The present disclosure relates generally to switching roller finger followers or rocker arms in internal combustion engines.
Variable valve actuation (VVA) technologies have been introduced and documented. One VVA device may be a variable valve lift (VVL) system, a cylinder deactivation (CDA) system such as that described in U.S. Pat. No. 8,215,275 entitled “Single Lobe Deactivating Rocker Arm” hereby incorporated by reference in its entirety, or other valve actuation systems. Such mechanisms are developed to improve performance, fuel economy, and/or reduce emissions of the engine. Several types of the VVA rocker arm assemblies include an inner rocker arm within an outer rocker arm that are biased together with torsion springs.
Switching rocker arms allow for control of valve actuation by alternating between latched and unlatched states. A latch, when in a latched position causes both the inner and outer rocker arms to move as a single unit. When unlatched, the rocker arms are allowed to move independent of each other. In some circumstances, these arms can engage different cam lobes, such as low-lift lobes, high-lift lobes, and no-lift lobes. Mechanisms are required for switching rocker arm modes in a manner suited for operation of internal combustion engines.
The background description provided herein is for the purpose of generally presenting the context of the disclosure. Work of the presently named inventors, to the extent it is described in this background section, as well as aspects of the description that may not otherwise qualify as prior art at the time of filing, are neither expressly nor impliedly admitted as prior art against the present disclosure.
A switching rocker arm assembly constructed in accordance to one example of the present disclosure includes an outer arm, an inner arm, a bearing axle, a first torsional bearing axle spring and a second torsional bearing axle spring. The outer arm has a first outer side arm and a second outer side arm. The outer arm further includes a first tang extending from the first outer side arm and a second tang extending from the second outer side arm. The outer arm defines a first slot inboard of the first tang and a second slot inboard of the second tang. The outer arm further includes a first and a second torsional spring boss. The inner arm is disposed between the first and second outer side arms. The first torsional bearing axle spring is mounted around the first torsional spring boss and has a first end nestingly received at the first slot and a second end engaged to the bearing axle. The second torsional bearing axle spring is mounted around the second torsional spring boss and has a first end nestingly received at the second slot and a second end engaged to the bearing axle. The first ends of the first and second torsional springs are laterally constrained by the respective first and second tangs.
According to additional features, the first slot is further defined by a first end wall on the outer arm. The first end of the first torsional bearing axle spring opposes the first end wall. The first slot is defined by an inner surface of the first tang. The first end wall extends orthogonally relative to the inner surface of the first tang. The second slot is further defined by a second end wall on the outer arm. The second end of the second torsional bearing axle spring opposes the second end wall. The second slot is defined by an inner surface of the second tang. The second end wall extends orthogonally relative to the inner surface of the second tang.
According to other features, the bearing axle defines first and second grooves thereon. The second ends of the respective first and second torsional bearing axle springs are received by the first and second grooves of the bearing axle. A first bushing is arranged between the first torsional spring boss and a central mounting portion of the first torsional bearing axle spring. A second bushing is arranged between the second torsional spring boss and a central mounting portion of the second torsional bearing axle spring. The first and second slots are formed on the outer arm by one of casting and machining.
A switching rocker arm assembly constructed in accordance to another example of the present disclosure includes an outer arm, an inner arm, a bearing axle, a first torsional bearing axle spring and a second torsional bearing axle spring. The outer arm has a first outer side arm and a second outer side arm. The outer arm further includes a first tang extending from the first outer side arm and a second tang extending from the second outer side arm. The outer arm further includes a first and a second torsional spring boss. The inner arm is disposed between the first and second outer side arms. The first torsional bearing axle spring is mounted around the first torsional spring boss and has a first end laterally bound by the first tang at the first slot and a second end engaged to the bearing axle. The second torsional bearing axle spring is mounted around the second torsional spring boss and has a first end laterally bound by the second tang at the second slot and a second end engaged to the bearing axle. The first ends of the first and second torsional springs are laterally constrained by the respective first and second tangs.
