Vibrational Analysis of Four Stroke Diesel Engine using FFT Analyzer

Similar documents
Comparative investigation of vibration analysis of VCR diesel engine for different types of grey cast iron

PREDICTION OF PISTON SLAP OF IC ENGINE USING FEA BY VARYING GAS PRESSURE

Vibration Measurement and Noise Control in Planetary Gear Train

INTERNATIONAL JOURNAL OF PURE AND APPLIED RESEARCH IN ENGINEERING AND TECHNOLOGY

Experimental Investigation of Effects of Shock Absorber Mounting Angle on Damping Characterstics

Proposal to establish a laboratory for combustion studies

PERFORMANCE AND EMISSION ANALYSIS OF DIESEL ENGINE BY INJECTING DIETHYL ETHER WITH AND WITHOUT EGR USING DPF

Flow Simulation of Diesel Engine for Prolate Combustion Chamber

Load Analysis and Multi Body Dynamics Analysis of Connecting Rod in Single Cylinder 4 Stroke Engine

Influence of Fuel Injector Position of Port-fuel Injection Retrofit-kit to the Performances of Small Gasoline Engine

Experimental Study Of Effect Of Tilt Angle Of The Flap On Transverse Vibration Of Plate

THE STUDY ON EFFECT OF TORQUE ON PISTON LATERAL MOTION

The influence of thermal regime on gasoline direct injection engine performance and emissions

Conversion of Naturally Aspirated Genset Engine to Meet III A Norms for Tractor Application by Using Turbocharger

Analysis of Emission characteristics on Compression Ignition Engine using Dual Fuel Mode for Variable Speed

Numerically Analysing the Effect of EGR on Emissions of DI Diesel Engine Having Toroidal Combustion Chamber Geometry

An investigation of the acoustic characteristics of a compression ignition engine operating with biodiesel blends

Noise Reduction in a Reciprocating Compressor by Optimizing the Suction Muffler

Simulation of Performance Parameters of Spark Ignition Engine for Various Ignition Timings

Study of Performance and Emission Characteristics of a Two Stroke Si Engine Operated with Gasoline Manifold Injectionand Carburetion

Analysis Of Gearbox Casing Using FEA

EXPERIMENTAL INVESTIGATION OF COMBUSTION CHARACTERISTICS FOR SPRAY COMBUSTION BY IMPINGING INJECTION IN A CLOSED VESSEL

MULTIOPERATIONAL ELECTROMAGNETIC FORMING MACHINE

Optimization of Seat Displacement and Settling Time of Quarter Car Model Vehicle Dynamic System Subjected to Speed Bump

CFD Investigation of Influence of Tube Bundle Cross-Section over Pressure Drop and Heat Transfer Rate

NUMERICAL STUDY OF TRANSFER FUNCTION OF COM- BUSTION NOISE ON A HEAVY DUTY DIESEL ENGINE

A Research Oriented Study On Waste Heat Recovery System In An Ic Engine

Multi Body Dynamic Analysis of Slider Crank Mechanism to Study the effect of Cylinder Offset

Vibration Analysis of Variable Compression Ratio Engine Using Virtual Instrumentation

Detection of Fault in Gear Box System using Vibration Analysis Method

FAULT ANALYSIS IN GEARBOX USING VIBRATION TECHNIQUE

Impact of Cold and Hot Exhaust Gas Recirculation on Diesel Engine

A STUDY ON DIESEL ENGINE PERFORMANCE DEPENDS ON BP AND BSFC BY APPLYING DIFFERENT INJECTION PRESSURE

Numerical Study on the Flow Characteristics of a Solenoid Valve for Industrial Applications

A FEASIBILITY STUDY ON WASTE HEAT RECOVERY IN AN IC ENGINE USING ELECTRO TURBO GENERATION

Effect of Thermal Barrier Coating on Piston Head of 4-Stroke Spark Ignition Engine

SWIRL MEASURING EQUIPMENT FOR DIRECT INJECTION DIESEL ENGINE

White Paper Waulis Motors Ltd. Tapio Pohjalainen

Comparative performance and emissions study of a lean mixed DTS-i spark ignition engine operated on single spark and dual spark

55. Estimation of engine piston system wear using time-frequency method

Proceedings of the World Congress on Engineering 2008 Vol II WCE 2008, July 2-4, 2008, London, U.K.

