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International
OPEN ACCESS Journal
Of Modern Engineering Research (IJMER)
| IJMER | ISSN: 2249–6645 | www.ijmer.com | Vol. 4 | Iss. 4 | Apr. 2014 | 46 |
Effect of Hardness and Wear Resistance on En 353 Steel by Heat
Treatment
Navin A. Astunkar1
, A. S. Bonde2
1, 2
(M.Tech 2ndyr. (Prod.Engg), Department of Mechanical engineering, Yeshwantrao Chavan College of
Engineering, Nagpur, India)
I. INTRODUCTION
En 353 steel has carbon content of 0.17% and the most common form of steel as it’s provides material
properties that are acceptable for many automobile applications such as heavy duty gear, shaft, pinion, cam
shafts, gudgeon pins. It is neither externally brittle nor ductile due to its lower carbon content and lower
hardness. As the carbon content increases, the metal becomes harder and stronger. The process of heat treatment
is carried out first by heating the metal and then cooling it in water or oil or air. The purpose of heat treatment is,
to enhances the transformation of austenite to martensite i.e. (soft material to hard material), to change the grain
size, to modify the structure of the material and relive the stress set up in the material. It is a one-time permanent
treatment process and it is change the entire cross section of the material. The martensitic phase transformation
is usually used to increase the hardness of the steels. The various heat treatment processes are annealing,
normalizing, hardening, quenching and tempering.
According to this work basically focus on carburizing; it is a process of improving carbon on case.
These are done by exposing the part to carbon rich atmosphere at the high temperature (close to melting point)
and allow diffusion to transfer the carbon atoms into the steel. So, these work concentrations go through gas
carburizing which is widely used in mass production. The carburizing process does not harden the steel it only
increases the carbon content. In heat treatments, both chemical composition and microstructure properties of a
case can be changed.
The aim of this paper is to examine the hardness, wear resistance and effect of microstructure of before
and after heat treatment on En 353 steel. In heat treatment, the machined specimens are loaded in the gas
carburizing chamber . Carburizing takes places at 920°C for 120 minutes then it is cooled by air and relaxing
time is 75 minutes. The purpose of the relaxing time is to arrest the in and out of the carbon and it is followed by
oil quenching at 820°C for 30 minutes, oil temperature is below 80°C then by tempering at 250°C for 90
minutes. In general, the untempered material structure has the high hardness and also more brittle. Hence the
tempering process should be done to reduce the brittleness, to relieve the internal stress and to increase the
toughness and ductility of the material.
Nomenclature:
AHT - After Heat Treatment
BHT - Before Heat Treatment
CHT - Conventional Heat Treatment
HV - Vickers Hardness test
II. Methodology
After heat treatment, the specimens for structure investigations are conventionally prepared and etched
using nital. The specimen with a diameter of 10 mm and a length of 50 mm are subjected to the Hardness test
using the MH6 machine. The specimen with same size are subjected to wear testing using Pin-on-disc apparatus.
The Leica DM 2500 M microscope is used to the observations of obtained structures before and after the heat
treatment.
Abstract: En 353 steel is an easily available and cheap material that is acceptable for heavy duty
applications. Heat treatment on En 353 steel is improved the ductility, toughness, strength, hardness and
relive internal stress in the material. Spectrographic method is used to analyze the composition of the
alloy material. The experimental results of hardness and dry wear testing on pin-on-disc are done to get
idea about heat treated En 353 steel. It is found that the hardness and wear resistance of the En 353 steel
is improved after the heat treatment and the microstructure is changed from ferrite to martensite.
Keywords: En 353 steel, Heat treatment, Hardness, Wear resistance, Pin-on-disc.
Effect of Hardness and Wear Resistance on En 353 Steel by Heat Treatment
| IJMER | ISSN: 2249–6645 | www.ijmer.com | Vol. 4 | Iss. 4 | Apr. 2014 | 47 |
III. Results And Discussion
3.1 Chemical Analysis
In order to ensure the material of the specimen is done with help of the optical emission spectroscope
(OES). The result is obtain from the chemical analysis, carbon - 0.169 %, silicon - 0.234 %, manganese - 0.712
%, phosphorus - 0.015 %, sulphur - 0.030 %, Chromium – 1.617 %, Nickel - 1.574 %, molybdenum - 0.265 %,
copper - 0.243%, Aluminum -0.034% and remaining percentage is iron respectively. A sample of ϕ 20 × 10 mm
is polished using 60 grit papers and two sparks is introduced on the surface to find the chemical composition of
the material. After ensuring the chemical composition, the raw material is machined according to the dimension
for various tests.
