PG-EAM - Programa de Pós-Graduação em Engenharia Aeronáutica e Mecânica
EN PT
Jesuíno Takachi Tomita

Jesuíno Takachi Tomita

Bolsista CNPq Nível C
12
Índice h
549
Citações
85
Artigos

Linhas de Pesquisa

  • Turbomáquinas
  • Turbinas a gás
  • Propulsão
  • CFD
  • Aerotermodinâmica
Última atualização: 2026-06-25

Publicações (85)

85 publicações
Artigo 2025

A review of hydrogen aircraft propulsion systems: recent advances and environmental perspectives

Leitão, Antonio Bruno de Vasconcelos , Bringhenti, Cleverson , Tomita, Jesuino Takachi , dos Santos Silva, Franco Jefferds , Xisto, Carlos , Grönstedt, Tomas

International Journal of Hydrogen Energy , vol. 176
Mostrar resumo

© 2025 The AuthorsThe present work performs a review for using hydrogen in aircraft propulsion systems analyzing challenges and opportunities with the two main driveline architectures: direct combustion of hydrogen and fuel cells. First, the capability of hydrogen aircraft to become more energy efficient than conventional aircraft are discussed on system level, by extending previous review work. Then, challenges for hydrogen combustion and ways to limit emissions by lean direct injection and micromix combustion are discussed. Polymer electrolyte membrane (PEM) and solid oxide fuel cells are reviewed and the outlook for high temperature PEM fuel cells and challenges with per- and polyfluoroalkyl substances (PFAS) emissions are discussed. Dual fuel aircraft and flexible combustion are discussed as ways to provide a transition to a hydrogen economy. Additionally, hybrid configurations and new cycles that simplify hydrogen integration are reviewed. Finally, recent promising results on water emissions and contrail formation for hydrogen combusting aircraft are discussed.

Artigo 2025

A decision-making process in order to apply additive manufacturing technology in a gas-turbine’s fuel Swirler

Tozi, Luiz Vitor , Tomita, Jesuino Takachi , Borille, Anderson Vicente

Rapid Prototyping Journal , vol. 31 (9) , pp. 1879-1892
Mostrar resumo

© 2025 Emerald Publishing LimitedPurpose – This paper aims to assess the feasibility of using additive manufacturing (AM) to produce a gas-turbine’s fuel swirler, thereby validating its suitability for this fabrication process. This study involves a statistical comparison of the AM process with other manufacturing methods, utilizing a multi-criteria decision-making approach to determine the most favorable method for the component. This study also includes the manufacturing of the component and an evolution of the quality control results to ascertain the component’s compliance with required standards. Design/methodology/approach – To compare the different fabrication methods, this paper uses the analytic hierarchy process to compare AM with alternative manufacturing processes, generating different scenarios for comparison. In addition, two samples of the component were additively manufactured to assess their suitability for application in a small gas turbine. Findings – The results indicate that AM was identified as eligible and adequate process for producing the fuel swirler in most scenarios. This study includes the results of a nondestructive quality control process and provides a comprehensive discussion aiming to optimize the component’s quality. These results support the potential for scaling up the production of this component and identifying other components that may benefit from AM. Originality/value – This research contributes to the advancement of technical knowledge regarding the application of an innovative manufacturing method for jet engine components. It aims to enhance manufacturing capabilities for different thermal machine parts while reducing design costs.

Artigo 2025

Performance and Stall Margin Evaluation of Axial Slot Casing Treatment in a Transonic Multistage Compressor

Endo, Pedro Seiti , Tomita, Jesuino Takachi , Bringhenti, Cleverson , dos Santos Silva, Franco Jefferds , Diaz, Ruben Bruno

