The document summarizes a study that measured and compared the flexural strength of 10 veneering ceramics for zirconia frameworks and 3 veneering ceramics for metal-ceramic restorations. Three types of flexural strength tests were used: three-point flexure, four-point flexure, and biaxial flexure. For the zirconia ceramics, three-point flexure strengths were similar without differences, four-point flexure identified 5 strength groups, and biaxial flexure found 3 groups. One metal-ceramic ceramic had significantly higher strengths than all others. Four-point flexure showed the greatest discrimination between materials. In general,
It is a motorized, mechanical unit. The speed is adjusted so that the load increase on the specimen is between 4 to 6 kg/sec. A flexure test attachment for keeping the object in position is also supplied. This consists of two rollers 10mm. diameter and spaced 100mm apart, and a third roller of the same diameter equidistant from the first two and for transmitting the applied load to the opposite face of the prism.
It is a motorized, mechanical unit. The speed is adjusted so that the load increase on the specimen is between 4 to 6 kg/sec. A flexure test attachment for keeping the object in position is also supplied. This consists of two rollers 10mm. diameter and spaced 100mm apart, and a third roller of the same diameter equidistant from the first two and for transmitting the applied load to the opposite face of the prism.
Tensile, Impact and Hardness Testing of Mild SteelGulfam Hussain
The main purpose of this report is to study the mechanical properties and
failure mode of mild steel. Three types of standard tests i.e. tensile test, impact
test, and hardness test were conducted on the standard specimens of mild steel.
From the tests, results were obtained; Tensile strength, Impact strength, and
hardness were calculated. It was observed that Tensile Strength, Impact Strength
and Hardness of MS specimen were 1450.833 N/mm², 29.5 J & 59.25 HRB.
In the material testing laboratory, a Charpy impact test was performed on three different types (hot,cold,and steel alloy)of steels testing each variety at four different temperatures (32°C(RT), 100°C,0°C and -22°C ). From results (shown below), we determined that the a transition is from ductile failures to brittle failures
This presentation is for mechanical engineering/ civil engineering students to help them understand the different type of destructive mechanical testing of materials. The tensile testing, hardness, impact test procedures are explained in detail.
Tensile testing is a fundamental materials science test in which a sample is subjected to a controlled tension until failure.
This test is mainly used to select a material for an application, for quality control, and to predict how a material will react under other types of forces.
Welcome to International Journal of Engineering Research and Development (IJERD)IJERD Editor
journal publishing, how to publish research paper, Call For research paper, international journal, publishing a paper, IJERD, journal of science and technology, how to get a research paper published, publishing a paper, publishing of journal, publishing of research paper, reserach and review articles, IJERD Journal, How to publish your research paper, publish research paper, open access engineering journal, Engineering journal, Mathemetics journal, Physics journal, Chemistry journal, Computer Engineering, Computer Science journal, how to submit your paper, peer reviw journal, indexed journal, reserach and review articles, engineering journal, www.ijerd.com, research journals,
yahoo journals, bing journals, International Journal of Engineering Research and Development, google journals, hard copy of journal
Tensile, Impact and Hardness Testing of Mild SteelGulfam Hussain
The main purpose of this report is to study the mechanical properties and
failure mode of mild steel. Three types of standard tests i.e. tensile test, impact
test, and hardness test were conducted on the standard specimens of mild steel.
From the tests, results were obtained; Tensile strength, Impact strength, and
hardness were calculated. It was observed that Tensile Strength, Impact Strength
and Hardness of MS specimen were 1450.833 N/mm², 29.5 J & 59.25 HRB.
In the material testing laboratory, a Charpy impact test was performed on three different types (hot,cold,and steel alloy)of steels testing each variety at four different temperatures (32°C(RT), 100°C,0°C and -22°C ). From results (shown below), we determined that the a transition is from ductile failures to brittle failures
This presentation is for mechanical engineering/ civil engineering students to help them understand the different type of destructive mechanical testing of materials. The tensile testing, hardness, impact test procedures are explained in detail.