3.2 Hardness
Vickers hardness measurement is done on the specimen as per the IS 1501-2008 procedures by using
Vickers hardness tester (MH6). Hardness measurement is made with 100 g loads, dwell time of 10 seconds and
diamond indenter is used for test. The impression is done on the circular faces at the centre of the specimen. The
hardness values are taken corresponding to the diagonal length of the indentation. Two samples (i.e. BHT and
AHT) and four readings are taken from the each sample from case to core. The average value is calculated from
four readings. The hardness values of BHT (case and core) samples are, 244.25 and 244.77 HV respectively.
The hardness values of AHT (case and core) samples are 671 and 417.2 HV respectively. It is clearly noticed
that the base material (BHT) has the low hardness. The AHT specimen has high hardness when compared to the
BHT sample as shown in Fig. 1.
Fig.1: Hardness Profile of En353 steel BHT and AHT
3.3 Wear Resistance
wear resistance measurement is done on specimen by using dry wear on pin-on-disc testing in
accordance with the ASIM G99-95standrds.the experimental results of wear carried out in laboratory gives
values of initial and final weight, before and after wear of specimen. wear test carried out with the 40N load,
400rpm velocity, 40mm track radius, 1000m sliding distance for 10 minutes. the experimental result of wear test
are analyzed by the Archad's (Hutchings,1995)or Rabinowicz's equation (rabinowicz,1965) that assess the wear
rate and wear coefficient, relating the cumulative lost volume per sliding distance with the wear resistance
through the linear equation as follows.
Q(
mm 3
m
) =
V
S
= K
FN
H
.........(equation 1)
where,
Q - wear rate
V - cumulative lost volume
S - sliding distance
FN - normal load
H - hardness (HRC)
from Eq.(1), wear coefficient is given by,
K =
QH
FN
...................(equation2)
and in general wear coefficient is defined as 1/K.
Effect of Hardness and Wear Resistance on En 353 Steel by Heat Treatment
| IJMER | ISSN: 2249–6645 | www.ijmer.com | Vol. 4 | Iss. 4 | Apr. 2014 | 48 |
Readings are taken from two samples average value calculated from readings. results obtain are shown
in following tables.
Sr. no.
Specimen wear rate
Q=V/S(mm3
/m)
(*10-3
)
mean value
Q
wear
coefficient(K)
(*10-3
)
mean
value(K)
wear
resistance(1/K)
mean
value(1/K)
1 BHT 8.81
8.81*10-3
5.1
5.1*10-3
196.1
196.1
2 8.81 5.1 196.1
1 AHT 1.23
1.23*10-3
9.04
9.04*10-4
1106.2
1106.2
2 1.23 9.04
1106.2
Table 1: results of wear resistance BHT and AHT
3.4 Microstructure
The change of microstructure in the material due to conventional heat treatment (CHT) is the main
reason for the improved mechanical properties. Hence the microstructure examination is carried out to find the
structure of BHT and AHT. The samples are polished using SiC emery paper of grit 280 and velvet cloth using
white kerosene as coolant. These samples are etched with nital and dried in air. Finally, microstructure
examination is carried out using optical microscope.
Fig. 2: spheroidized annealed structure at Mag. 1000X BHT
Fig. 3: about 45% retained austenite in the matrix of martensite at Mag. 1000X AHT
Fig. 2 show the microstructure of BHT is ferrite and spheroidized annealed structure with at the grain
boundaries distributed throughout the structure and Fig. 3 show the microstructure of AHT is fine martensite,
with retained austenite and traces of ferrite distributed throughout the structure.
IV. Conclusion
Before and after the heat treatment process the mechanical properties of the En 353 steel are examined.
The results obtain under the experimental conditions of this work the following conclusion are drawn.
