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  • 1
    In: Applied Acoustics, Elsevier BV, Vol. 93 ( 2015-06), p. 120-129
    Type of Medium: Online Resource
    ISSN: 0003-682X
    Language: English
    Publisher: Elsevier BV
    Publication Date: 2015
    detail.hit.zdb_id: 1501311-X
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  • 2
    Online Resource
    Online Resource
    SAE International ; 2016
    In:  SAE International Journal of Engines Vol. 9, No. 4 ( 2016-11-08), p. 2477-2492
    In: SAE International Journal of Engines, SAE International, Vol. 9, No. 4 ( 2016-11-08), p. 2477-2492
    Type of Medium: Online Resource
    ISSN: 1946-3944
    Language: English
    Publisher: SAE International
    Publication Date: 2016
    detail.hit.zdb_id: 2492224-9
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  • 3
    Online Resource
    Online Resource
    Elsevier BV ; 2015
    In:  Energy Procedia Vol. 75 ( 2015-08), p. 1108-1113
    In: Energy Procedia, Elsevier BV, Vol. 75 ( 2015-08), p. 1108-1113
    Type of Medium: Online Resource
    ISSN: 1876-6102
    Language: English
    Publisher: Elsevier BV
    Publication Date: 2015
    detail.hit.zdb_id: 2490671-2
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  • 4
    Online Resource
    Online Resource
    Akademia Baru Publishing ; 2021
    In:  Journal of Advanced Research in Fluid Mechanics and Thermal Sciences Vol. 79, No. 2 ( 2021-01-15), p. 83-94
    In: Journal of Advanced Research in Fluid Mechanics and Thermal Sciences, Akademia Baru Publishing, Vol. 79, No. 2 ( 2021-01-15), p. 83-94
    Abstract: In recent years with the advancement of technologies, the demand of a reliable and flexible hot water system has increased tremendously. A reliable system includes several critical points which are the degree of safety that a system can offer, the conservation of the energy used and the issue of cost saving. While a flexible system must provide the flexibility in the control of the output from a system desired by the consumers itself. This paper reported on newly developed system for hot water that will greatly benefit consumer. It focuses on building an extension of the cyber physical system in the existing system with purposes of implementing a thermal load profile for consumer who use the hot water system in their daily life. The implementation of the thermal load profile to the system is significant especially in conserving the energy used in the system simultaneously saving any related cost to operate the system. Based on the implemented thermal load profile, the system works in maintaining an output of thermal energy from the hot water supplied to the consumer at a certain value. In addition, it also allows flexibility in controlling the desired temperature by consumers. This new system is simulated in a test bench in the form of laboratory setup. The system uses a control loop feedback mechanism, which means that it will continuously regulate the temperature and mass flow rate of the flowed water in the pipeline for the consumer hot water simulation based on the calculated difference of the actual supplied values and the set values. With the use of standard devices and actuators to drive the system, a robust system can be realized.
    Type of Medium: Online Resource
    ISSN: 2289-7879
    URL: Issue
    Language: Unknown
    Publisher: Akademia Baru Publishing
    Publication Date: 2021
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  • 5
    Online Resource
    Online Resource
    SAGE Publications ; 2023
    In:  International Journal of Engine Research Vol. 24, No. 3 ( 2023-03), p. 1041-1062
    In: International Journal of Engine Research, SAGE Publications, Vol. 24, No. 3 ( 2023-03), p. 1041-1062
    Abstract: Homogeneous charge compression ignition (HCCI) promises low [Formula: see text] emissions and high efficiency due to fast combustion at low temperatures. However, the control of combustion timing represents a serious challenge due to the lack of dedicated ignition control parameters. This challenge is addressed in this work by means of a hot surface ignition (HSI) system, whose core element consists of a shielded, electrically heated ceramic glow plug. In this approach, termed as hot surface assisted compression ignition (HSACI), a small portion of mixture is thought to ignite in the vicinity of the shielded glow plug and to subsequently propagate to the main combustion chamber in order to initiate bulk-gas auto-ignition. Adjusting the hot surface temperature enables to ei ther advance or retard the onset of combustion and thus, allows to control combustion timing. This paper presents experimental results of initial engine trials, using the HSACI concept in a naturally aspirated single cylinder natural gas engine. Measurements were conducted at a constant engine speed of 1400 l/min and include intake air temperatures in the range of 150–175°C and relative air-fuel ratios ([Formula: see text]) from 2.0 to 2.8. Results show that the HSI system enables combustion under conditions, which do not allow for pure HCCI operation. Moreover, the combustion timing can be actively controlled within certain limits by changing the HSI temperature. Increasing cycle-to-cycle variations limit stable operation at lower temperatures, while a transition to pure HCCI is found at intake temperatures beyond 170°C. The applicable [Formula: see text] range is limited by knocking or uncontrolled combustion toward the rich side and instable operation toward the lean side. Loss analysis points out that wall heat flow and imperfect combustion represent the dominant loss mechanisms. Heat release analysis reveals two pronounced phases, indicating initial flame propagation and subsequent auto-ignition similar to spark assisted compression ignition (SACI).
