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Technical Paper

Resin Fuel Filler Lid for On-Line Painting

2008-04-14
2008-01-1286
A resin fuel lid capable of being electrostatically painted on-line with the vehicle body-in-white was developed to achieve a light weight fuel adapter assembly with improved color match to surrounding body panels when compared with outsourced painting. The fuel lid was molded out of a conductive, high heat capable PA/PPO resin, and painted with automotive body paint systems. Key development items for this part included validation of part conductivity, on-line capability of the resin material, development of an attachment scheme to achieve proper grounding of the part, determination of paint jig location for proper paint coverage and color match to the body, and evaluation of the final fit & finish. These studies were conducted in combination of both lab and on-line trials. Additionally, the final painted part assembly was extensively tested to achieve the appropriate quality of the surface treatment and strength and durability of the design construction.
Technical Paper

A Numerical Model of Piston Secondary Motion and Piston Slap in Partially Flooded Elastohydrodynamic Skirt Lubrication

1994-03-01
940696
This paper presents a numerical model of the rotational and lateral dynamics of the piston (secondary motion) and piston slap in mixed lubrication. Piston dynamic behavior, frictional and impact forces are predicted as functions of crank angle. The model considers piston skirt surface waviness, roughness, skirt profile, thermal and mechanical deformations. The model considers partially-flooded skirt and calculates the pressure distributions and friction in the piston skirt region for both hydrodynamic and boundary lubrication. Model predictions are compared with measurements of piston position using gap sensors in a single-cylinder engine and the comparison between theory and measurement shows remarkable agreement.
Technical Paper

Engine Experiments on the Effects of Design and Operational Parameters on Piston Secondary Motion and Piston Slap

1994-03-01
940695
Experiments were done to quantify the dynamic motion of the piston and oil-film during piston impact on the cylinder bore, commonly known as “piston slap.” Parameters measured include engine block vibration, piston-skirt to liner separation, oil-film thickness between the piston and liner, and other engine operating conditions. Experimental parametric studies were performed covering the following: engine operating parameters - spark timing, liner temperature, oil-film thickness, oil type, and engine speed; and engine design parameters - piston-skirt surface waviness, piston-skirt/cylinder-liner clearance, and wrist-pin offset. Two dynamic modes of piston-motion-induced vibration were observed, and effects of changes in engine operating and design parameters were investigated for both types of slap. It was evident that engine design parameters have stronger effects on piston slap intensity, with piston-skirt/liner clearance and wrist-pin offset being the dominant parameters.
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