THERMAL ANALYSIS OF PISTON BLOCK USING FINITE ELEMENT ANALYSIS

Design and Development of Test Setup to Study the Basic Procedure of Vibration analysis

Figure 1: The Turbocharger cross-section with turbine and compressor connected with shaft [2]

II. EXPERIMENTAL SETUP AND PROCEDURE

Potential of Large Output Power, High Thermal Efficiency, Near-zero NOx Emission, Supercharged, Lean-burn, Hydrogen-fuelled, Direct Injection Engines

REDUCTION OF EMISSIONS BY ENHANCING AIR SWIRL IN A DIESEL ENGINE WITH GROOVED CYLINDER HEAD

Static Structural and Thermal Analysis of Aluminum Alloy Piston For Design Optimization Using FEA Kashyap Vyas 1 Milan Pandya 2

Comparison of Swirl, Turbulence Generating Devices in Compression ignition Engine

Structure Parameters Optimization Analysis of Hydraulic Hammer System *

ANTI-BACKLASH GEAR TRAIN INVESTIGATION. Zengxin Gao, Jani Tähtinen

PHYS 2212L - Principles of Physics Laboratory II

Shock Tube for analysis of combustion of biofuels

Combustion and Emission Characteristics of Jatropha Blend as a Biodiesel for Compression Ignition Engine with Variation of Compression Ratio

DEVELOPMENT OF ELECTRONICALLY CONTROLLED PROPORTIONING DIRECTIONAL SERVO VALVES PROJECT REFERENCE NO.: 38S1453

Experimental Study on Torsional Vibration of Transmission System Under Engine Excitation Xin YANG*, Tie-shan ZHANG and Nan-lin LEI

Experimental Investigation of Performance and Exhaust Emission Characteristics of Diesel Engine by Changing Piston Geometry

NUMERICAL INVESTIGATION OF EFFECT OF EXHAUST GAS RECIRCULATION ON COMPRESSIONIGNITION ENGINE EMISSIONS

Vol-3 Issue India 2 Assistant Professor, Mechanical Engineering Dept., Hansaba College of Engineering & Technology, Gujarat, India

Static Stress Analysis of Piston

Effect Of Main Steam Temperature At Inlet On Turbine Shaft Vibration

Influence of Cylinder Bore Volume on Pressure Pulsations in a Hermetic Reciprocating Compressor

EXPERIMENTAL INVESTIGATION OF THERMAL PERFORMANCE OF PETROL ENGINE USING FUEL CATALYST

Experimental Investigation of Acceleration Test in Spark Ignition Engine

Special edition paper

A Novel Device to Measure Instantaneous Swept Volume of Internal Combustion Engines

DESIGN AND ANALYSIS OF CAR RADIATOR BY FINITE ELEMENT METHOD

The Effect of Turbocharging on Volumetric Efficiency in Low Heat Rejection C.I. Engine fueled with Jatrophafor Improved Performance

Modal Analysis of Muffler of an Automobile by Experimental and Numerical Approach

International Journal of Scientific & Engineering Research, Volume 8, Issue 4, April-2017 ISSN

Experimental Investigation of Performance and Emissions of a Stratified Charge CNG Direct Injection Engine with Turbocharger

Vibration Analysis of an All-Terrain Vehicle

Effects of Pre-injection on Combustion Characteristics of a Single-cylinder Diesel Engine

Assistant Professor, Dept. of Mechanical Engg., Shri Ram College of Engineering & Management, Banmore, Gwalior (M.P) 2

The possibility to use a vibration signal to estimate friction processes in sliding couplings

Experimental and CFD Analysis of Exhaust Manifold to Improve Performance of IC Engine