    Type of Medium: Online Resource
    ISSN: 1468-0874 , 2041-3149
    RVK:
    Language: English
    Publisher: SAGE Publications
    Publication Date: 2023
    detail.hit.zdb_id: 2030603-9
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  • 6
    Online Resource
    Online Resource
    EDP Sciences ; 2019
    In:  MATEC Web of Conferences Vol. 255 ( 2019), p. 04004-
    In: MATEC Web of Conferences, EDP Sciences, Vol. 255 ( 2019), p. 04004-
    Abstract: Variable valve timing has been implemented by various manufacturers to improve internal combustion engine performance while operating at wide speed and load ranges. A novel flexible valve timing system for a small four-stroke engine is currently under development by Automotive Engineering Research Group (AERG) in Universiti Malaysia Pahang (UMP). In this paper, a comprehensive intake and exhaust tuning for the flexible variable valve timing is presented. A numerical assessment has been conducted through one dimensional engine modelling and simulation using validated model. There are eight valve timing configurations investigated for the tuning for three main speed regions. The simulation shows a positive and significant impact to the engine performance in three approaches; namely late intake valve closing, early intake valve closing and late exhaust valve closing. These approaches sufficiently covered the whole range of engine speeds for optimum engine operational performance.
    Type of Medium: Online Resource
    ISSN: 2261-236X
    Language: English
    Publisher: EDP Sciences
    Publication Date: 2019
    detail.hit.zdb_id: 2673602-0
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  • 7
    In: Journal of Engineering for Gas Turbines and Power, ASME International, Vol. 145, No. 8 ( 2023-08-01)
    Abstract: Spark assisted compression ignition (SACI) represents an efficacious technique to extend the operating range and control combustion timing in homogeneous charge compression ignition (HCCI) engines. Recently, a hot surface ignition system (HSI) was demonstrated to enable hot surface assisted compression ignition (HSACI) featuring similar combustion characteristics compared to SACI. This work compares both combustion processes with regard to control and combustion characteristics, the strength of the ignition systems, and cycle-by-cycle variations (CCV). Engine trials were conducted using a single-cylinder research engine fueled with natural gas. The engine operated naturally aspirated at an engine speed of 1400 1/min and steady-state conditions. Experimental conditions cover relative air-fuel ratios λ = 2.1–3.1, intake temperatures Tin = 140–170 °C and intake pressures pin = 993–995 mbar. Results show similar capabilities of SACI and HSACI to control combustion timing by means of spark timing in SACI and hot surface temperature in HSACI. Heat release analyses of individual combustion cycles point out the similarity of both combustion processes. The evaluation of the strength of the ignition systems reveals that HSACI extends the lean limit by Δλ = 0.05–0.10 and advances the earliest applicable combustion timing (MinCA50) by ΔMinCA50 = 1.0–4.5 °CA provided that ringing is not of concern. Comparison of CCV in HCCI, SACI, and HSACI shows highest combustion stability for HCCI, followed by SACI. HSACI evinces highest CCV due to a larger variation at the start of combustion.