Tensile testing is a fundamental materials science test in which a sample is subjected to a controlled tension until failure.
This test is mainly used to select a material for an application, for quality control, and to predict how a material will react under other types of forces.
Welcome to International Journal of Engineering Research and Development (IJERD)IJERD Editor
journal publishing, how to publish research paper, Call For research paper, international journal, publishing a paper, IJERD, journal of science and technology, how to get a research paper published, publishing a paper, publishing of journal, publishing of research paper, reserach and review articles, IJERD Journal, How to publish your research paper, publish research paper, open access engineering journal, Engineering journal, Mathemetics journal, Physics journal, Chemistry journal, Computer Engineering, Computer Science journal, how to submit your paper, peer reviw journal, indexed journal, reserach and review articles, engineering journal, www.ijerd.com, research journals,
yahoo journals, bing journals, International Journal of Engineering Research and Development, google journals, hard copy of journal
Prepared by madam rafia firdous. She is a lecturer and instructor in subject of Plain and Reinforcement concrete at University of South Asia LAHORE,PAKISTAN.
Physical properties of dental materials /certified fixed orthodontic courses...Indian dental academy
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Class on "Porcelain layering on zirconia coping"
Presentation by Prof. Dr. Marco Ferrari MD, DMD, PhD.
http://www.dentalevo.it/dentistry-materials/porcelain-layering-zirconia-coping/
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Friction stir welding was a promising welding technology from the same moment of its existence because of its easy use, being ecologically friendly processed and with no need for filler metal. The present paper discusses the investigate the mechanical properties in order to demonstrate the feasibility of friction stir welding for joining Al 6061 aluminum alloy welding was performed on pipe. The pipe sections, 30mm, and relatively thin walled 2, 3 and 4 mm. Wire welded as similar alloy joints using (FSW) process In order to investigate the effect of rotation speed 485,710, 910, 1120,1400 and 1800 RPM and travel speeds 4, 8 and 10 mm/min. On mechanical propertie.
This work also focuses on mathematic models such as regression analysis (RA) to predict the tensile strength, the percentage of elongation and hardness of friction stir welded 6061 aluminum alloy. The Tensile strength, the percentage of elongation and hardness of weld joints were predicted by taking the parameters Tool rotation speed, material thickness and travel speed as a function. The results obtained through regresion analysis The models have been proved to be successful in terms of agreement with experimental results ratio 94.6%.
Forming Limit Prediction of High Tensile Strength Steel using FEA SimulationIJERD Editor
Forming limit prediction of High Tensile Strength Steel (HTSS) sheet was carried out by using finite element analysis. JSTAMP/NV was used in the finite element analysis. Thickness of HTSS specimen was 1.0mm, and the length was 120mm.And the width was varied from 20mm to 80mm. Stretching test was operated by Erichsen test. In this study, the forming limit prediction method for predicting the localized necking before the fracture was proposed.FLD of HTSS was compared between experimental results and analytical results. Forming limit diagrams (FLD) obtained by FEAagreed well with the FLD obtained by experiment.
The Comparison of Properties of Tinplates during Uniaxial and Biaxial Stresstheijes
The majority of thin steel sheets is used to make of food covers, cans, capsules and other products, which are produced by metal forming. Concerning considerable changes in production of tinplates and still higher requests on their properties there is requirement to use such methods on their evaluation, which are able to determine especially mechanical and plastic properties of sheets quickly and with the low costs. Following of present know-how there were developed new testing methods, which correspond more to steel sheets stress during technological treatment (concerning their stress-strain state). In the contribution we deal with the comparison of properties of tinplates during uniaxial tensile test and biaxial tensile test.