COURSE NUMBER & COURSE TITLE: ME 300 Fundamentals of Internal Combustion Engine

Modal analysis of Truck Chassis Frame IJSER

Low Noise Gear Units Developed by Loading Test Rig in the Anechoic Chamber

Characteristic Analysis on Energy Waveforms of Point Sparks and Plamas Applied a Converting Device of Spark for Gasoline Engines

Exhaust Gas Waste Heat Recovery and Utilization System in IC Engine

2.61 Internal Combustion Engines Spring 2008

ANALYSIS OF MIDDLE RANGE FREQUENCY VIBRATION OF AIRCRAFT RECIPROCATING ENGINE. Tomasz Goliasz Jacek Czarnigowski

Semi-Active Suspension for an Automobile

Performance Enhancement & Emission Reduction of Single Cylinder S.I. Engine using Tri Fuels -An Experimental Investigation

Noise Reduction of Accumulators for R410A Rotary Compressors

Motor Current Signature Analysis And Its Applications In

Prediction of Physical Properties and Cetane Number of Diesel Fuels and the Effect of Aromatic Hydrocarbons on These Entities

AN EXPERIMENTAL STUDY ON THE EFFECT OF THERMAL BARRIER COATING ON DIESEL ENGINE PERFORMANCE

Analysis of Parametric Studies on the Impact of Piston Velocity Profile On the Performance of a Single Cylinder Diesel Engine

IDENTIFICATION OF FUEL INJECTION CONTROL SYSTEM IN A GDI ENGINE

A POWER GENERATION STUDY BASED ON OPERATING PARAMETERS OF THE LINEAR ENGINE USING A POWERPACK

Continuous Wavelet Transform on Diesel Engine Vibration Condition Monitoring

AN ANALYSIS OF EFFECT OF VARIABLE COMPRESSION RATIO IN C.I. ENGINE USING TURBOCHARGER

Faraday's Law of Induction

THE POSSIBILITIES OF EARLY FAULT DETECTION OF ENGINES

COMPARISON OF ANALYTICAL & FEA OF CONTACT ANALYSIS OF SPUR GEAR DRIVE

Design and Development Of Opposite Piston Engine

PERFORMANCE EVALUATION OF A FOUR STROKE COMPRESSION IGNITION ENGINE WITH VARIOUS HELICAL THREADED INTAKE MANIFOLDS

IJESRT. Scientific Journal Impact Factor: (ISRA), Impact Factor: 2.114

Transcription:

