically has an engine that is connected driveably to a power input shaft for a multiple-ratio geared transmission by means of a so-called master clutch under the control of the vehicle driver. Driver operated shift rails and shift forks can be used to establish and disestablish torque flow paths through selected gear elements of the multiple-ratio transmission. Ratio changes can be accomplished manually by shifting synchronizer clutch sleeves into and out of engagement with companion gear elements or by shifting non-synchronized gear or clutch elements. The gear elements form a driving torque flow path through a transmission main shaft and a countershaft to a torque output shaft.
Multiple-ratio transmissions of this type, as well as heavy-duty power transmission mechanisms with power actuated clutches for establishing and disestablishing torque flow paths through the gearing, are well known. A ratio changing shift sequence typically involves disengagement of the master clutch to interrupt power flow from the vehicle engine to the torque input shaft of the transmission as the transmission clutch elements are selectively engaged and disengaged. When the master clutch is disengaged, a torque input shaft for the transmission must decelerate so that the gear elements of the on-coming torque flow path are generally in synchronism.
A brake may be used to facilitate shifting of the transmission gearing by decelerating the transmission torque input shaft thereby decreasing the time required to accomplish a ratio shift. A torque input shaft brake is especially useful when the vehicle driver initiates a shift from neutral to low ratio or from neutral to reverse following master clutch disengagement.
It is known in the art to provide a transmission input shaft brake that includes a friction member connected driveably, such as by splines, to the transmission torque input shaft. The transmission master clutch is disengaged by a master clutch release mechanism so that when the master clutch is disengaged, the release mechanism will apply a brake engaging force on the transmission input shaft brake. Friction brake elements of the input shaft brake are thus activated into frictional engagement, thereby creating a frictional drag torque that decelerates the transmission input shaft.
Patent application Ser. No. 10/760,665, filed Jan. 20, 2004, now U.S. Pat. No. 7,000,748, dated Feb. 21 2006, discloses a transmission input shaft brake with an electromagnetic brake actuator. That co-pending application is assigned to the assignee of the present invention. The electromagnetic brake disclosed in the co-pending application comprises an armature that is secured to the transmission input shaft adjacent a friction surface formed on an adjacent transmission housing wall. When the brake is energized, the armature is frictionally engaged with a stationary friction surface on the transmission housing wall thereby retarding or preventing rotation of the transmission torque input shaft at the outset of a ratio shift.
The electromagnetic brake of the co-pending application creates a magnetic flux flow path that is defined in part by a brake armature. The flux flow path envelopes portions of the transmission, including the transmission input shaft, a transmission input shaft bearing and bearing cover, and portions of the driver operated master clutch release mechanism.
The electromagnetic input shaft brake disclosed in the co-pending application includes a housing, which may replace a transmission input shaft bearing cap typically found on heavy-duty transmissions. The electromagnetic brake includes coil windings that are placed close to the input shaft to reduce the length of the coil windings and to reduce the amount of copper required in the manufacture of the coil. Typically, the electromagnetic brake is strategically positioned to minimize the space required to accommodate it in the transmission assembly.
The magnetic lines of flux created as the transmission input shaft brake is activated pass through the transmission input shaft and surrounding portions of the transmission that are of high carbon content, which may be magnetized following a period in which the transmission input shaft brake is frequently activated. It is possible, for example, for the transmission input shaft to be partially magnetized with a permanent residual magnetic intensity of about 0.5 to 1.0 Tesla. The transmission housing, which typically is formed of cast aluminum or cast iron with a low carbon content, does not readily become magnetized because those materials are relatively poor conductors for magnetic flux fields. The input shaft itself, however, as well as the bearing elements and other transmission elements and seal covers, are formed of high carbon steel and are in close proximity to the input shaft brake.
The return flux flow path in an arrangement of this type typically includes an armature plate of the input shaft brake, which may be a solid disk design because of its ease of manufacture and its low cost.
Because of partial or residual magnetization of transmission components in proximity to the input shaft brake, ferrous particles in an operating environment for the transmission can be attracted to rotary portions of the transmission and damage transmission bearings, seals and other transmission components.
The invention comprises an electromagnetic brake for a transmission input shaft wherein the electromagnetic elements of the input shaft brake are isolated from bearing and seal areas of the transmission mechanism and from the input shaft itself. This is accomplished by providing large air gaps between the magnetic flux conductors and adjacent ferrous material. The flux conductors include the coil housing and the armature.
At those locations where the flux conductors must come into physical contact with components of the transmission, such as the mounting structure and the fasteners for securing the brake to the transmission housing, the mating components may be formed of non-magnetic materials, such as aluminum or stainless steel.
The coil windings of the electromagnetic actuator for the input shaft brake is at a greater radius than the radius of the electromagnetic actuator disclosed in the co-pending application. The flux flow path thus is removed from close proximity to the input shaft. Further, the armature comprises a flexible plate with a restricted flux flow path therethrough. The plate may consist of a single annular ring or an annular ring with multiple sections, preferably four in number. Straps connect the ring to a center hub. This configuration forms large spaces between the periphery of the armature, where the ring is located, and the hub, thereby interrupting or restricting the flux flow path. The reduced cross-sectional area provided by the straps limits the amount of the magnetic flux that can pass in a radial direction from the ring to the hub, thereby semi-isolating the hub from the ring. To further ensure that the hub will resist a transfer of flux, it can be made of a non-magnetic stainless steel or some other non-magnetic material.
a is an enlarged partial cross-sectional view of an electromagnetic brake for the input shaft, together with a portion of the transmission input shaft assembled with the electromagnetic input shaft brake;
a is a view corresponding to the view of the input brake in
a is a modified armature design corresponding to the design of
The transmission of
The transmission housing includes a forward bearing support wall 18 with a central bearing opening that receives and supports a main transmission ball bearing 20. A bearing cap 22 is secured to the wall 18. A transmission input shaft 24 extends through the bearing cap and is supported by bearing 20. A lubrication oil seal 26 surrounds the input shaft 24 and is retained by the bearing cap 22.
