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Technical Paper

Prediction of Suspension System Behavior under Misuse Loading Using Explicit Approach

2020-04-14
2020-01-1394
In the automotive industry, the development of suspension systems for misuse loads is essential. The vehicle may experience the abusive loads in fore-aft, lateral and vertical directions. From a design perspective, it is crucial that the suspension should be robust enough to withstand the abusive loading in different directions. Testing as well as virtual simulation of the suspension for feasible misuse scenarios can provide a desired design solution in the most optimized time. Better Virtual simulation practices provided with good modeling strategy and detail material model data can help to anticipate the accurate response of the system, which can benefit to reduce the number of physical tests. This paper describes an explicit dynamic approach to predict the behavior of suspension system under impact load condition. Material failure model is proposed to simulate the failure of parts and change in load path under high loading condition
Technical Paper

Fatigue Life Prediction of HVAC Pipe Assembly for Measured Powertrain Load by Virtual Simulation

2020-04-14
2020-01-0188
Structural durability of automotive components is one of the key requirements in design and development of today’s automobiles. Virtual simulations are used to estimate component durability to save the cost and time required to build the components and testing. The objective of this work is to find the service life of automotive HVAC pipe assembly by calculating cumulative fatigue life for operation under actual powertrain load conditions. Modal transient response analysis is performed with the measured powertrain load time history. Strain based fatigue life analysis is carried out using modal superposition method (MSM). The estimated fatigue life was compared with the physical test results. This paper also explains the root cause of low fatigue life on pipe assembly and provide the solution.
Technical Paper

Robust Optimization of Rear Suspension Trailing Arm for Durability Using Taguchi Method

2020-04-14
2020-01-0602
Vehicle suspension parts are subjected to variable road loads, manufacturing process variation and high installation loads in assembly process. These parts must be robust to usage conditions to function properly in the field. Design for Six Sigma (DFSS) tools and Taguchi Method were used to optimize initial rear suspension trailing arm design. Project identified key control factor/design parameters, to improve part robustness at the lowest cost. Optimized design performs well under higher road loads and meets stringent durability requirements. This paper evokes use of Taguchi Method to design robust rear suspension trailing arm and study effect of selected design parameters on robustness, stress level/durability and part cost.
Technical Paper

Static Loading Analysis of Third Row Floor Duct System Using Finite Element Method

2017-03-28
2017-01-0168
In current scenario, there is an increasing need to have faster product development and achieve the optimum design quickly. In an automobile air conditioning system, the main function of HVAC third row floor duct is to get the sufficient airflow from the rear heating ventilating and air-conditioning (HVAC) system and to provide the sufficient airflow within the leg locations of passenger. Apart from airflow and temperature, fatigue strength of the duct is one of the important factors that need to be considered while designing and optimizing the duct. The challenging task is to package the duct below the carpet within the constrained space and the duct should withstand the load applied by the passenger leg and the luggage. Finite element analysis (FEA) has been used extensively to validate the stress and deformation of the duct under different loading conditions applied over the duct system.
Technical Paper

Effect of Casting Process on Strength Behaviour of Automotive Alloy Wheel

2021-04-06
2021-01-0800
Strength and fatigue assessment of chassis components are essentially influenced by the material used and manufacturing processes chosen. The manufacturing process of chassis components decides the variation in the mechanical properties of the component, which has an impact on the strength/fatigue performance. Investigating the design concerning the manufacturing processes is vital to the industry. Standard computer aided engineering (CAE) procedures for validating the alloy wheels usually consider the material properties as homogeneous. There was a gap between test results and CAE durability prediction (as per standard procedure). Incorporating the manufacturing process related characteristics with the strength simulation will be a viable solution to reduce this gap. This study was intended at developing a procedure for the strength analysis of an alloy wheel by considering the manufacturing process.
Technical Paper

Air Bind Effect on Door Slam Durability Performance

2021-04-06
2021-01-0822
In the vehicle development process, the door slam durability assessment is of significant importance in the estimation of fatigue life for body closure system. So far, various exertions have been taken into consideration to better represent the door slam simulation for door durability performance. Nowadays, with computer aided engineering (CAE) being extensively implemented, simulation procedures are constantly being investigated in order to get precise outcomes as physical testing. In a real world scenario, the customer closes the door frequently against the sealed cabin which offers the cabin pressure to close. The cabin pressure acts in the opposite direction of door closing providing the damping effect and minimizes the overall damage to the structure. Currently, simulations are focused on determining the total energy required for closing the door by summing up the energy lost in the weather seal and latch.
Technical Paper