Vibrational Analysis of Four Stroke Diesel Engine using FFT Analyzer Suraj R. Karanjikar 1, 1 UG Student, SRES College of Engineering, Kopargaon, India. Abstract- In every diesel engine there is vibration due to reciprocating component, rotating component, unidirectional combustion forces, structural resonance etc. Vibration is an effective tool in detecting and diagnosing some of the incipient failures of machine and equipment. Vibration signature measured on the external surface of the machine or a structure contains a good amount of information, which if properly interpreted, can reveal the running condition of the machine. So, as per standard it is necessary to analyze the vibration and Noise. In this paper vibration testing of single cylinder diesel engine by using FFT (Fast Fourier Transform) is carried out. Numbers of readings to measure mean vibration and noise levels in a single cylinder diesel engine for different cooling water temperatures have been taken. It was seen that a variation in the water temperature affects the mean vibration values. This effect was considered sufficient to require a control of temperature when conducting investigations on other sources or causes of engine vibration. ADASH 4400 VA4Pro FFT analyzer with Accelerometer is used for vibration testing. Vibration accelerometer is mounted on the cylinder head vertically to record the engine vibrations in RUN- UP mode of FFT Analyzer which directly gives the spectral data. Index Terms: Diesel Engine, Vibrations, FFT Analyzer, Cooling Water temperature. 1. INTRODUCTION A diesel engine (also known as a compressionignition engine) is an internal combustion engine that uses the heat of compression to initiate ignition to burn the fuel, which is injected into the combustion chamber. This is in contrast to spark-ignition engines such as a petrol engine (gasoline engine) or gas engine (using a gaseous fuel as opposed to gasoline), which uses a spark plug to ignite an air-fuel mixture. The diesel engine has the highest thermal efficiency of any regular internal or external combustion engine due to its very high compression ratio. The internal combustion (IC) engine is the important part of many machines and if not properly designed, it will cause vibrations and transfers the same to the supporting structures. Vibration analysis is one of the most important conditions monitoring technique that is applied in real life. W.J.Griffiths and J.Skorecki[1964] [1], investigated that the effect of cooling water temperature on vibrations of diesel engine. Piston slap was investigated by motoring the engine and removing certain sources of the vibration from the engine. They conclude that study of effect of cooling water temperature on vibrations should be considered before analyzing other sources of vibrations. Somashekar V, Dr. K. Satish, Jamuna AB and Ranjitha P, [2013] [2], made an attempt to analyze the vibration signals of the IC Prof. D.S. Supekar 2 2 Assistant Professor, SRES College of Engineering, Kopargaon, India. engine to detect the existence of any fault utilizing Fast Fourier Transform (FFT),They found that this method may be implemented as a test system for an engine, or as a feedback to an ignition system. A. R.Wargante and Dr. S. S. Gawade, [2013] [3], presented general information of internal combustion engine and measurement of vibration. vibration level of single cylinder diesel engine was investigated and some of the significant factors were examined experimentally. Y.V.V.SatyanarayanaMurthy [2011] [4], the purpose of this paper is to detect the knock in Diesel engines which deteriorate the engine performance adversely. The methodology introduced in the present work suggests a newly developed approach towards analyzing the vibration analysis of diesel engines. Knock in diesel engine is detected by measuring the vibration generated by the engine using The DC-11 FFT analyzer with accelerometer. Marcio Santana, Jose Eduardo Mautone Barros and Helder Alves de Almeida Junior [5], Focuses their work to identify and describe the main sources of vibration and noise in internal combustion engine. With test and experimental analysis of frequency spectrum they pinpointed vibrations caused due to different processes. S.S.Bhansali and N.D.Shirgire[6], analyzed the vibration in diesel engine cylinder liner considering combustion gas forces and cylinder liner temperature using finite element software ANSYS. S.H. Cho, S.T. Ahn and Y.H. Kim [2002] [7], presented an analytical model, which can predict the impact forces and vibratory response of engine block surface induced by the Piston Slap of an internal combustion engine. S.D.Haddad and H.L.Pullen [8], explained various methods for estimating some origins of mechanically induced noise caused by various forces acting on the moving parts of the engine. They mainly focused on noise caused due to Piston slap phenomenon. V.L.Maleev [9], states that a lowering of the gas temperature during compression and burning has a beneficial influence in reducing the tendency to knock and ultimately the vibrations of engine. Singiresu S. Rao[10], gives the introductory knowledge of the subject Vibration Engineering right from Fundamentals of vibration to vibration control including vibration measurement techniques and their application. Most of the research in the vibration analysis field has been carried out in processes such as the air intake, exhaust and combustion. It is recognized that a substantial addition to the general level of vibration comes from mechanical impacts of various kinds within the engine. 359