International Journal of Engineering Research and Applications (IJERA) is an open access online peer reviewed international journal that publishes research and review articles in the fields of Computer Science, Neural Networks, Electrical Engineering, Software Engineering, Information Technology, Mechanical Engineering, Chemical Engineering, Plastic Engineering, Food Technology, Textile Engineering, Nano Technology & science, Power Electronics, Electronics & Communication Engineering, Computational mathematics, Image processing, Civil Engineering, Structural Engineering, Environmental Engineering, VLSI Testing & Low Power VLSI Design etc.
The purpose of the experimental work presented in this study is to study the effect
of concrete compressive strength and steel reinforcement ratio on capacity and
deflection of reinforced concrete two-way slabs. Three steel reinforcement ratios are
considered which are minimum, maximum and average of them in addition to two
concrete compressive strength
values of 20 and 30 MPa. The results from
experimental work show that increasing the reinforcing steel ratio leads to increase the
ultimate capacity of the slab in addition to decrease the maximum deflection. For slabs
with
= 20 MPa, increasing the reinforcing steel ratio from the minimum to the
maximum, i.e. 600 %, leads to increase ultimate capacity by about 156 % and decrease
maximum deflection by about 52 %. Wheras, For slabs with
= 30 MPa, increasing
the reinforcing steel ratio from the minimum to the maximum, i.e. 900 %, leads to
increase ultimate capacity by about 155 % and decrease maximum central deflection
by about 27 %. In addition, matmatical expresions for load-deflection relationships are
presented in the current study
SUGGESTING DEFLECTION EXPRESSIONS FOR RC 2-WAY SLABSIAEME Publication
The purpose of the experimental work presented in this study is to study the effect
of concrete compressive strength and steel reinforcement ratio on capacity and
deflection of reinforced concrete two-way slabs. Three steel reinforcement ratios are
considered which are minimum, maximum and average of them in addition to two
concrete compressive strength
values of 20 and 30 MPa. The results from
experimental work show that increasing the reinforcing steel ratio leads to increase the
ultimate capacity of the slab in addition to decrease the maximum deflection. For slabs
with
= 20 MPa, increasing the reinforcing steel ratio from the minimum to the
maximum, i.e. 600 %, leads to increase ultimate capacity by about 156 % and decrease
maximum deflection by about 52 %. Wheras, For slabs with
= 30 MPa, increasing
the reinforcing steel ratio from the minimum to the maximum, i.e. 900 %, leads to
increase ultimate capacity by about 155 % and decrease maximum central deflection
by about 27 %. In addition, matmatical expresions for load-deflection relationships are
presented in the current study.
Comparison of Fatigue Characteristic for AISI 1039 Steel with Surface Treatmentijceronline
Wear and fatigue resistance in steel components used in various industries can be improved by surface treatments. Coatings systems which are used for improving the mechanical properties, generally, decreased the components fatigue life due to micro cracks, that propagate through the substrate , it is possible to improve the fatigue resistance of a component by the application of shot peening treatment, whose compressive residual stresses delay or eliminate the initiation and propagation of fatigue cracks. The aim of this study is to obtain the fatigue limit of untreated, shot peened, and hard chromium coating of medium carbon steel AISI 1039 and comparison between them. Fatigue tests were carried out using small samples with 4 mm diameter, with hard chromium layer of (47.1) µm thick. Rotating-bending fatigue test was carried out on samples after shot peening with steel balls of about 20 minutes peening time. Experimental results showed that hard chromium electroplating decreased the fatigue life and fatigue limit in comparison with the uncoated steel. As the highest thickness for coating was 23µm. On the other hand, Shot peening Results indicated that the fatigue strengths of samples are increased and the highest fatigue limit was (298.566Mpa) after treated the samples by shot peening for 20 minutes.