Engine Roll and Its Impact on Powertrain Battery Cable Structural Design

2021-04-06
2021-01-0821
Powertrain wiring cable is a backbone of the electrical architecture in any vehicle electrical system design. The weight of a wiring cable is increasing year by year because of the recent development on high-voltage wiring systems, hybrid electric vehicles (HEVs) and electric vehicles (EVs). Clip failure, loosening clip and terminal breakage under engine roll condition is a common issue in powertrain electric cable (or body harness routing) development cycle in automotive industry. Usage of more number of clips in cable routing results in the powertrain design being more complex and it increases manufacturing cost. The standard procedure practiced to develop any dynamic envelope is by using CAD software tools and performing rigid body movements with the help of the motion file.
Technical Paper

Dynamic Transient Simulation to Predict Durability Loads from Road Load Profile under Linear Assumptions

2021-04-06
2021-01-0831
Structural durability of the vehicle components is one of the key factors in design and development. This helps in understanding the capability of structures or components to withstand the loads encountered in service over a specified period of use. Durability assessment for vehicle structures requires load inputs. These load inputs can be in form of force, acceleration and displacement and typically generated from road load profiles in the testing lab or by the load groups. But if a program is in its early stage when design data is immature or lab facility is limited then acquiring these load inputs takes time and sometimes not feasible also. In this scenario, we can predict the durability load inputs from road load profiles virtually using dynamic transient simulation. The objective of this work is to predict the durability input signals from road profiles using finite element model by modal transient approach.
Technical Paper

Prediction of Clamp Loss for Sunroof Mountings under Vehicle Operating Conditions

2021-04-06
2021-01-0796
A vehicle fitted with a sunroof has structural challenges due to the mountings of the assembly with the Body-In-White parts. The major challenges include water leakage, noise and durability issues. This results in warranty issues and cost penalties for the Original Equipment Manufacturer. The focus of this paper is to address the challenges due to the mounting issues in the sunroof. The clinching process of the sunroof panels results in the reduction of the contact area for the clamping process. This reduction could result in bolt slippage either during the assembly of the vehicle or during the operating conditions. The sunroof module is also prone to cracks and bulging, due to bolt slippage. The Virtual engineering simulation used in this study represents the clinching process and the variations in the surface of the body panels. In addition, the clamping of the Body-In-White to the sunroof module is represented for the assembly torque considering the frictional characteristics.
Technical Paper

Robust and Optimum Design for Body in White Roof Structure Using DFSS Techniques

2021-04-06
2021-01-0798
Roof is one of the major subsystems of the Body-In-White Structure, which significantly affects the vehicle strength and durability performance criteria. The roof structure should meet the functional targets under the standard operating conditions. Roof design considering various parameters in the initial phase is beneficial in reducing the product timeline for the OEM. The first-time right approach provides an opportunity for Optimization and Cost benefits in the longer term. This paper provides the use of Design for Six Sigma techniques to arrive at a robust and optimum design for the standard roof structure. The roof structure is designed to meet the operating conditions for durability. Roof finite element models are developed with control factors that affect the structure design. Virtual Analysis is performed on the Standard roof structure models.
Technical Paper

Vehicle Suspension Misuse Assessment with Simplified Virtual Model

2021-04-06
2021-01-0808
In the automotive industry, the structural evaluation of suspension systems under customer abusive loads (misuse loads) is essential. The vehicle may experience the abusive loads in fore-aft, lateral and vertical directions. From a design perspective, it is crucial that the suspension should be robust enough to withstand the abusive loading due to maneuvers on various terrains. The main challenge during virtual simulation of these load cases is the time required to complete the assessment. The current method involves a detailed suspension finite element (FE) model which takes considerable computational and post processing time. Any kind of manual mistakes will further increase assessment time. The time becomes even more crucial when the product is in the final stages of the development process where quick turnaround is required.
Technical Paper

Brake Pad Wear Prediction Using Finite Element Techniques

2021-04-06
2021-01-0810
Brakes are the critical component, plays a significant role regards to performance of vehicle. Vehicle safety is also strongly influenced by proper braking operation, which depends on pad to disc contact interface. Pad and disc surfaces are worn out due to continuous braking events, which in turn affects the life of the brake assembly and its performance. This paper presents the brake pad wear prediction of a disc brake assembly. A new and unworn pair of brake pads are considered for the study and tested under different braking scenarios. Wear simulation procedure is formulated based on Rhee’s wear formula and wear calculation model is established based on friction and wear mechanism. The correlation between the wear behavior of a friction material tested under controlled laboratory conditions and finite element method is investigated. Based on the calculated wear, lifespan of the brake pad is also calculated.
Technical Paper