Prior to investigating such sources as piston slap, valve closure, interaction between gears, cam and follower, fuel pump, etc., certain preliminary work has to be carried out. In this regard, the most extensive investigation on the effect of the engine cooling water temperature on the acceleration spectrum of vibration at a point on the cylinder head is carried out. These results have an indirect effect on the different investigations carried to find the effect of mechanical impacts on vibration. The temperature of cooling water was controlled by adjusting the rate of recirculation of water. 2. FFT ANALYZER Fourier transform is a mathematical procedure to obtain the spectrum of a given input signal. A signal which is represented by an equation or a graph or a set of Data points with time as independent variable is transformed into another equation or a graph or a set of data points where frequency is the independent variable by using Fourier transform. Thus the method to obtain the spectrum using computer is called as Fast Fourier Transform (FFT). The instrument which converts input signal with time as independent variable in to frequency spectrum and displays it in graphical form is called as spectrum analyzer or FFT analyzer. FFT Analyzer is a unique instrument for machinery vibration diagnostics. FFT analyzer generally includes modules for analyzing, data collecting and the recording of vibration signals. By using a Fourier series representation, the original time signal can be easily transformed in frequency signal and much better understood. Transformations are also performed to represent the same data with significantly less information. Analyzer, RunUp, Recorder, Route, Balancer are the different modes facillated for various condition monitoring process. The FFT spectrum analyzer samples the input signal, computes the magnitude of its sine and cosine components, and displays the spectrum of these measured frequency components. The FFT is simply a clever set of operations which implements Fourier's theorem. The resulting spectrum shows the frequency components of the input signal. The big advantage of this technique is its speed. Because FFT spectrum analyzers measure all frequency components at the same time, the technique offers the possibility of being hundreds of times faster than traditional analogue spectrum analyzers. To measure the signal with higher resolution, the time record is increased. But again, all frequencies are examined simultaneously providing an enormous speed advantage. 3. EXPERIMENTAL SETUP 3.1 Test Rig Experimental Setup (Fig. 3.1) consists of a single cylinder diesel Engine manufactured by Kirloskar oil Engine Ltd. with power rating of 3.7 KW and compression ratio of 16.5. Engine was coupled to an Eddy Current Dynamometer through universal coupling. The engine and the dynamometer were mounted on a common bed made from Iron C-Channel which was bolted to the cement foundation. Vibration accelerometer is mounted on cylinder head vertically with the help of magnetic force to record the engine vibrations (as shown in Fig. 3.2) 3.2 Instrumention Fig. 3.1 Test Rig Fig. 3.2 Accelerometer mounted on Cylinder Head 3.2.1 FFT Analyzer By using a Fourier series representation, the original time signal can be easily transformed in frequency signal and much better understood. Transformations are also performed to represent the same data with significantly less information Fast Fourier Transform Analyzer - Adash VA4- PRO 4400 (fig. 3.2.1) is used for achieving desired graphs and mean values. Engine vibrations are measured using RUN-UP mode of FFT analyzer. The readings and graphs of FFT were analyzed with the DDS software installed in Computer. 360

Sensitivity of Microphone 46.17 mv/pa. Fig. 3.2.1 FFT Analyzer 3.2.2 Accelerometer An accelerometer is an instrument that measures the acceleration of vibrating body. This device is, perhaps, preferred over the velocity pickup, for a number of reasons. For example, accelerometers have good sensitivity characteristics and a wide useful frequency range; they are small in size and light in weight and thus are capable of measuring the vibration at a specific point without, in general, loading the vibrating structure. In addition, the devices can be used easily with electronic integrating networks to obtain a voltage proportional to velocity or displacement. However, the accelerometer mounting, the interconnection cable, and the instrumentation connections are critical factors in measurements employing an accelerometer. Sensitivity of Accelerometer 100 mv/g. (g= 9.81 m/s 2 ) Fig. 3.2.3 Microphone 4. RESULTS AND DISCUSSION With the help of FFT analyzer mean values of different parameters are obtained at different temperatures and are presented in the form of graphs. Also spectrums of Displacement, Velocity and Acceleration response of engine are obtained for different cooling water temperatures. Different values obtained for different cooling water temperature are as shown below in Table 4.1. Sr. No Table 4.1 values for different temperatures Coolin g Water Temp. ( 0 C.) Acceleratio n(mm/s 2 ) Velocity (mm/s.) Displacemen t (µm.) Noise (Pa.) 1 26 23.5 28.7 151 3.29 2 30 23.4 29.7 165 3.46 3 35 22.8 29.9 169 3.36 4 40 22.5 29.9 165 3.39 5 44 21.8 28.9 163 3.23 Fig. 3.2.2 Accelerometer 3.3.3 Noise Sensor Microphone Many types of measuring systems can be used for the measurement of sound depending on the purpose of the study, the characteristics of sound and the extent of information that is desired about the sound. The microphone is the interface between the acoustic field and the measuring system. It responds to sound pressure and transforms it into an electric signal which can be interpreted by the measuring instrument (e.g. the sound level meter). At the 26 0 C of cooling water temperature, Mean displacement () is 151 µm. Also values of velocity and acceleration found to be 28.7 mm/s and 23.5mm/s 2 respectively. Mean noise level is measured and is equal to 3.29 Pa. Mean values of similar parameters are obtained for different cooling water temperatures. They are presented in table 4.1. With the help of these mean values obtained from FFT analyzer, individual graphs for different parameters are plotted against cooling water temperature. 361