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Flexural strengthofveneeringceramicsforzirconia
1. Flexural strength of veneering ceramics for zirconia
J. Fischer *, B. Stawarczyk, C.H.F. Ha¨mmerle
Clinic for Fixed and Removable Prosthodontics, Center for Dental and Oral Medicine, University of Zurich, Plattenstrasse 11,
CH-8032 Zurich, Switzerland
1. Introduction
Yttria-stabilized zirconia (Y-TZP) provides a sufficient
mechanical strength to be used in frameworks for all-ceramic
fixed partial dentures.1,2
For esthetical reasons, these frame-
works have to be veneered with an appropriate veneering
ceramic. In clinical application, the veneering ceramic
revealed to be the weakest link in such reconstructions.3–5
Chipping of the veneer is described to be the most frequent
reason for failure with a failure rate of 15.2% after a service
time of 35.1 Æ 13.8 months.5
Among other reasons failure of a veneer may be caused by
insufficient bond strength,6–8
excessive tensile stress due to a
thermal mismatch between veneer and framework9
or
excessive load due to premature contacts.10
The bond strength
was intensely investigated.9,11–13
It revealed to be in the range
of that measured with metal-ceramic systems. The tensile
stress in the veneering ceramic is established during cooling
after firing, when an unequal thermal contraction of both
layers happens. The coefficients of thermal expansion should
be adjusted in a way that during cooling a slight compression
of the veneering ceramic occurs to enhance its strength.14
In
j o u r n a l o f d e n t i s t r y 3 6 ( 2 0 0 8 ) 3 1 6 – 3 2 1
a r t i c l e i n f o
Article history:
Received 21 September 2007
Received in revised form
18 January 2008
Accepted 25 January 2008
Keywords:
Zirconia
Veneering ceramics
Three-point flexural strength
Four-point flexural strength
Biaxial flexural strength
a b s t r a c t
Objectives: The flexural strengths of veneering ceramics for zirconia were compared.
Methods: With 10 different veneering ceramics for zirconia (test group) and three different
veneering ceramics for the metal-ceramic technique (control group) three-point flexural
strength and biaxial flexural strength according to ISO 6872: 1995 as well as four-point
flexural strength according to EN 843-1: 2005 were measured (n = 10). Statistical analysis was
performed with one-way ANOVA and post hoc Scheffe´ test (SPSS, p < 0.05).
Results: For the test group, three-point flexural strength ranged between 77.8 Æ 8.7 and
106.6 Æ 12.5 MPa without any statistically significant differences, biaxial flexural strength
between 69.1 Æ 4.8 and 101.4 Æ 10.5 MPa with three homogeneous groups and four-point
flexural strength between 59.5 Æ 6.2 and 89.2 Æ 9.5 MPa with five homogeneous groups. The
control group showed three-point flexural strength values ranging from 93.3 Æ 13.5 to
149.4 Æ 20.5 MPa, biaxial flexural strength values from 93.4 Æ 10.0 to 141.2 Æ 11.6 MPa,
and four-point flexural strength values from 82.7 Æ 8.5 to 116.9 Æ 9.8 MPa. In every case,
the results of the four-point flexure test were significantly lower than those obtained in the
three-point flexure test. The three-point flexural strengths of the test group are similar to
those of two ceramics of the control group. The flexural strength of one ceramic of the
control group significantly exceeded the strengths of all other ceramics investigated.
Conclusion: Three-point flexural strength values of veneering ceramics for zirconia are
similar to those of veneering ceramics for the metal-ceramic technique. The four-point
flexure test among all three tests showed highest discrimination between the different
ceramic materials.
# 2008 Elsevier Ltd. All rights reserved.
* Corresponding author. Tel.: +41 44 634 33 67; fax: +41 44 634 43 05.
E-mail address: jens.fischer@zzmk.uzh.ch (J. Fischer).
available at www.sciencedirect.com
journal homepage: www.intl.elsevierhealth.com/journals/jden
0300-5712/$ – see front matter # 2008 Elsevier Ltd. All rights reserved.
doi:10.1016/j.jdent.2008.01.017
2. metal-ceramic systems, excessive stress to some extent may
be compensated by thermal creep of the alloy, i.e. plastic flow,
especially if a high gold alloy is used.15,16
In all-ceramic
systems, the ceramic framework is rigid and does not yield to
the stress induced by a thermal mismatch to that extent.