According to additional features, the outer arm defines a first slot inboard of the first tang and a second slot inboard of the second tang. The first slot is further defined by a first end wall on the outer arm. The first end of the first torsional bearing axle spring opposes the first end wall. The second slot is further defined by a second end wall on the outer arm. The second end of the second torsional bearing axle spring opposes the second end wall.
According to still other features, the bearing axle defines first and second grooves thereon. The second ends of the respective first and second torsional bearing axle springs are received by the first and second grooves of the bearing axle. A first bushing is arranged between the first torsional spring boss and a central mounting portion of the first torsional bearing axle spring. A second bushing is arranged between the second torsional spring boss and a central mounting portion of the second torsional bearing axle spring. The first and second slots are formed on the outer arm by one of casting and machining.
The present disclosure will become more fully understood from the detailed description and the accompanying drawings, wherein:
With initial reference to
A pair of lost motion torsion springs 40 (
Turning now to
The first outer side arm 104 can include a first outwardly extending tang 120. A first slot 122 (
The rocker arm assembly 100 can include a bearing 150 having a roller 152 that is mounted between the first inner side arm 110 and the second inner side arm 112 on a bearing axle 158 that, during normal operation of the rocker arm assembly 100 serves to transfer energy from a rotating cam to the rocker arm 100. The bearing axle 158 defines grooves 160, 162 thereon.
The bearing axle 158 is biased upwardly by bearing axle springs 170 and 172. The bearing axle springs 170 and 172 are torsion springs. The bearing axle spring 170 has a central mounting portion 180, a first leg 182 and a second leg 184. The bearing axle spring 172 has a central mounting portion 190, a first leg 192 and a second leg 194. The central mounting portion 180 is received by a first outer arm torsional spring boss 210. The central mounting portion 190 of the second bearing axle spring 172 is received by a second outer arm torsional spring boss 212. A bushing 220 can be arranged between the torsional spring boss 210 and the central mounting portion 180 of the bearing axle spring 170. A bushing 222 can be arranged between the torsional spring boss 212 and the central mounting portion 190 of the bearing axle spring 172. The second legs 184 and 194 of the respective bearing axle springs 170 and 172 are both received by the respective grooves 160, 162 on the bearing axle 158.
As best shown in
The slots 122 and 132 can be incorporated on the outer rocker arm 102 by any process such as casting or machining. By utilizing the slots 122 and 132 incorporated on the outer rocker arm 102 for constraining the springs 170 and 172 from lateral movement instead of using retainers (44,
The foregoing description of the examples has been provided for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure. Individual elements or features of a particular example are generally not limited to that particular example, but, where applicable, are interchangeable and can be used in a selected example, even if not specifically shown or described. The same may also be varied in many ways. Such variations are not to be regarded as a departure from the disclosure, and all such modifications are intended to be included within the scope of the disclosure.
This application is a continuation of International Application No. PCT/US2015/039344 filed Jul. 7, 2015, which claims the benefit of U.S. Patent Application No. 62/021,380 filed on Jul. 7, 2014. The disclosure of the above application is incorporated herein by reference.
Number | Name | Date | Kind |
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8215275 | Church | Jul 2012 | B2 |
20110126787 | Kirbach | Jun 2011 | A1 |
20120037107 | Church | Feb 2012 | A1 |
20130000582 | Church | Jan 2013 | A1 |
20130186358 | Manther | Jul 2013 | A1 |
20130220250 | Gunnel et al. | Aug 2013 | A1 |
Number | Date | Country |
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102012220216 | May 2014 | DE |
03042506 | May 2003 | WO |
Entry |
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International Search Report and Written Opinion for International Application No. PCT/US2015/039344 dated Oct. 26, 2015, 13 pages. |
European Search Report for EP Application No. 15 818 304.6, dated Mar. 14, 2018, 9 pages. |
Number | Date | Country | |
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20170114674 A1 | Apr 2017 | US |
Number | Date | Country | |
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62021380 | Jul 2014 | US |
Number | Date | Country | |
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Parent | PCT/US2015/039344 | Jul 2015 | US |
Child | 15401351 | US |