SAUNDERS CARY & PATTERSON 9100 Arboretum Parkway, Suite 300, Richmond, VA 23236 (804)3303350 (Office), (804)3303811 (Fax) Suite 300 9100 Arboretum Parkway, Richmond, VA 23236 (804)3303350 (Office)
Licenses:
Virginia - Authorized to practice law 1977
Education:
University of Richmond, The T. C. Williams School of Law Degree - JD - Juris Doctor - Law Graduated - 1977 Virginia Polytechnic Institute and State University Degree - BS - Bachelor of Science Graduated - 1973
Specialties:
Real Estate - 25% Commercial - 25% Business - 25% Corporate / Incorporation - 25%
Associations:
Chesterfield County Bar Association - Member Richmond Bar Association - Member Virginia Bar Association - Member
Meijer's Burton, MI May 2013 to Aug 2013 CashierMSU RHS Culinary Services East Lansing, MI Aug 2011 to Dec 2012 General Kitchen WorkerDesigner Appearances & Coatings Berrien Springs, MI May 2012 to Aug 2012 Laborer
Education:
Michigan State University East Lansing, MI 2011 to 2016 JournalismDenby Technical Preparatory High School Detroit, MI Sep 2007 to Jun 2011 High School Diploma
Aerotec staffing Harrisonburg, VA Jan 2015 to Feb 2015 Temporary AssignmentsRR Donnelley and Sons Harrisonburg, VA Mar 2014 to Dec 2014 Light equipment operatorKelly's services Harrisonburg, VA Jan 2014 to Dec 2014 Temporary AssociateQsi Harrisonburg, VA Sep 2011 to Jan 2014 Crew leader fabrication department
Education:
Buckingham County Richmond, VA 2007 to 2008 GED in GeneralBuckingham county Richmond, VA 2006 to 2008 Certificate with advance seal in Sheet metal
St Anthony's Physician OrganizationSaint Anthonys Physician Practices Wound Treatment Center 12700 Southfork Rd STE 175, Saint Louis, MO 63128 (314)5251798 (phone), (314)5254469 (fax)
Languages:
English
Description:
Dr. Patterson works in Saint Louis, MO and specializes in Undersea & Hyperbaric Medicine. Dr. Patterson is affiliated with Saint Anthonys Medical Center.
Utilization Of Air-Assisted Direct Injection, Cylinder Deactivation And Camshaft Phasing For Improved Catalytic Converter Light-Off In Internal Combustion Engines
Alan William Hayman - Romeo MI Gary J. Patterson - Utica MI
Assignee:
General Motors Corporation - Detroit MI
International Classification:
F01N 300
US Classification:
60284, 60285, 60286, 60274, 123533, 123481, 123198 F
Abstract:
A vehicle engine control system controls an engine that includes a plurality of cylinders and that generates exhaust gas. An air-assisted direct injection fuel system supplies an air/fuel mixture to the cylinders. A catalytic converter reduces harmful emissions from the exhaust gas after the catalytic converter reaches a light-off temperature. A controller communicates with the engine, the catalytic converter and the air-assisted direct injection fuel system. The controller optimizes cam phasing, the air/fuel mixture and spark angle for full and partial engine operating modes. The controller deactivates at least one of the cylinders of the engine before the catalytic converter achieves the light-off temperature to hasten light-off of the catalytic converter.
Cylinder Deactivation System And Nox Trap Regeneration
Gary J. Patterson - Utica MI Alan William Hayman - Romeo MI
Assignee:
General Motors Corporation - Detroit MI
International Classification:
F01N 300
US Classification:
60285, 60274, 60295, 123198 F
Abstract:
An engine control system in a vehicle including a variable displacement internal combustion engine, a controller for controlling the displacement of the variable displacement internal combustion engine, an exhaust manifold coupled to the variable displacement internal combustion engine, a NOx trap coupled to the exhaust manifold, and where the controller varies the displacement of the variable displacement internal combustion engine to optimize the regeneration of the NOx trap.
Engine With Injector Fuel Control System And Method
James C. Elmslie - Oxford MI Gary J. Patterson - Utica MI
Assignee:
General Motors Corporation - Detroit MI
International Classification:
F02M 4100
US Classification:
123463, 123457
Abstract:
A method for extending the operating range of engine fuel injectors fed by a pressurized fuel system includes operating the fuel system at a controlled lower fuel pressure during engine operation in a lower power range, and operating the fuel system at a controlled higher fuel pressure during engine operation above the lower power range. An engine embodying the method may include a fuel distributor connected with the injectors for supplying the pressurized fuel and a pressure control operative in response to a prescribed engine condition, such as supercharger boost pressure, to maintain injector fuel supply pressure at a lower value during engine operation in a lower portion of the power range and at a higher value during engine operation in a higher portion of the power range. The dual or multiple fuel pressures provide greater fuel output for increased power in the higher power range with consistent fuel delivery for stable idle and engine operation in the lower power range.