Therefore, the risk of destructive stress formed in the veneer
layer might be higher in all-ceramic systems and thus would
require a high mechanical strength for veneering materials for
all-ceramic systems. Hence, the strength of the veneering
ceramic is a crucial parameter for the clinical long-term
success. For metal-ceramic restorations failure rates after 5
years, caused by chipping of the veneer are reported to be 0.4%
for single crowns17
and 2.9% for fixed partial dentures.18
Hence, veneering ceramics for zirconia should at least show a
flexural strength, which is similar to that of veneering
ceramics for alloys.
Flexural strength can be measured in a three-point flexure
test, a four-point flexure test or a biaxial flexure test. In all
cases, static load is applied until failure. In the three-point
flexure test, a non-uniform central stress field is created, while
in the four-point flexure test the stress field is uniform
between the two loading pistons. In the biaxial flexure test,
where a disk is loaded in the center, the probability of edge
failures is reduced.19
The results of the three-point flexure test
and the four-point flexure test are correlated.20
Lower values
were found for the four-point flexure test compared to both
other tests, but the relation between three-point flexure test
and biaxial flexure test was not uniform for all ceramics
investigated.
To the knowledge of the investigators, no systematic
investigation of the flexural strength of veneering ceramics for
zirconia is available.
Aim of the present study therefore was to measure the
flexural strength of a variety of commercially available
veneering ceramics for zirconia to provide a comprehensive
analysis of the mechanical strength of these products.
2. Materials and methods
Three-point flexural strength, four-point flexural strength and
biaxial flexural strength of 10 different veneering ceramics for
zirconia according to Table 1 were measured. As control three
ceramics for the metal-ceramic technique were additionally
included (Imagine Reflex, IPS d.sign, and VM13).
Specimenswere prepared according to ISO 6872: 1995 (three-
point and biaxial flexural strength) or DIN EN 843-1: 2005 (four-
point flexural strength). Separable steel molds were used to
layer the ceramic. Ceramic powder and an appropriate amount
of the respective liquid were mixed to form a sticky slurry,
which was filled into the mold. Excess liquid was sucked off
with a tissue. Only dentin was layered. Firing of the specimens
was performed in a ceramic oven (Austromat D4, Dekema,
Freilassing, Germany) according to therecommendations of the
manufacturers (Table 2). The specimens were placed on a tray,
which was covered with a layer of silica powder. After firing, the
specimens were ground to the final dimensions using SiC discs
P220, P500 and P1200 according to ISO 6344-1: 1998. As required
by the standards the two faces of the specimens did not differ
more than 0.05 mm in parallelism. Ten specimens were
prepared for each series. The dimensions of the samples were
measured to the next 0.01 mm. The specimens were placed in
the appropriate sample holder and loaded in a universal testing
machine (Z010, Zwick, Ulm, Germany) with a cross-head speed
of 1 mm/min until failure. The flexural strength was calculated
as mean of the 10 results.
Statistical analysis between different test methods and
between the ceramics were analyzed with one-way ANOVA,
Table 1 – Veneering ceramics used in the investigation
Veneering ceramics for the metal-ceramic technique are highlighted.
j o u r n a l o f d e n t i s t r y 3 6 ( 2 0 0 8 ) 3 1 6 – 3 2 1 317
3. followed by a post hoc Scheffe´ test (SPSS Inc., Chicago, IL, USA;
p < 0.05).
2.1. Three-point flexural strength
Specimens with a final size of 4 Æ 0.25 mm in width,
1.2 Æ 0.2 mm in thickness and a length of at least 20 mm
were produced.