Torque input shaft 24 may be driveably connected to a torque input gear 28 of the transmission mechanism. Gear 28 can be engaged driveably to countershaft gears in known fashion. It may be connected also by a dog clutch 30 to a transmission main shaft 32 in known fashion. Torque input shaft 24 is splined at 34 to establish a driving connection with an internally splined friction clutch hub 36, as seen in
The input shaft 24 of the known construction of
The input shaft 24′ of
The housing 48 is provided with an annular pocket 52, which receives electromagnetic coil windings 54. An annular pole face is provided, as shown at 56. The face 56 is situated directly adjacent and in juxtaposition with respect to an annular face 58 of the armature plate 42. When windings 54 are energized by an activating current, the armature plate 42 is shifted into engagement with the friction face 46 of the electromagnetic brake housing 48.
a shows the position of the armature plate 42 when the coil windings are de-energized. The residual spring force of the spring straps 44 move the armature plate 42 out of engagement with the surface 46.
When the coil windings are energized, rotary motion of the input shaft 24′ will be resisted by the frictional torque established by the electromagnetic brake thereby decelerating the input shaft 24′.
A diaphragm clutch actuator spring 82 is anchored at its periphery to the clutch housing 80, as shown at 84. An intermediate portion of the diaphragm spring actuator 82 engages a pressure point on the pressure plate 78, as shown at 86. The radially inward margin 89 of the diaphragm spring 82 surrounds an inner bearing race 88 for clutch release bearing assembly 90. Axial displacement of the inner race 88 will cause axial shifting movement of the inner margin 89 of the diaphragm spring 82 as a collar 92 carried by the inner race 88 engages the margin 89.
An outer race for the bearing 90 is an integral portion of clutch release bearing sleeve 94, which is provided with lubricating oil grooves 96 extending in an axial direction, as indicated in
The radially outward arm 110 of the release lever extends through the bell housing, shown at 10′, which corresponds to the bell housing 10 of
The intensity of the magnetic flux field decreases as the field flux flow lines separate from the vicinity of the electromagnetic brake coil windings. Flux flow lines shown at 114 are of lower intensity, but they envelope several transmission elements that are formed of magnetic material, such as the diaphragm spring 82, the clutch housing and the release bearing elements.
The master clutch elements and the clutch release bearing of
The electromagnetic clutch-brake housing 116 is provided with a pocket 118, which receives electromagnetic coil windings 120. The diameter of the coil windings in
A brake armature plate 122 is secured to the outer periphery of a flexible brake plate 124. The inner periphery of the brake plate 124 is secured to ring 126, which corresponds to the ring 40 shown in
Details of the construction of the armature plate and the flexible plate 124 are shown in
a shows an alternate construction in which the armature plate 122 is formed in four separate segments 130. Although four segments are shown, it is possible to use a different number of segments if that would be preferred.
Unlike the design indicated in
To further isolate the flux flow path, mounting fasteners for the electromagnetic brake may be made of non-magnetic material such as aluminum or stainless steel, which isolates the flux conductors from the surrounding components of the transmission and the master clutch.
The controller for the electromagnetic brake is schematically illustrated in
The electromagnetic brake may operate with a voltage source of 12 to 42 volts DC and may be controlled by a remotely placed switch in a convenient location. The switch may be located, for example, in the master cylinder of a hydraulic linkage or a clutch pedal linkage or a clutch release mechanism. Upon closure of the switch, which may be normally open, the coil windings for the brake will become energized thereby creating a magnetic field for braking the armature plate. In the alternative, the remote control switch can be used to activate a control relay, which in turn closes a set of normally-open switch contacts. Upon closure of the normally open switch contacts, power is supplied to the electromagnetic coil through a circuit protection device.
The circuit protection device, as shown at 154 in
The control system of
The switch that opens or closes the brake circuit is shown at 150. An over-current protection device, such as a fuse, can be used as shown at 152. The circuit protection device 154 may include a thermally activated switch that prevents over-heating due to prolonged usage or due to high current.
A control algorithm, seen at
In
The engine speed is measured, as indicated at 164. If the engine speed is not within predetermined limits, the routine will maintain the brake in an “off” position, as shown at 160.
If the engine speed is within the high and low limits, a decision is made at decision block 166 to determine whether the vehicle speed, measured as shown at 168, is less than a precalibrated set point. If the vehicle speed is higher than the set point, the brake will be kept “off” as shown at 160. If the vehicle speed is less than the set point, the brake is applied, as shown at 170.
When the brake is on, it is determined, as the routine continues, whether the timer is on. This is done at action block 172. If the timer is not timed out, the routine will continue, as shown at 174. If the timer value is greater than the set point, however, the brake will be kept off as shown at 160.
Although an embodiment of the invention has been described, it will be apparent to persons skilled in the art that modifications may be made without departing from the scope of the invention. All such modifications and equivalents thereof are intended to be covered by the following claims.
This application is a continuation-in-part of U.S. application Ser. No. 10/760,665, filed Jan. 20, 2004, entitled “Clutch Brake”, now U.S. Pat. No. 7,000,748.
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Number | Date | Country | |
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Number | Date | Country | |
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Parent | 10760665 | Jan 2004 | US |
Child | 11143069 | US |