1. High hardness is obtained in carburizing 120 minutes at 920°C for En 353 steel.
2. Micro hardness values of AHT are found to be higher than BHT.
3. Wear resistance values AHT are found to be higher than BHT.
4. The specimen is having greater hardness on case sample than the core sample.
5. Pictorial view of case/core microstructure indicates that the heat treated specimen is martensite.
6. Thus life of material can be enhanced by the conventional heat treatment process.
Effect of Hardness and Wear Resistance on En 353 Steel by Heat Treatment
| IJMER | ISSN: 2249–6645 | www.ijmer.com | Vol. 4 | Iss. 4 | Apr. 2014 | 49 |
REFERENCES
[1] B. Selc¸uk, R. Ipek, M.B. Karamıs¸ A study on friction and wear behaviour of carburized, carbonitrided and borided
AISI 1020 and 5115 steels, Journal of Materials Processing Technology 141 (2003) 189–196
[2] R. Ipek, B. Selcuk, The dry wear profile of cam shaft, Journal of Materials Processing Technology 168 (2005) 373–
376
[3] M. Preciado, P.M. Bravo, J.M. Alegre, Effect of low temperature tempering prior cryogenic treatment on carburized
steels, Journal of Materials Processing Technology 176 (2006) 41–44
[4] B. Selc,uk, R. Ipek, M.B. Karamis,, V. Kuzucu, An investigation on surface properties of treated low carbon and
alloyed steels (boriding and carburizing) Journal of Materials Processing Technology103 (2000) 310-317
[5] Boyel, D.O. Northwood, R.bowers, X. Sun, P.bauerle, The effects of initinal microstructure and heat treatment on the
core mechanical properties of carburized automotive steel, material forum volume 32-2008
[6] Sandor, L. T.; Politori, I.; Gonçalves, C.S.; Uehara, A.Y.; Leal, C.V.; Sato, M.; Ferreira, Fatigue Crack Propagation
in Nine Steels, Type SAE 43XX, from 0.20 to 1.00 % C, for the Simulation of the Fatigue Behavior in a Carburized
Layer of the SAE 4320, Procedia Engineering 2 (2010) 735–742
[7] S.Ilaiyaveial, A. Venkatesan, The wear behavior of manganese phosphate coating applied toAISI D2 steel subjected
to different heat treatment processes Procedia Engineering 38 (2012) 1916-1924.
[8] J.D. Bressan, D.P. Daros, A.Sokolowski, R.A. Mesquita, C.A. Barbosa., Influence of hardness on wear resistance of
17-4 PH stainless steel evaluated by the pin-odisc testing, journal of material processing technology 205 (2008) 353-
359 .
[9] Michael A. Klecka, Ghatu Subhash, Nagaraj K. Arakere, Determination of sub surface hardness gradient in plstically
graded materials via surface indentation, Journal of Tribology 133 (2011) 1-5.
[10] Manoj V, K Gopinath and G Muthuveerappan Rolling contact fatigue studies on case carburized and cryogenic
treated en 353 gear material, International Symposium of Research Students on Material Science and Engineering 22
(2004) 1-8.
[11] Jason J. Spice and David K. Matlock Greg Fett, Optimized Carburized Steel Fatigue Performance as Assessed with
Gear and Modified Brugger Fatigue Tests, Society of Automotive Engineers, 1003 (2002) 1-9.

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Effect of Hardness and Wear Resistance on En 353 Steel by Heat Treatment

  • 1. International OPEN ACCESS Journal Of Modern Engineering Research (IJMER) | IJMER | ISSN: 2249–6645 | www.ijmer.com | Vol. 4 | Iss. 4 | Apr. 2014 | 46 | Effect of Hardness and Wear Resistance on En 353 Steel by Heat Treatment Navin A. Astunkar1 , A. S. Bonde2 1, 2 (M.Tech 2ndyr. (Prod.Engg), Department of Mechanical engineering, Yeshwantrao Chavan College of Engineering, Nagpur, India) I. INTRODUCTION En 353 steel has carbon content of 0.17% and the most common form of steel as it’s provides material properties that are acceptable for many automobile applications such as heavy duty gear, shaft, pinion, cam shafts, gudgeon pins. It is neither externally brittle nor ductile due to its lower carbon content and lower hardness. As the carbon content increases, the metal becomes harder and stronger. The process of heat treatment is carried out first by heating the metal and then cooling it in water or oil or air. The purpose of heat treatment is, to enhances the transformation of austenite to martensite i.e. (soft material to hard material), to change the grain size, to modify the structure of the material and relive the stress set up in the material. It is a one-time permanent treatment process and it is change the entire cross section of the material. The martensitic phase transformation is usually used to increase the hardness of the steels. The various heat treatment processes are annealing, normalizing, hardening, quenching and tempering. According to this work basically focus on carburizing; it is a process of improving carbon on case. These are done by exposing the part to carbon rich atmosphere at the high temperature (close to melting point) and allow diffusion to transfer the carbon atoms into the steel. So, these work concentrations go through gas carburizing which is widely used in mass production. The carburizing process does not harden the steel it only increases the carbon