Aerospace , vol. 12 (9)
Mostrar resumo

© 2025 by the authors.Adverse pressure gradients are intrinsic to compressor flow behavior and are further intensified by secondary effects associated with rotor tip clearance flow interactions. Tip clearance generates leakage flow, which leads to the formation of tip leakage vortices, a major contributor to aerodynamic losses in axial compressors. These vortices significantly influence both compressor performance and operational stability. Extensive prior research has demonstrated that passive casing treatments, particularly axial slots, can substantially improve the stall margin in axial compressors. In this work, the performance of a new casing treatment geometry is investigated using the concept of recirculating flow within semi-circular axial slots. The proposed casing treatment geometry builds upon recent experimental findings involving single-rotor configurations. It was applied to the first rotor row of a three-and-a-half-stage (3.5-stage) axial compressor comprising an inlet guide vane followed by three rotor–stator stages. The numerical model incorporates axial slots with a novel periodic interface approach implemented in a multistage compressor simulation. Three-dimensional steady-state RANS (Reynolds Average Navier-Stokes) simulations were performed to investigate the aerodynamic effects of the casing treatment across various rotational speeds. The results for the casing treatment configuration were compared with those of a baseline smooth casing. The introduction of the new casing treatment produced noticeable modifications to the internal flow structure, particularly in the tip region, resulting in improved overall compressor stability within the operating range of 85 to 100% of design speed.

Artigo 2025

Winglet Geometries Applied to Rotor Blades of a Hydraulic Axial Turbine Used as a Turbopump: A Parametric Analysis

Tonon, Daniel da Silva , Tomita, Jesuino Takachi , Garcia, Ezio Castejon , Bringhenti, Cleverson , de Almeida, Luiz Eduardo Nunes , Kapat, Jayanta , Vesely, Ladislav

Energies , vol. 18 (8)
Mostrar resumo

© 2025 by the authors.Turbines are rotating machines that generate power by the expansion of a fluid; due to their characteristics, these turbomachines are widely applied in aerospace propulsion systems. Due to the clearance between the rotor blade tip and casing, there is a leakage flow from the blade pressure to the suction sides, which generates energy loss. There are different strategies that can be applied to avoid part of this loss; one of them is the application of so-called desensitization techniques. The application of these techniques on gas turbines has been widely evaluated; however, there is a lack of analyses of hydraulic turbines. This study is a continuation of earlier analyses conducted during the first stage of the hydraulic axial turbine used in the low-pressure oxidizer turbopump (LPOTP) of the space shuttle main engine (SSME). The previous work analyzed the application of squealer geometries at the rotor tip. In the present paper, winglet geometry techniques are investigated based on three-dimensional flowfield calculations. The commercial CFX v.19.2 and ICEM v.19.2 software were used, respectively, on the numerical simulations and computational mesh generation. Experimental results published by the National Aeronautics and Space Administration (NASA) and data from previous works were used on the computational model validation. The parametric analysis was conducted by varying the thickness and width of the winglet. The results obtained show that by increasing the winglet thickness, the stage efficiency is also increased. However, the geometric dimension of its width has minimal impact on this result. An average efficiency increase of 2.0% was observed across the entire turbine operational range. In the case of the squealer, for the design point, the maximum efficiency improvement was 1.62%, compared to the current improvement of 2.23% using the winglet desensitization technique. It was found that the proposed geometries application also changes the cavitation occurrence along the stage, which is a relevant result, since it can impact the turbine life cycle.

Artigo 2025

Propeller design methods: An overview, from classic theories to modern propeller design techniques

Dias, Marcelo Marques Gomes , Tomita, Jesuino Takachi , Bringhenti, Cleverson , Silva, Franco Jefferds Santos

Proceedings of the ASME Turbo Expo , vol. 1
Mostrar resumo

Copyright © 2025 by ASME.Due to the growing relevance of mitigating climate change, and the race to improve the energy efficiency of aircrafts, aiming a goal of net-zero emissions of CO2 by 2050, the aircraft propellers have been receiving more attention, as they could represent the next innovation towards the efficiency improvements, especially due to the possibility of hybrid/electrical propulsion. In this context, this article consists of a critical overview of propeller design methods, depicting some relevant classical methods of designing propellers, such as the Blade Element Momentum Theory by Glauert, Vortex Theories, developed by Betz, Goldstein, and Theodorsen, as well as methods to design propellers that are intended to increase the lift on the wings. The straightforward Propeller Design procedures by Larrabee, Adkins Liebeck, and Wald, which are based on these theories, are also covered and compared. In addition, this paper also covers the final design and optimization, showing how computational methods, such as VLM and CFD, are being used in the literature to improve preliminary designs and model the interaction between the propellers and the wing/body. The objective of this paper is to provide a comprehensive reference for researchers and students, summarizing the state-of-Art of propeller design and optimization, for those who intend to work with propellers for green aviation.