Prediction of Brake Moan Noise Using CAE Techniques

2021-04-06
2021-01-0811
Brake moan noise is a friction induced phenomenon occurring at very low brake pressure, speeds and in the frequency range of 100-500 Hz. Moan noise is induced due to stick-slip phenomenon between brake rotor and pad. In this paper, prediction of moan noise with complex eigenvalue method along with other static steps is described. The complex eigenvalue is performed in multiple steps of analysis. Pretension analysis followed by nonlinear static analysis (For brake pressure and rotor velocity) is performed to provide a sliding motion between the pads and the disk. From the pre-stressed condition at the end of the static analysis, the tangent stiffness matrix is found out by linear perturbation method and followed by that complex eigenvalue analysis also performed. From the eigenvalue analysis, instability modes and the corresponding mode shapes of the brake assembly are calculated by considering the nonlinear effect of loading and contacts.
Technical Paper

Prediction of Tow Hook and Bolted Joint Strength Behavior Using Virtual Test Simulation Technique

2020-04-14
2020-01-1399
There is an increasing demand for reducing vehicle development process and minimizing cost due to tough competition in Automotive market. One of the major focus areas is minimizing the vehicle proto build that are required for physical testing during vehicle development. Tow hooks are key structural components for the vehicle, which are designed to withstand structural strength performance under various vehicles towing condition. Typical extreme load scenario for the vehicle can be towing fully loaded vehicle breaks down on uphill road or stuck in wet muddy condition. To exercise the tow hook structural development in early design phase, it is important to have reliable simulation process. This paper focuses on development of virtual test simulation process that replicates the tow hook system test behavior for the operating load. The study includes the detail modeling of clevis load applicator, tow hook, bolt joint and attached test bed plate for capturing the load path.
Technical Paper

Virtual Evaluation of Seat Shake Performance Using Four Poster Shaker

2021-04-06
2021-01-0325
For the designing of world class vehicles, ride comfort is one of the criteria that vehicle manufacturers are constantly trying to improve. The automotive seating system is an important sub-system in a vehicle that contributes to the ride comfort of the vehicle occupants. Seat vibrations are perceived by the occupants and make them feel uncomfortable during driving conditions. These vibrations are majorly transferred from engine and road excitation loads. For road excitation loads, the road testing may not be accurately repeatable, and measurements based on four post shakers are used to assess the discomfort. The major challenges for the vehicle manufactures is the availability of physical prototypes at an early stage of vehicle development and any changes in the design due to test validation leads to huge cost and time.
Technical Paper

Parametric Design Study of McPherson Strut to Stabilizer Bar Link Bracket Weld Fatigue Using Design for Six Sigma and Taguchi Approach

2021-04-06
2021-01-0235
Vehicle suspension parts are subjected to variable road loads, manufacturing process variation and high installation loads in assembly process. Seam welding can be considered as such process to connect more components and parts. Typical in a Mc Pherson suspension system stabilizer bar link is connected to the strut assembly through ball stud and clamped to a bracket welded to the outer strut tube. Cracks have been observed in the stabilizer bar link bracket welds of vehicles in the field, effecting the functionality of the suspension system. During preliminary phase of product development CAE assessment of the seam weld is carried out against road load data, if the design does not meet the targets enabler studies are carried out in an iterative approach. Various design variables (control factors) can be considered to carry out the iterations.
Technical Paper

Application of DFSS Taguchi Method to Design Robust Shock Tower

2021-04-06
2021-01-0234
Design for Six Sigma (DFSS) is an essential tool and methodology for innovation projects to improve the product design/process and performance. This paper aims to present an application of the DFSS Taguchi Method for an automotive/vehicle component. High-Pressure Vacuum Assist Die Casting (HPVADC) technology is used to make Cast Aluminum Front Shock Tower. During the vehicle life, Shock Tower transfers the road high impact loads from the shock absorber to the body structure. Proving Ground (PG) and washout loads are often used to assess part strength, durability life and robustness. The initial design was not meeting the strength requirement for abusive washout loads. The project identified eight parameters (control factors) to study and to optimize the initial design. Simulation results confirmed that all eight selected control factors affect the part design and could be used to improve the Shock Tower's strength and performance.
Technical Paper

Impact simulation of passenger electric vehicle’s battery pack protective structure for speed bump crossing event

2024-04-09
2024-01-2748
In the automotive industry, the electric vehicle is the new era, and companies are committed to reducing carbon emissions by electrification of their vehicles. In the development of electric vehicles, the battery is the central power source for all the parts of the vehicle. Usually, it is placed under the body because of its size and mass. So, it is important to protect battery cells from leakage and damage from obstacles. For on-road electric vehicles, speed bumps are one of the crucial obstacles. This paper investigates and analyses the protection of battery pack systems in electric vehicles while encountering speed bump profiles at different speeds. During the physical test on a speed bump, there is a possibility of bump hit on the battery pack system and it is necessary to ensure the structural safety of the battery pack systems. In this study, CAE method has been developed to validate the battery pack system in the event of a speed bump crossing.
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