content. In heat treatments, both chemical composition and microstructure properties of a case can be changed. The aim of this paper is to examine the hardness, wear resistance and effect of microstructure of before and after heat treatment on En 353 steel. In heat treatment, the machined specimens are loaded in the gas carburizing chamber . Carburizing takes places at 920°C for 120 minutes then it is cooled by air and relaxing time is 75 minutes. The purpose of the relaxing time is to arrest the in and out of the carbon and it is followed by oil quenching at 820°C for 30 minutes, oil temperature is below 80°C then by tempering at 250°C for 90 minutes. In general, the untempered material structure has the high hardness and also more brittle. Hence the tempering process should be done to reduce the brittleness, to relieve the internal stress and to increase the toughness and ductility of the material. Nomenclature: AHT - After Heat Treatment BHT - Before Heat Treatment CHT - Conventional Heat Treatment HV - Vickers Hardness test II. Methodology After heat treatment, the specimens for structure investigations are conventionally prepared and etched using nital. The specimen with a diameter of 10 mm and a length of 50 mm are subjected to the Hardness test using the MH6 machine. The specimen with same size are subjected to wear testing using Pin-on-disc apparatus. The Leica DM 2500 M microscope is used to the observations of obtained structures before and after the heat treatment. Abstract: En 353 steel is an easily available and cheap material that is acceptable for heavy duty applications. Heat treatment on En 353 steel is improved the ductility, toughness, strength, hardness and relive internal stress in the material. Spectrographic method is used to analyze the composition of the alloy material. The experimental results of hardness and dry wear testing on pin-on-disc are done to get idea about heat treated En 353 steel. It is found that the hardness and wear resistance of the En 353 steel is improved after the heat treatment and the microstructure is changed from ferrite to martensite. Keywords: En 353 steel, Heat treatment, Hardness, Wear resistance, Pin-on-disc.
  • 2. Effect of Hardness and Wear Resistance on En 353 Steel by Heat Treatment | IJMER | ISSN: 2249–6645 | www.ijmer.com | Vol. 4 | Iss. 4 | Apr. 2014 | 47 | III. Results And Discussion 3.1 Chemical Analysis In order to ensure the material of the specimen is done with help of the optical emission spectroscope (OES). The result is obtain from the chemical analysis, carbon - 0.169 %, silicon - 0.234 %, manganese - 0.712 %, phosphorus - 0.015 %, sulphur - 0.030 %, Chromium – 1.617 %, Nickel - 1.574 %, molybdenum - 0.265 %, copper - 0.243%, Aluminum -0.034% and remaining percentage is iron respectively. A sample of ϕ 20 × 10 mm is polished using 60 grit papers and two sparks is introduced on the surface to find the chemical composition of the material. After ensuring the chemical composition, the raw material is machined according to the dimension for various tests. 3.2 Hardness Vickers hardness measurement is done on the specimen as per the IS 1501-2008 procedures by using Vickers hardness tester (MH6). Hardness measurement is made with 100 g loads, dwell time of 10 seconds and diamond indenter is used for test. The impression is done on the circular faces at the centre of the specimen. The hardness values are taken corresponding to the diagonal length of the indentation. Two samples (i.e. BHT and AHT) and four readings are taken from the each sample from case to core. The average value is calculated from four readings. The hardness values of BHT (case and core) samples are, 244.25 and 244.77 HV respectively. The hardness values of AHT (case and core) samples are 671 and 417.2 HV respectively. It is clearly noticed that the base material (BHT) has the low hardness. The AHT specimen has high hardness when compared to the BHT sample as shown in Fig. 1. Fig.1: Hardness Profile of En353 steel BHT and AHT 3.3 Wear Resistance wear resistance measurement is done on specimen by using dry wear on pin-on-disc testing in accordance with the ASIM G99-95standrds.the experimental results of wear carried out in laboratory gives values of initial and final weight, before and after wear of specimen. wear test carried out with the 40N load, 400rpm velocity, 40mm track radius, 1000m sliding distance for 10 minutes. the experimental result of wear test are analyzed by the Archad's (Hutchings,1995)or Rabinowicz's equation (rabinowicz,1965) that assess the wear rate and wear coefficient, relating the cumulative lost volume per sliding distance with the wear resistance through the linear equation as follows. Q( mm 3 m ) = V S = K FN H .........(equation 1) where, Q - wear rate V - cumulative lost volume S - sliding distance FN - normal load H - hardness (HRC) from Eq.(1), wear coefficient is given by, K = QH FN ...................(equation2) and in general wear coefficient is defined as 1/K.