Artigo 2024

Performance and optimization evaluation for integration of sCO2 power system into the aircraft propulsion system

Vesely, L. , Bringhenti, C. , Kapat, J. , Tomita, J. T. , Stoia, M.

International Journal of Thermofluids , vol. 24
Citações: 5
Mostrar resumo

© 2024The aviation industry accounts for part of the CO2 emissions contributing to climate change. The industry has established a target to reduce 2050 net aviation carbon emissions by 50 % relative to 2005 levels. With this in mind, waste heat recovery is a key pathway to achieve reduced emissions and improve system efficiency. The waste heat may potentially be converted to electric power using a supercritical CO2 Brayton power cycle. The sCO2 power system offers the advantage of compactness owing to the high working fluid density, which is an important consideration for aircraft performance. The present work focuses on the integration of the sCO2 power system into the aircraft propulsion system and evaluation of its performance. Detailed optimization of the sCO2 waste heat system will be evaluated with a focus on cycle efficiency and net power under different operating conditions, including ground, takeoff, climb, cruise, and landing operations. The study is divided into two parts with two different turbofan engines, one with a nominal thrust of 30 kN and the other with a nominal thrust of 9 kN. The first part shows the effect and operation of the waste heat recovery unit under the different operating conditions. The second part is focused on cycle optimization and performance evaluation. The results demonstrate the potential of waste heat recovery during a range of operational conditions. The sCO2 cycle efficiency can reach between 25 and 39 % (depending on aircraft engine) with net power output in the range of 100 to 260 kW.

Artigo 2024

An Evaluation of Passive Wall Treatment with Circumferential Grooves at the Casing of the First and Second Blade Rotor Rows of a High-Performance Multi-Stage Axial Compressor

Diaz, Ruben Bruno , Tomita, Jesuino Takachi , Bringhenti, Cleverson , Silva, Franco Jefferds dos Santos , Cavalca, Diogo Ferraz

Aerospace , vol. 11 (8)
Citações: 4
Mostrar resumo

© 2024 by the authors.The internal losses in the tip clearance region strongly influence the compressor performance and its operational range. Previous research proved that passive wall treatments with circumferential grooves in axial compressors effectively increase the compressor stall margin. The vortex generated inside the circumferential grooves creates a resistance to the flow that leaks into the tip clearance region of the compressor. However, most works found in the literature on circumferential grooves in axial compressors deal only with high-performance single-stage axial compressors. Therefore, there is a need to investigate and analyze the behavior of circumferential grooves in a multi-stage environment. In the present work, a passive wall treatment with circumferential grooves was implemented in a multi-stage axial compressor. Different configurations of circumferential grooves were created at the casing of the first and second rotor rows used in a four-stage axial flow compressor. Numerical simulations were performed to evaluate the influence of the circumferential grooves on the performance of a multi-stage axial compressor. The results obtained after the simulations for the different circumferential groove configurations were compared with the results obtained for the compressor without casing treatment (smooth wall) for different rotational speeds. Furthermore, the complete compressor map characteristics were simulated for the different casing treatment configurations, and the results were compared with the compressor characteristics of the smooth wall case. The passive wall treatment with circumferential grooves produced changes in the multi-stage axial compressor flow field, especially in the tip clearance region, improving the compressor stability mainly for part load speeds.

Artigo 2024

Potential Use of Additively Manufactured Swirlers for Gas Turbine Applications

Tozi, Luiz Vitor , Vidal, João , Tomita, Jesuino Takachi , Borille, Anderson Vicente , Bringuenti, Cleverson , Roma, Alexandre , Oliveira, Henrique Rodrigues

International Journal of Gas Turbine Propulsion and Power Systems , vol. 15 (4) , pp. 42-49
Mostrar resumo

