There is an ongoing requirement for a clinically relevant, noninvasive technique to monitor the integrity of percutaneous implants used for dental restorations, bone-anchored hearing aids, and to retain extra-oral prostheses (ear, eye, nose, etc). Because of the limitations of conventional diagnostic techniques (CT, MRI), mechanical techniques that measure the dynamic response of the implant-abutment system are being developed. This paper documents a finite element analysis that simulates a transient response to mechanical impact testing using contact elements. The detailed model allows for a specific interface between the implant and bone and characterizes potential clinical situations including loss of bone margin height, loss of osseointegration, and development of a soft connective tissue layer at the bone-implant interface. The results also show that the expected difference in interface stiffness between soft connective tissue and osseointegrated bone will cause easily measurable changes in the response of the implant/abutment system. With respect to the loss of bone margin height, changes in the order of 0.2mm should be detectable, suggesting that this technique is at least as sensitive as radiography. A partial loss of osseointegration, while not being as readily evident as a bone margin loss, would still be detectable for losses as small as 0.5mm.

1.
Brånemark
,
P. I.
,
Zarb
,
G.
, and
Albrektsson
,
T.
, 1985,
Tissue-Integrated Prostheses: Osseointegration in Clinical Dentistry
,
Quintessence
,
Chicago, IL
, p.
11
.
2.
Adell
,
R.
,
Lekholm
,
U.
,
Rockler
,
B.
, and
Brånemark
,
P. I.
, 1981, “
A 15-Year Study of Osseointegrated Implants in the Treatment of Edentulous Jaw
,”
Int. J. Oral Surg.
0300-9785,
6
, pp.
387
416
.
3.
Albrektsson
,
T.
,
Zarb
,
G.
,
Worthington
,
P.
, and
Eriksson
,
A. R.
, 1986, “
The Long-Term Efficacy of Currently Used Dental Implants. A Review and Proposed Criteria for Success
,”
Int. J. Oral Maxillofac Implants
0882-2786,
1
(
1
), pp.
11
25
.
4.
Sundén
,
S.
,
Gröndahl
,
K.
, and
Gröndahl
,
H.-G.
, 1995, “
Accuracy and Precision in the Radiographic Diagnosis of Clinical Instability in Brånemark Dental Implants
,”
Clin. Oral Implants Res.
0905-7161,
6
, pp.
220
226
.
5.
Elias
,
J.
,
Brunski
,
J.
, and
Scarton
,
H.
, 1996, “
A Dynamic Modal Testing Technique for Noninvasive Assessment of Bone-Dental Implant Interfaces
,”
Int. J. Oral Maxillofac Implants
0882-2786,
11
(
6
), pp.
728
734
.
6.
Carlsson
,
L.
,
Röstlund
,
T.
,
Albrektsson
,
B.
, and
Albrektsson
,
T.
, 1988, “
Removal Torques for Polished and Rough Titanium Implants
,”
Int. J. Oral Maxillofac Implants
0882-2786,
3
(
1
), pp.
21
24
.
7.
Duyck
,
J.
,
Rønold
,
H. J.
,
van Oosterwyck
,
H.
,
Naert
,
I.
,
Vander Sloten
,
J.
, and
Ellingsen
,
J. E.
, 2001, “
The Influence of Static and Dynamic Loading on Marginal Bone Reactions Around Osseointegrated Implants: An Animal Experimental Study
,”
Biom Z.
0006-3452,
12
, pp.
207
218
.
8.
Faulkner
,
G.
,
Wolfaardt
,
J. F.
, and
Chan
,
A.
, 1999, “
Measuring Abutment/Implant Joint Integrity with the Periotest Instrument
,”
Int. J. Oral Maxillofac Implants
0882-2786,
14
, pp.
681
688
.
9.
Meredith
,
N.
,
Book
,
K.
,
Friberg
,
B.
,
Jemt
,
T.
, and
Sennerby
,
L.
, 1997, “
Resonance Frequency Measurements of Implant Stability In Vivo
,”
Clin. Oral Implants Res.
0905-7161,
8
, pp.
226
233
.
10.
Meredith
,
N.
,
Alleyne
,
D.
, and
Cawley
,
P.
, 1996, “
Quantitative Determination of the Stability of the Implant-Tissue Interface Using Resonance Frequency Analysis
,”
Clin. Oral Implants Res.
0905-7161,
7
, pp.
261
267
.
11.
Nedir
,
R.
,
Bischof
,
M.