Fig. 4.1 Graph of Values of Displacement vs. Temperature Fig. 4.1 shows the graph of values of displacement versus cooling water temperature, in which temperature (in 0 C.) is plotted on abscissa and values of displacement (in µm.) are plotted on its ordinate. From graph, values of displacement are seen to be increasing as temperature is increasing from 26 0 C to 35 0 C. While some reverse effect is seen above 35 0 C of cooling water temperature. Overall general linear relationship is shown with the help of straight line as shown. It indicates the fact that, as cooling water temperature increase, the mean values of displacement are increasing and ultimately vibrations of Engine are increasing. Fig. 4.3 Graph of Values of Acceleration vs. Temperature Fig. 4.3 is the graph of values of acceleration versus cooling water temperature in which temperature is plotted along X-axis and values of Acceleration are plotted along Y-axis. From this graph it is seen that mean acceleration levels are decreasing exceptionally, when cooling water temperature is increasing. Fig. 4.4 Graph of Values of Noise vs. Temperature Fig. 4.2 Graph of Values of Velocity vs. Temperature Fig. 4.2 shows the graph of values of velocity versus cooling water temperature in which temperature is plotted along X-axis and mean values of velocity are plotted along Y-axis. From the graph shown in Fig. 4.2, values of Velocity are found to be increasing as temperature is increasing, while again some reverse effect is seen above 40 0 C of cooling water. Overall general relationship is shown with the help of straight line. It also ultimately indicates that vibrations of Engine are increasing with increase in cooling water temperature. Fig. 4.4 is the plot of values of noise measured against cooling water temperature, in which temperature is plotted along X-axis and values of acceleration are plotted along Y-axis. It was expected that mean noise readings will increase as the cooling water temperature increases. But actually, as noise sensor (microphone) used for noise measurement was held manually approximately 5 cm. above the cylinder head, so because of certain human errors, some varying nature of graph is seen (as shown in Fig. 4.4). By studying graphs of Mean Displacement, Velocity, Acceleration and Noise plotted against different cooling water temperatures, it would be advisable to keep the cooling water temperature within such limits where mean values of those parameters are minimum; when investigating studies related to different sources of vibrations. With the help of FFT analyzer different spectrums for acceleration, velocity and displacement are obtained at different temperatures of cooling water and are discussed below. 362