©2024 Luiz Vitor Tozi, João Vidal, Jesuino Takachi Tomita, Anderson Vicente Borille, Cleverson Bringuenti, Alexandre Roma, Henrique Rodrigues Oliveira.The industry and the academy are continuously developing new technologies and approaches regarding the gas turbine manufacturing. Logically, sectors of turbomachinery and aerospace engineering are deeply focused on applying newer and even unconventional manufacturing process, aiming on cost reduction, reduced lead times and efficiency. In addition, it is conspicuous that metal additive manufacturing (AM) technologies can provide interesting possibilities for companies seeking to innovate and perfect existing components, with respect to reach better buy-to-fly ratios. In this paper, the authors developed a proposal for additively manufacturing a fuel swirler and evaluated in detail its process of fabrication in order to compare the results with the characteristic of a conventionally manufactured swirler. Furthermore, a dedicated review of the state-of-the-art related to the AM of fuel swirlers were realized to evaluate the relevance of this topic to conclude if the use of AM to fabricate this component can favor the aerospace industry.

Artigo 2024

Gas Turbine Modelling and Control System Development for Offshore Applications

Adamczevski, Tiago Andrei , Tozi, Luiz Vitor , Vidal do Nascimento, João Guilherme , Bringhenti, Cleverson , Tomita, Jesuíno Takachi , Roma, Alexandre

International Journal of Gas Turbine Propulsion and Power Systems , vol. 15 (3) , pp. 67-75
Mostrar resumo

© 2024 Tiago Andrei Adamczevski, Luiz Vitor Tozi, João Guilherme Vidal do Nascimento, Cleverson Bringhenti, Jesuíno Takachi Tomita.This paper presents the development of a gas turbine simulator based on an application of a real turbogenerator used to generate electricity on an offshore oil platform, the configuration is a turboshaft with free power turbine. The compressor, turbines and the control system were developed using specific methodologies. The development of the simulator was done using the Simulink environment in Matlab®. The development was done using blocks to represent each one of the main components in the engine. A stage stacking methodology based on the real geometry for each stage was adopted to create the compressor maps. The map was used in lookup tables blocks with help of auxiliary coordinates, also known as beta lines. To model both turbines were applied an ellipse equation also known as Stodola’s law. The engine simulator model was tested in an open loop and the results evaluated with the manual data from the engine.

Artigo 2024

GAS TURBINE DESIGN POINT DEFINITION USING ECONOMICS, ENVIRONMENTAL AND OPTIMIZATION ASPECTS

Henrique De Paiva Pinheiro, Carlos , Bringhenti, Cleverson , Tomita, Jesuíno Takachi , Jefferds Dos Santos Silva, Franco , Roma, Alexandre , Salgado, Mayara Lopes

Proceedings of the ASME Turbo Expo , vol. 6
Mostrar resumo

© 2024 by ASME.This work aims to provide a methodology for defining the design point for industrial gas turbine considering the economic, environmental, and engine performance aspects. The definition of the design point is a key step in the development project of a gas turbine since this definition involves the analysis of several operational points to verify if the desired performance can be obtained. Thus, to extend the methodology presented in the literature developed for micro-turbines to consider industrial gas turbines a computer program was developed in MATLAB®. This program is capable of performing thermodynamic calculations for design point definition and of performing single- and multi-objective thermoeconomic and thermodynamic optimizations using genetic algorithms. For the optimization process, total cost minimization, yield maximization, and gas turbine-specific work maximization were chosen as objective functions. The decision variables chosen were compressor pressure ratio, compressor polytropic efficiency, turbine polytropic efficiency, and maximum cycle temperature. For the calculation of economic aspects, fixed costs (equipment, installations, land acquisition cost, etc.) and variable costs (fuel, emissions, and operation and maintenance costs) were considered. The emission cost of NOx, CO, and UHC was considered for the environmental cost calculations. The thermodynamic calculations were based on enthalpy and entropy. The developed computer program was validated by simulating a commercial gas turbine and comparing the results obtained, also using a commercial program, GASTURB®. The presented optimization process shows results for a single objective, two objectives, and three objectives, where the results show a comparison between different design points obtained. The software developed will be of great assistance in the learning of engineering students.

Orientações (13 mestrado, 8 doutorado)

13
Dissertações de Mestrado
8
Teses de Doutorado
21
Como Orientador
0
Como Coorientador