Refine Your Search

Search Results

Viewing 1 to 7 of 7
Technical Paper

NATO Qualification Test of Detroit Diesel 8V71-TA Engine at 530 BHP with Advanced Ceramic Components

2000-03-06
2000-01-0524
Objective: This paper documents the 400 hour NATO qualification endurance test for the Detroit Diesel Corporation (DDC), 8V71TA/LHR (turbocharged, aftercooled/low heat rejection) diesel engine rated at 395 kw (530 bhp) at 2500 RPM for potential M109 Self-Propelled Howitzer (SPH) application. The engine was developed under the DARPA (Defense Advanced Research Projects Agency) Advanced Ceramic Technology Insertion Program, managed by U.S. Army TACOM (Tank-automotive and Armaments Command). The test was performed by DDC in accordance with the standards set forth in NATO AEP-5 (Allied Engineering Publication). The ACTIP program objective was to demonstrate the production viability of selected ceramic engine components and investigate the manner in which the ceramic technology integration would enhance the engine's performance and durability. Effects on performance and durability are reported herein. Four engine systems were developed with ceramic components for the ACTIP program.
Technical Paper

Powertrain Simulation of the M1A1 Abrams Using Modular Model Components

1998-02-23
980926
Powertrain simulation is becoming an increasingly valuable tool to evaluate new technologies proposed for future military vehicles. The powertrain of the M1A1 Abrams tank is currently being modeled in the Powertrain Control Research Laboratory (PCRL) at the University of Wisconsin-Madison. This powertrain model is to be integrated with other component models in an effort to produce a high fidelity simulation of the entire vehicle.
Technical Paper

A Simplified Analytical Methodology for Selecting Element Density for Low Heat Rejection Diesel Heat Thermal Analysis

1996-02-01
960507
The authors have conducted extensive finite element (FE) thermal and stress analysis on the heads of low heat rejection diesel engines. Throughout these analyses, model mesh construction was based on conventional rule-of-thumb criteria. In this paper a simple analytical methodology is presented for selecting a mesh to conduct thermal analysis. This is intended to remove some of the arbitrary appearance of these prior meshes. Results of the FE thermal solution based on a mesh using this methodology is compared to a known convergent FE thermal solution.
Technical Paper

An Investigation of the Effects of Node Density on Finite Element Thermal/Stress Analysis as Applied to Low Heat Rejection Diesel Heads

1994-03-01
940950
In our prior analytical work concerning a finite element methodology for thermal stress analysis of minimum cooled low heat rejection (LHR) engine cylinder heads, a very fine mesh with strict aspect ratio and element density criteria was used. In this current study, these criteria were relaxed and two other finite element models with different element densities were used to solve the same thermal stress problem. The thermal and stress results of the relaxed models are compared to those of the earlier very fine mesh results. It is the aim of this paper to show in a semi-quantified manner, how mesh density can affect thermal stress solutions in LHR engine heads. Hopefully this will enable other analysts working in this area to make some judgement on mesh density before starting an actual modelling effort, resulting in a savings of time and manpower resources.
Technical Paper

Thermomechanical Stress Analysis of Novel Low Heat Rejection Cylinder Head Designs

1993-03-01
930985
High thermal stresses in the cylinder heads of low heat rejection (LHR) engines can lead to low cycle fatigue failure in the head. In order to decrease these stresses to a more acceptable level, novel designs are introduced. One design utilizes scallops in the bridge area, and three others utilize a high-strength, low thermal conductivity titanium faceplate inserted into the firedeck (combustion face) of a low heat rejection engine cylinder head. The faceplates are 5mm thick disks that span the firedeck from the injector bore to approximately 10mm outside of the cylinder liner. Large-scale finite element models for these four different LHR cylinder head configurations were created, and used to evaluate their strength performance on a pass/fail basis. The complex geometry of this cylinder head required very detailed three-dimensional analysis techniques, especially in the valve bridge area. This area is finely meshed to allow for accurate determination of stress gradients.
Technical Paper

Combustion and Performance Characteristics of a Low Heat Rejection Engine

1993-03-01
930988
The purpose of this paper is to investigate combustion and performance characteristics for an advanced class of diesel engines which support future Army ground propulsion requirements of improved thermal efficiency, reduced system size and weight, and enhanced mobility. Advanced ground vehicle engine research represents a critical building block for future Army vehicles. Unique technology driven engines are essential to the development of compact, high-power density ground propulsion systems. Through an in-house analysis of technical opportunities in the vehicle ground propulsion area, a number of dramatic payoffs have been identified as being achievable. These payoffs require significant advances in various areas such as: optimized combustion, heat release phasing, and fluid flow/fuel spray interaction. These areas have been analyzed in a fundamental manner relative to conventional and low heat rejection “adiabatic” engines.
Technical Paper

Thermomechanical Analysis of a Low Heat Rejection Cylinder Head

1992-02-01
920544
A large scale, high resolution, finite element methodology for analysis of generic thermomechanical behavior of complex, low heat rejection engine components has been developed. This paper describes this process and presents an example evaluation of a low heat rejection cylinder head. Because of symmetry considerations, a one cylinder section of the head was modeled. However, the geometric nature of this cylinder head section required very precise three-dimensional analysis techniques. The completed three-dimensional model contains 40,696 elements and 48,536 nodes. The results of this example model show high stresses at the valve bridge and injector bore. These stresses result from a constrained thermal expansion of the head, and are generally compressive and radial in nature. A comparison of three different material types indicated that two of the three exceeded, and one was below the elastic limit.
X