Gary J. Patterson - Utica MI, US Alan W. Hayman - Romeo MI, US
Assignee:
General Motors Corporation - Detroit MI
International Classification:
F01L001/34
US Classification:
123198F, 123198 DB, 123 9016
Abstract:
An internal combustion engine includes a plurality of cylinders each having intake and exhaust valves and at least one camshaft timed to operate the valves with a high performance fixed overlap. Each camshaft has a cam phaser controlled to equally vary the intake and exhaust valve timing for superior full throttle performance over the engine speed range; Valve deactivation mechanisms operate to deactivate up to half the cylinders during idle and light load operation for increasing fuel efficiency and emission control and maintaining stable operation of the operating cylinders. The engine may also be started with half the cylinders cut out and then run with stable operation in this mode during idle and light load because the increased load on the operating cylinders gives stable operation with an increased valve overlap permitting increased performance and emission control at higher load operation on all the cylinders.
Controlling Engine Charge Dilution For Fuel Efficiency
William C. Albertson - Clinton Township MI, US Gary J. Patterson - Utica MI, US
Assignee:
General Motors Corporation - Detroit MI
International Classification:
F02M025/07 F02D011/10
US Classification:
123399, 12356821, 123198 F
Abstract:
Fuel consumption in a vehicle engine is reduced by varying charge dilution in an intake manifold of the engine to maintain a pressure in the intake manifold within a predetermined range. Pumping work performed by engine cylinders is reduced, which reduces fuel consumption.
High Overlap Camshaft For Improved Engine Efficiency
Richard Stephen Davis - Lake Orion MI, US Ronald J. Herrin - Troy MI, US Gary J. Patterson - Utica MI, US
Assignee:
GM Global Technology Operations, Inc. - Detroit MI
International Classification:
F01L 1/00
US Classification:
123 901, 123321
Abstract:
A vehicle may include a drive axle, an engine assembly, a coupling device, and an engine load management system. The engine assembly may include a valvetrain including a fixed-lobe camshaft and intake and exhaust valves supported by the engine assembly. The fixed-lobe camshaft may include a first lobe engaged with the intake valve to open the intake valve and a second lobe engaged with the exhaust valve to open the exhaust valve. The first and second lobes may be fixed relative to one another to define a constant valve overlap condition that provides for opening of the intake valve before the exhaust valve is fully closed, creating an engine operating condition that results in combustion instability below an engine load limit. The engine load management system may be in communication with the engine to prevent engine operation below the engine load limit.
Modular Protection System For Critical Assets And Infrastructure
A modular system for protecting a critical asset includes a plurality of vertical members extending vertically upwardly from a ground surface, and inner and outer stacks of spaced-apart horizontal members connected between adjacent pairs of the vertical members defining a vertical wall. The spaced-apart horizontal members have cross sections and spacings such that no line can be drawn through the wall without intersecting with one or both of the inner and outer stacks. The cross sections of the horizontal members in both stacks include elongated angled surfaces such that projectile on a trajectory toward the critical asset is deflected upwardly or downwardly and away from the critical asset. In a preferred embodiment, the horizontal members are angle irons. In a more preferred embodiment the horizontal members are 1/2″ 90-degree steel angle irons oriented sideways, such that the elongated plates making up the angle irons are 45 degrees off horizontal.
Modular Protection System For Critical Assets And Infrastructure
Gary Patterson - Lake Orion MI, US Tony Mcginnis - Lyon Township MI, US
International Classification:
E04B 1/92 E04B 1/24 E04H 9/04 E04B 2/58
Abstract:
A modular system for protecting a critical asset includes a plurality of vertical members extending vertically upwardly from a ground surface, and inner and outer stacks of spaced-apart horizontal members connected between adjacent pairs of the vertical members defining a vertical wall. The spaced-apart horizontal members have cross sections and spacings such that no line can be drawn through the wall without intersecting with one or both of the inner and outer stacks. The cross sections of the horizontal members in both stacks include elongated angled surfaces such that projectile on a trajectory toward the critical asset is deflected upwardly or downwardly and away from the critical asset. In a preferred embodiment, the horizontal members are angle irons. In a more preferred embodiment the horizontal members are 1/2″ 90-degree steel angle irons oriented sideways, such that the elongated plates making up the angle irons are 45 degrees off horizontal.
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