The sample holder had a span between the two bearers of
15 mm. Supports and loading piston were steel knife edges,
rounded to a radius of 0.8 mm. Load was applied at the
midpoint of the specimens. The flexural strength was
calculated according to the equation
s ¼
3Fl
2bh2
where s is the maximum center tensile stress (MPa), F the load
at fracture (N), l the distance of the two supports (mm), b the
width of the specimen (mm) and h is the height of the speci-
men (mm).
2.2. Four-point flexural strength
Specimens with a final size of 2.5 Æ 0.25 mm in width,
2.0 Æ 0.2 mm in thickness and a length of at least 25 mm
were used.
The sample holder had a span between the two bearers of
20 mm. The distance between the two loading pistons was
10 mm. Supports and both loading pistons were steel knife
edges, rounded to a radius of 1.25 mm. The flexural strength
was calculated according to the equation
s ¼
3Fd
2bh2
where s is the maximum center tensile stress (MPa), F the load
at fracture (N), d the difference in the distance of the two
supports and the distance of the two loading pistons (mm), b
the width of the specimen (mm) and h is the height of the
specimen (mm).
2.3. Biaxial flexural strength
Disk-shaped specimens, 12 Æ 0.2 mm in diameter and
1.2 Æ 0.2 mm in height were prepared. The specimens were
tested in a biaxial flexure jig with a piston on three balls design
as described in the standard. The balls had a diameter of
3.2 mm and were arranged in an angle of 1208 to each other on
a circle of 10 mm in diameter. Loading at 1 mm/min was
applied in the center of the specimen with a 1.5 mm diameter
steel rod. Calculation of the biaxial flexural strength was
performed with the following equation:
s ¼
À0:2387FðX À YÞ
d2
where s is the maximum center tensile stress (MPa), F the load
at fracture (N), X = (1 + n) ln(r2/r3)2
+ [(1 À n)/2] (r2/r3)2
and
Y = (1 + n)[ln(r1/r3)2
] + (1 À n)(r2/r3)2
.
In which, n is the Poisson’s ratio, r1 the radius of the support
circle (mm), r2 the radius of the loaded area (mm), r3 the radius
of the specimen (mm) and d is the specimens thickness at the
fracture origin (mm).
Poisson’s ratio was taken as 0.25 for all ceramics according
to the recommendation in the standard.
3. Results
Means and respective standard deviations for three-point
flexural strength, four-point flexural strength and biaxial
flexural strength are shown in Table 3 and Fig. 1. For every
ceramic the values of the three-point flexural strength were
significantly higher than those of the four-point flexural
Table 2 – Firing schedules of the veneering ceramics
Vacuum was used until the final temperature was reached. Veneering ceramics for the metal-ceramic technique are highlighted.
j o u r n a l o f d e n t i s t r y 3 6 ( 2 0 0 8 ) 3 1 6 – 3 2 1318
4. strength. Statistical significant differences were found
between three-point flexural strength and biaxial flexural
strength for the following ceramics: Cerabien ZR, Initial ZR and
Vintage ZR, while significant differences between biaxial
flexural strength and four-point flexural strength occurred
with Cerabien ZR, Lava Ceram, Rondo Zirconia, Triceram,
Zirox and VM13. In Table 3, the homogeneous groups with no
statistically significant differences between the different
ceramics are marked. In the three-point flexure test, the
strength values of the veneering ceramics for zirconia showed
no statistically significant difference (group a). In the biaxial
flexure test, three different homogeneous groups (c–e) of
veneering ceramics for zirconia can be distinguished and in
the four-point flexure test there were found five different
groups (g, h, j, k, l) by statistical analysis. In the three-point
flexure test, the values of the veneering ceramics for zirconia
were similar to those of Reflex and IPS d.sign. In the biaxial
flexure test, the flexure strengths of Cerabien ZR and Vintage
ZR and in the four-point flexure test the flexure strengths of
Cerabien ZR, Vintage ZR, IPS e.max, Zirox, Lava Ceram and
Initial ZR were significantly lower than those of the veneering
ceramics for the metal-ceramic technique. The flexural
strength of VM13 in every case significantly exceeded those
of the other ceramics investigated.