  • 3. Effect of Hardness and Wear Resistance on En 353 Steel by Heat Treatment | IJMER | ISSN: 2249–6645 | www.ijmer.com | Vol. 4 | Iss. 4 | Apr. 2014 | 48 | Readings are taken from two samples average value calculated from readings. results obtain are shown in following tables. Sr. no. Specimen wear rate Q=V/S(mm3 /m) (*10-3 ) mean value Q wear coefficient(K) (*10-3 ) mean value(K) wear resistance(1/K) mean value(1/K) 1 BHT 8.81 8.81*10-3 5.1 5.1*10-3 196.1 196.1 2 8.81 5.1 196.1 1 AHT 1.23 1.23*10-3 9.04 9.04*10-4 1106.2 1106.2 2 1.23 9.04 1106.2 Table 1: results of wear resistance BHT and AHT 3.4 Microstructure The change of microstructure in the material due to conventional heat treatment (CHT) is the main reason for the improved mechanical properties. Hence the microstructure examination is carried out to find the structure of BHT and AHT. The samples are polished using SiC emery paper of grit 280 and velvet cloth using white kerosene as coolant. These samples are etched with nital and dried in air. Finally, microstructure examination is carried out using optical microscope. Fig. 2: spheroidized annealed structure at Mag. 1000X BHT Fig. 3: about 45% retained austenite in the matrix of martensite at Mag. 1000X AHT Fig. 2 show the microstructure of BHT is ferrite and spheroidized annealed structure with at the grain boundaries distributed throughout the structure and Fig. 3 show the microstructure of AHT is fine martensite, with retained austenite and traces of ferrite distributed throughout the structure. IV. Conclusion Before and after the heat treatment process the mechanical properties of the En 353 steel are examined. The results obtain under the experimental conditions of this work the following conclusion are drawn. 1. High hardness is obtained in carburizing 120 minutes at 920°C for En 353 steel. 2. Micro hardness values of AHT are found to be higher than BHT. 3. Wear resistance values AHT are found to be higher than BHT. 4. The specimen is having greater hardness on case sample than the core sample. 5. Pictorial view of case/core microstructure indicates that the heat treated specimen is martensite. 6. Thus life of material can be enhanced by the conventional heat treatment process.
  • 4. Effect of Hardness and Wear Resistance on En 353 Steel by Heat Treatment | IJMER | ISSN: 2249–6645 | www.ijmer.com | Vol. 4 | Iss. 4 | Apr. 2014 | 49 | REFERENCES [1] B. Selc¸uk, R. Ipek, M.B. Karamıs¸ A study on friction and wear behaviour of carburized, carbonitrided and borided AISI 1020 and 5115 steels, Journal of Materials Processing Technology 141 (2003) 189–196 [2] R. Ipek, B. Selcuk, The dry wear profile of cam shaft, Journal of Materials Processing Technology 168 (2005) 373– 376 [3] M. Preciado, P.M. Bravo, J.M. Alegre, Effect of low temperature tempering prior cryogenic treatment on carburized steels, Journal of Materials Processing Technology 176 (2006) 41–44 [4] B. Selc,uk, R. Ipek, M.B. Karamis,, V. Kuzucu, An investigation on surface properties of treated low carbon and alloyed steels (boriding and carburizing) Journal of Materials Processing Technology103 (2000) 310-317 [5] Boyel, D.O. Northwood, R.bowers, X. Sun, P.bauerle, The effects of initinal microstructure and heat treatment on the core mechanical properties of carburized automotive steel, material forum volume 32-2008 [6] Sandor, L. T.; Politori, I.; Gonçalves, C.S.; Uehara, A.Y.; Leal, C.V.; Sato, M.; Ferreira, Fatigue Crack Propagation in Nine Steels, Type SAE 43XX, from 0.20 to 1.00 % C, for the Simulation of the Fatigue Behavior in a Carburized Layer of the SAE 4320, Procedia Engineering 2 (2010) 735–742 [7] S.Ilaiyaveial, A. Venkatesan, The wear behavior of manganese phosphate coating applied toAISI D2 steel subjected to different heat treatment processes Procedia Engineering 38 (2012) 1916-1924. [8] J.D. Bressan, D.P. Daros, A.Sokolowski, R.A. Mesquita, C.A. Barbosa., Influence of hardness on wear resistance of 17-4 PH stainless steel evaluated by the pin-odisc testing, journal of material processing technology 205 (2008) 353- 359 . [9] Michael A. Klecka, Ghatu Subhash, Nagaraj K. Arakere, Determination of sub surface hardness gradient in plstically graded materials via surface indentation, Journal of Tribology 133 (2011) 1-5. [10] Manoj V, K Gopinath and G Muthuveerappan Rolling contact fatigue studies on case carburized and cryogenic treated en 353 gear material, International Symposium of Research Students on Material Science and Engineering 22 (2004) 1-8. [11] Jason J. Spice and David K. Matlock Greg Fett, Optimized Carburized Steel Fatigue Performance as Assessed with Gear and Modified Brugger Fatigue Tests, Society of Automotive Engineers, 1003 (2002) 1-9.