Kyoto University · 공학
Abhishek Lakshman Pillai 교수의 연구실은 열역학적 및 연소 공학 분야에서 다상유동, 연소 안정성, 연소 소음, 열전달 메커니즘을 중심으로 한 고해상도 수치 시뮬레이션 기반 연구를 수행하고 있습니다. 특히 스퍼지 연소, 저흡기 연소, 액체 연료 분사 및 열 손실 영향 분석을 통해 고효율·저-emission 엔진 설계에 기여하고 있습니다. 또한, 연소 시스템의 소음 발생 원리와 기계적 고장 메커니즘을 분석하는 데 있어 CFD/CAA 및 DNS 기반의 정밀 시뮬레이션 기법을 적극 활용하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Combustion instabilities occurring in spray combustion fields inside a backward facing step combustor have been investigated by performing large-eddy simulations (LES). In this study, the influence of fluctuations in the incoming oxidizer air velocity (caused by drastic pressure oscillations in the combustor during combustion instability) on the droplet diameter distribution (due to atomization) of the injected liquid fuel spray, as well as the influence of pressure oscillations on the fuel flow
Design of Compression Ignition (CI) engines with improved thermal efficiencies needs better understanding of the heat transfer mechanism from spray flame to the combustion chamber wall. In this regard, heat transfer occurring during the interaction between impinging spray flame and wall, under CI engine-like conditions, is investigated in this study using 3-Dimensional numerical simulations based on an Eulerian–Lagrangian framework. Simulations are performed for different fuel spray injection ve
An open lean-premixed hydrogen/air low-swirl (LPHALS) turbulent flame exhibiting a pronounced peak in its combustion noise spectra, is investigated numerically using a hybrid Computational Fluid Dynamics/Computational Aero-Acoustics (CFD/CAA) framework. Under this framework, the reacting flow-field of the flame is computed via Large-Eddy Simulation (LES), while the direct combustion noise it produces is captured by solving the Acoustic Perturbation Equations for Reacting Flows (APE-RF). Flame co
Research indicates that as technology scales, hard errors such as wear-out errors are increasingly becoming a critical challenge for microprocessor design. While hard errors in memory structures can be efficiently detected by error correction code, detecting hard errors for functional units cost-effectively is a challenging problem. In this paper, we propose to exploit the idle cycles of the under-utilized VLIW functional units to run test instructions for detecting wear-out errors without incre
Combustion noise generation from an open turbulent spray flame with Ethanol as the fuel is investigated using Direct Numerical Simulation (DNS). The multiphase reactive flow is simulated using an Eulerian/Lagrangian approach. The governing equations for the carrier gas phase are solved in an Eulerian framework, whereas the motions of the evaporating Ethanol droplets are tracked in a Lagrangian framework. A two-step global reaction mechanism is used to model Ethanol combustion. Two simulations ar
The number of functional units can have significant impact on both the performance and energy consumption of VLIW processors. This paper uses a design exploration approach to find optimal integer functional unit configurations for achieving the best EDP (energy delay product) results for different media applications. Our experimental results quantitatively indicate that the optimal number of integer functional units should match the instruction level parallelism that can be extracted from the ap
The applicability of Large-Eddy Simulation (LES) for analyzing the phenomenon of turbulent spray flame impinging on a wall, under compression ignition (CI) engine-like environment is assessed in this paper. The LES results are compared with those of Direct Numerical Simulation (DNS), and it is demonstrated that LES can be successfully applied for reproducing the characteristics of turbulent spray flame (such as ignition delay time, lift-off length, etc.) and its interaction with a wall upon impi
Dual instruction execution (DIE) is an effective instruction-level temporal redundancy technique to improve the datapath reliability against transient errors for superscalar microprocessors. However, previous study shows that the performance overhead of dual instruction execution on an out-of-order core is substantial, primarily due to the serious resource contention problems such as the ALU bandwidth. In this paper, we propose a novel approach to reducing the performance overhead of DIE without
Cranio-maxillofacial surgery is a surgical specialty that focuses on the reconstructive surgery of the entire cranio-maxillofacial complex: the anatomical area of the mouth, jaws, face, and skull, head and neck as well as associated structures.A highly precise and complex procedure, it demands a well-structured and comprehensive treatment planning process.Biomedical extended reality (XR) has proven to be beneficial in the pre-surgery visualization step as it enables interaction in the three-dime
The applicability of Large-Eddy Simulation (LES) for analysing the phenomenon of turbulent spray flame impinging on a wall, under Compression-Ignition (CI) engine-like environment is assessed. The fuel spray is n-dodecane whose turbulent combustion is modelled using a Non-Adiabatic Flamelet/Progress-Variable (NA-FPV) approach. LESs are based on a Eulerian-Lagrangian framework and the sigma sub-grid turbulence model is used to calculate the subgrid scale (SGS) turbulent viscosity. Dynamics of liq