Table 3 – Flexural strength values of the veneering ceramics (mean W S.D.), arranged in ascending order of the values for
the four-point flexural strength
Identical letters following the values indicate homogeneous groups. Veneering ceramics for the metal-ceramic technique are highlighted.
Fig. 1 – Flexural strength values and standard deviations of veneering ceramics.
j o u r n a l o f d e n t i s t r y 3 6 ( 2 0 0 8 ) 3 1 6 – 3 2 1 319
5. Linear regression analysis revealed the following coeffi-
cients of determination:
three-point/four-point: R2
= 0.89, s3-pt = 1.24s4-pt;
three-point/biaxial: R2
= 0.90, s3-pt = 1.07sbiax;
biaxial/four-point: R2
= 0.92, sbiax = 1.16s4-pt.
4. Discussion
The results of this study revealed that the three-point flexural
strength values of veneering ceramics for zirconia are in the
same range as those of veneering ceramics for metal-ceramic
systems. The regression analysis showed that the results of all
three test methods are correlated. However, the three-point
flexure test yielded the highest values. Compared to the four-
point flexure test this difference was significant for all
materials, compared to the biaxial flexure test only for three
out of 13 ceramics. The biaxial flexure test in turn showed
significantly higher values compared to the four-point test
results for six out of 13 ceramics. But in general, it can be
concluded that all three test designs provided the same
relative order of the results. The four-point flexure test
provided highest discrimination between the different cera-
mic materials, resulting in statistically significant differences
between some veneering ceramics for zirconia and the
control.
Similar biaxial flexural strength results as obtained in the
present investigation are reported for leucite reinforced
ceramics.21–23
IPS d.sign showed a biaxial flexural strength
of 98.19 Æ 5.71 MPa,23
which is comparable to the value
measured in the present investigation (95.5 Æ 7.8 MPa). A
further investigation employed biaxial flexure test and four-
point flexure test.24
Comparably low values for a body and an
opaque ceramic for the metal-ceramic technique were found,
but the relation between the results of both test methods was
the same as in the present study. In another investigation, it is
reported that IPS d.sign had a flexural strength in the three-
point, four-point and biaxial flexure strength test of
124.3 Æ 12.4, 77.9 Æ 7.9 and 114.3 Æ 13.3 MPa, respectively.20
These values are quite high compared to the present
investigation. Nevertheless, the authors also found a correla-
tion between the three test methods, which was in the same
order as in the present study. In a further study, it is reported
that the three-point flexure strength of alumina was higher
than that obtained in a biaxial flexure strength while this value
was higher than the results obtained in a four-point flexure
test, which again is in accordance with the present findings.25
The difference in the results of the three different test
designs may be explained as follows. Flexural strength
obtained with the four-point flexure test is generally lower
because the probability to have a surface crack between the
two loading pistons is higher than in the more limited area
beneath the loading piston of a three-point flexure test. In
the biaxial flexure test, the force is applied in the center of
the specimen. Defects at the edges, which most probably
lead to an early failure, are less effective. Nevertheless, the
probability of a crack in the vicinity of the loading piston is
higher than in the three-point flexure test because the
loaded area is larger.19
Consistent with Ban and Anusavice,24
it can be concluded that for screening tests, for instance,
during the development of ceramics, the biaxial flexure test
is most appropriate because preparation of the samples is
easy, compared to the three- and four-point flexure tests.
But, according to the present results, when a scientific
approach is intended, the four-point flexure test should be
preferred.
The fact that the strength of veneering ceramics for
zirconia is in the same order as that of veneering materials
for metal-ceramics could be interpreted in the sense that the
strength of the veneering ceramics are not the limiting factor
for the clinical long-term success of zirconia restorations.