Fig. 4.5 Acceleration spectrum obtained from FFT at 26 0 C. Fig. 4.5 shows the actual spectrum obtained from FFT analyzer for acceleration of Engine, when cooling water temperature is 26 0 C. This spectrum is like a conventional graph having acceleration (in terms of g ) on abscissa and frequency (in Hz ) on ordinate. Frequency range from 10 Hz to 1600 Hz. is considered. The top eight peaks obtained in the spectrum are marked seperately. Similar acceleration spectrums for different cooling water temperatures are obtained. Acceleration spectrums obtained from FFT analyzer for different cooling water temperature shows repetitive responses in particular frequency ranges. Maximum peaks are seen in the low frequency region of 10 Hz to 150 Hz. Acceleration variations are seen quiet low in the middle frequency range in 150 Hz to 400 Hz. In high frequency region above 400 Hz., a set of repetitive higher acceleration peaks are observed. Fig. 4.7 Displacement spectrum obtained from FFT at 26 0 C. Fig. 4.7 shows displacement spectrum obtained from FFT analyzer, when cooling water temperature is 26 0 C. This spectrum is in the form of graph having displacement (in µm.) on abscissa and frequency (in Hz.) on ordinate. Frequency range up to 1600 Hz. is considered. The top 8 peaks found in displacement spectrum are marked separately and shown. With the help of FFT analyzer different spectrums for noise are obtained at different temperatures and one (for 26 0 C) is presented below. Fig. 4.8 Displacement spectrum obtained from FFT at 26 0 C. Fig. 4.8 shows Noise spectrum obtained from FFT analyzer, when cooling water temperature is 26 0 C. This spectrum is also like a conventional graph having Noise (in Pa.) on Y- axis and frequency (in Hz.) on X-axis. Fig. 4.6 Velocity spectrum obtained from FFT at 26 0 C. Fig. 4.6 shows the velocity spectrum obtained from FFT analyzer at 26 0 C of cooling water temperature. This spectrum is a graph of velocity drawn verses frequency responses, in which velocity (in mm/s.) is plotted along Y-axis and frequency (in Hz.) along X-axis. The top 8 peaks obtained are marked separately and shown in the spectrum. By considering all the spectrums obtained at different cooling water temperatures, maximum value of Displacement is always seen in the initial frequency range of 20 to 50 Hz. CONCLUSIONS From the Experimentation and Analysis of Diesel Engine carried out it is observed that as cooling water temperature increases, mean values of velocity and displacement are increasing. This ultimately indicates that vibration levels are increasing with increase in temperature of cooling water. On an exceptional note, mean values of acceleration are found to be decreasing with increase in cooling water temperature. This effect of increase in mean vibration levels of engine with respect to increasing cooling water temperature is considered sufficient to require a control of water temperature when conducting investigations related to the other causes of engine vibrations and their effects on engine vibration levels. Also, from respective spectrums of displacement, velocity and acceleration obtained at different cooling water temperatures it is found that most of the top peaks are seen 363

in the initial frequency range of 10 Hz to 150 Hz, indicating maximum vibrations of engine in that range. REFERENCES [1] W. J. Griffiths and J. Skorecki, Some aspects of vibration of a single cylinder diesel engine, Journal of Sound and vibration, Volume 1, Page 345-364, 1964. [2] Somashekar V., Dr. K. Satish, Jamuna AB.,,Ranjitha P., Vibration signature analysis of IC engine, International journal of innovative research & development, Volume 2, Issue 13,Page 224, December 2013. [3] A. R.Wargante and Dr. S. S. Gawade, Experimental analysis of single cylinder diesel engine, International Journal of Engineering Research & Technology (IJERT), Volume 2, Issue 7, July 2013. [4] Y.V.V.SatyanarayanaMurthy, Combustion analysis and knock detection in single cylinder DI-diesel engine using vibration signature analysis, International Journal of Engineering Science and Technology (IJEST). [5] Claudio Marcio Santana, Jose Eduardo Mautone Barros, Helder Alves de Almeida Junior, Analysis of vibration and noise of an internal combustion engine by application of test and experimental analysis of the frequency spectrum, 22nd International Congress of Mechanical Engineering (COBEM 2013) November 3-7, 2013. [6] S.S.Bhansali, N.D.Shirgire, Analysis of vibration in diesel engine considering Combustion Gas Forces: Using Grey Cast Iron Material, International Journal on Recent and Innovation Trends in Computing and Communication, Volume 2, Issue 3, Page 604 611. [7] S.H. Cho, S.T. Ahn and Y.H. Kim, A simple model to estimate the impact force induced by piston slap, Journal of Sound and vibration, Volume 2, Issue 255, Page 229-242, 2002. [8] S.D.Haddad and H.L.Pullen, Piston slap as source of noise and vibration in diesel engine, Journal of sound and vibration, Volume 2, Issue 34, Page 249-260, 1974. [9] V.L.Maleev., Internal Combustion Engines, Tata McGraw Hill publication. [10] Singiresu S. Rao, Mechanical Vibrations (Fourth edition), Pearson Education. [11] Adash 4400 VA4Pro User Manual. [12] Adash 4400 VA4Pro Step by step Guide. 364