    Type of Medium: Online Resource
    ISSN: 0742-4795 , 1528-8919
    Language: English
    Publisher: ASME International
    Publication Date: 2023
    detail.hit.zdb_id: 2010437-6
    detail.hit.zdb_id: 165371-4
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  • 8
    Online Resource
    Online Resource
    Springer Science and Business Media LLC ; 2005
    In:  MTZ - Motortechnische Zeitschrift Vol. 66, No. 3 ( 2005-3), p. 202-209
    In: MTZ - Motortechnische Zeitschrift, Springer Science and Business Media LLC, Vol. 66, No. 3 ( 2005-3), p. 202-209
    Type of Medium: Online Resource
    ISSN: 0024-8525 , 2192-8843
    RVK:
    RVK:
    RVK:
    Language: German
    Publisher: Springer Science and Business Media LLC
    Publication Date: 2005
    detail.hit.zdb_id: 240946-X
    detail.hit.zdb_id: 2097890-X
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  • 9
    Online Resource
    Online Resource
    Springer Science and Business Media LLC ; 2005
    In:  MTZ worldwide Vol. 66, No. 3 ( 2005-3), p. 15-17
    In: MTZ worldwide, Springer Science and Business Media LLC, Vol. 66, No. 3 ( 2005-3), p. 15-17
    Type of Medium: Online Resource
    ISSN: 2192-9114
    Language: English
    Publisher: Springer Science and Business Media LLC
    Publication Date: 2005
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  • 10
    Online Resource
    Online Resource
    SAE International ; 2020
    In:  SAE International Journal of Advances and Current Practices in Mobility Vol. 2, No. 2 ( 2020-1-24), p. 1041-1057
    In: SAE International Journal of Advances and Current Practices in Mobility, SAE International, Vol. 2, No. 2 ( 2020-1-24), p. 1041-1057
    Abstract: 〈 div class="section abstract" 〉 〈 div class="htmlview paragraph" 〉 Small-scale cogeneration units (P 〈 sub 〉 el 〈 /sub 〉 & lt; 50 kW) frequently use lean mixture and late ignition timing to comply with current NO 〈 sub 〉 x 〈 /sub 〉 emission limits. Future tightened NO 〈 sub 〉 x 〈 /sub 〉 limits might still be met by means of increased dilution, though both indicated and brake efficiency drop due to further retarded combustion phasing and reduced brake power. As an alternative, when changing the combustion process from lean burn to stoichiometric, a three-way-catalyst allows for a significant reduction of NO 〈 sub 〉 x 〈 /sub 〉 emissions. Combustion timing can be advanced, resulting in enhanced heat release and thus increased engine efficiency. 〈 /div 〉 〈 div class="htmlview paragraph" 〉 Based on this approach, this work presents the development of a stoichiometric combustion process for a small naturally aspirated single cylinder gas engine (P 〈 sub 〉 el 〈 /sub 〉 = 5.5 kW) originally operated with lean mixture. To ensure low NO 〈 sub 〉 x 〈 /sub 〉 emissions, a three-way-catalyst is used. In order to achieve high engine efficiency, measures implemented include Miller valve timing, optimized intake system, reduced engine speed and increased compression ratio. In the first step, a detailed 1D engine cycle simulation model was used to investigate the efficiency benefit of Miller valve timing and increased compression ratio. Within the numerical study, inlet valve closing timing and intake pipe length were varied, yet a closed-loop control was implemented to maintain a constant effective compression ratio of 14.66 by adjusting geometrical compression ratio for each configuration. Subsequently, the most expedient valve timing was designed using multi-body simulation of the inlet valve train, while increased compression ratio was achieved by modifying the series piston bowl geometry. 〈 /div 〉 〈 div class="htmlview paragraph" 〉 Engine trials agree with simulation results and show highest efficiency for a Miller valve timing closing +15 °CA later to the series valve timing and geometrical compression ratio of 15.36. Compared to the series lean burn engine, indicated and brake efficiency increase by 3.2 %-points to 39.0 % and by 3.9 %-points to 34.4 %, respectively, while maintaining original brake power of P 〈 sub 〉 e 〈 /sub 〉 = 6.1 kW. Finally, an experimental study accompanied by 3D-CFD simulations was conducted to investigate the potential of optimized piston geometry to further increase efficiency. However, results reveal only minor effect of piston geometry on efficiency, what is likely stemming from interrelation of combustion efficiency, wall heat losses and heat release rate. 〈 /div 〉 〈 /div 〉
    Type of Medium: Online Resource
    ISSN: 2641-9645
    Language: English
    Publisher: SAE International
    Publication Date: 2020
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