Nevertheless, compared to metal-ceramics excessive chipping
is observed in clinical studies with zirconia restorations.3–5
To
explain this effect, two aspects have to be considered. One
aspect is the stress, built during cooling after firing of the
veneering ceramic. In metal-ceramic systems, this stress may
be at least partially relaxed by an elastic or plastic deformation
of the substructure.15
Especially, high-gold alloys show a low
sag-resistance.16
A zirconia substructure in contrast is rigid,
which leads to higher stress formation. Hence, compared to
metal-ceramics a higher flexural strength of the veneering
ceramic is favorable to provide a high reliability of the veneer.
The present investigation has shown that, depending on the
test method and the brand, the flexural strength of veneering
ceramics for zirconia is rather similar or even lower than that
of veneering ceramics for the metal-ceramic technique.
Therefore, the effort to improve the veneering ceramics for
zirconia should be directed to the optimal adjustment of the
thermal expansion and the increase of mechanical strength,
which is in accordance with the appraisal of other authors.26
A
second point is the fact that in the oral cavity water exposure
may cause hydrolysis of the Si–O–Si bonds, thus affecting the
mechanical properties of the ceramic. Flexural strength values
are obtained at ambient laboratory conditions. The increased
failure rate of veneering ceramics for zirconia under humid
conditions in the oral cavity may be attributed to a different
chemical composition compared to ceramics for the metal-
ceramic technique, resulting in a higher susceptibility for
hydrolytic attack. Further investigations are scheduled to test
this hypothesis.
5. Conclusion
Within the limitations of this in vitro study, the following
conclusions can be drawn:
(1) Four-point flexural strength values of all materials tested
were significantly lower than those obtained with the
three-point flexure test. The biaxial flexural strength in
general ranged between the four-point flexural strength
and the three-point flexural strength.
(2) Strength values of veneering ceramics for zirconia are
similar to those of veneering ceramics for the metal-
ceramic technique.
Acknowledgement
The materials were kindly provided by the respective
manufacturers.
j o u r n a l o f d e n t i s t r y 3 6 ( 2 0 0 8 ) 3 1 6 – 3 2 1320
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j o u r n a l o f d e n t i s t r y 3 6 ( 2 0 0 8 ) 3 1 6 – 3 2 1 321
7. Abstract:
Objectives: The flexural strengths of veneering ceramics for zirconia were compared.Methods: With 10 different
veneering ceramics for zirconia (test group) and three different veneering ceramics for the metal-ceramic technique
(control group) three-point flexural strength and biaxial flexural strength according to ISO 6872: 1995 as well as
four-point flexural strength according to EN 843-1: 2005 were measured (n = 10). Statistical analysis was
performed with one-way ANOVA and post hoc Scheffe´ test (SPSS, p < 0.05).
Results: For the test group, three-point flexural strength ranged between 77.8 +/- 8.7 and 106.6 +/- 12.5 MPa without
any statistically significant differences, biaxial flexural strength between 69.1 +/- 4.8 and 101.4 +/- 10.5 MPa with three
homogeneous groups and four-point
flexural strength between 59.5 +/- 6.2 and 89.2 +/- 9.5 MPa with five homogeneous groups. The control group showed
three-point flexural strength values ranging from 93.3 +/- 13.5 to 149.4 +/- 20.5 MPa, biaxial flexural strength values
from 93.4 +/- 10.0 to 141.2 +/- 11.6 MPa,
and four-point flexural strength values from 82.7 +/- 8.5 to 116.9 +/- 9.8 MPa. In every case, the results of the four-point
flexure test were significantly lower than those obtained in the three-point flexure test. The three-point flexural strengths
of the test group are similar to those of two ceramics of the control group. The flexural strength of one ceramic of the
control group significantly exceeded the strengths of all other ceramics investigated.
Conclusion: Three-point flexural strength values of veneering ceramics for zirconia are
similar to those of veneering ceramics for the metal-ceramic technique. The four-point
flexure test among all three tests showed highest discrimination between the different
ceramic materials.