,
Szmukler-Moncler
,
S.
,
Bernard
,
J. P.
, and
Samson
,
J.
, 2004, “
Predicting Osseointegration by Means of Implant Primary Stability
,”
Clin. Oral Implants Res.
0905-7161,
15
, pp.
520
528
.
12.
Bischof
,
M.
,
Nedir
,
R.
,
Szmukler-Moncler
,
S.
,
Bernard
,
J. P.
, and
Samson
,
J.
, 2004, “
Implant Stability Measurement of Delayed and Immediately Loaded Implants During Healing
,”
Clin. Oral Implants Res.
0905-7161,
15
, pp.
529
539
.
13.
Glauser
,
R.
,
Sennerby
,
L.
,
Meredith
,
N.
,
Rée
,
A.
,
Lundgren
,
A.
,
Gottlow
,
J.
, and
Hämmerle
,
C.
, 2004, “
Resonance Frequency Analysis of Implants Subjected to Immediate or Early Function Occlusal Loading
,”
Clin. Oral Implants Res.
0905-7161,
15
, pp.
428
434
.
14.
Meredith
,
N.
, 1997, “
On The Clinical Measurement of Implant Stability and Osseointegration
,” Department of Biomaterials/Handicap Research, Institute for Surgical Sciences, Göteborg University, Göteborg, Sweden.
15.
Huang
,
H.-M.
,
Chiu
,
C.-L.
,
Yeh
,
C.-Y.
,
Lin
,
C.-T.
,
Lin
,
L.-H.
, and
Lee
,
S.-Y.
, 2003, “
Early Detection of Implant Healing Process Using Resonance Frequency Analysis
,”
Clin. Oral Implants Res.
0905-7161,
14
, pp.
437
443
.
16.
Lukas
,
D.
, and
Schulte
,
W.
, 1990, “
Periotest-A Dynamic Procedure for the Diagnosis of the Human Periodontium
,”
Clin. Phys. Physiol. Meas.
0143-0815,
11
, pp.
65
75
.
17.
Schulte
,
W.
, and
Lukas
,
D.
, 1993, “
Periotest to Monitor Osseointegration and to Check the Occlusion in Oral Implantology
,”
J. Oral Implantol
0160-6972,
19
, pp.
23
32
.
18.
van Steenberghe
,
D.
,
Tricio
,
J.
,
Naert
,
I.
, and
Nys
,
M.
, 1995, “
Damping Characteristics of Bone-to-Implant Interfaces; A Clinical Study With the Periotest Device
,”
Clin. Oral Implants Res.
0905-7161,
6
, pp.
31
39
.
19.
Olivé
,
J.
, and
Aparicio
,
C.
, 1990, “
The Periotest Method as a Measure of Osseointegrated Oral Implant Stability
,”
Int. J. Oral Maxillofac Implants
0882-2786,
5
(
4
), pp.
390
400
.
20.
Carr
,
A. B.
,
Papzoglou
,
E.
, and
Larsen
,
P.
, 1995, “
The Relationship of Periotest Values, Biomaterials, and Torque to Failure in Adult Baboons
,”
Int. J. Prosthodont
0893-2174,
8
, pp.
15
20
.
21.
Faulkner
,
G.
,
Giannitsios
,
D.
,
Lipsett
,
W.
, and
Wolfaardt
,
J.
, 2001, “
The Use and Abuse of the Periotest for 2-Piece Implant/Abutment Systems
,”
Int. J. Oral Maxillofac Implants
0882-2786,
16
(
4
), pp.
486
494
.
22.
Elias
,
J.
,
Brunski
,
B.
, and
Scarton
,
H.
, 1996, “
A Dynamic Modal Testing Technique for Noninvasive Assessment of Bone-Dental Implant Interfaces
,”
Int. J. Oral Maxillofac Implants
0882-2786,
11
, pp.
728
734
.
23.
Huang
,
H.-M.
,
Lee
,
S.-Y.
,
Yeh
,
C.-Y.
, and
Lin
,
C.-T.
, 2002, “
Resonance Frequency Assessment of Dental Implant Stability with Various Bone Qualities: A Numerical Approach
,”
Clin. Oral Implants Res.
0905-7161,
13
, pp.
65
74
.
24.
ANSYS Inc.
, Canonsburb, PA, 2003,
ANSYS 7.1 Documentation—Element Reference—Part I. Element Library—SOLID92
.
25.
ANSYS Inc.
, Canonsburb, PA, 2003,
ANSYS 7.1 Documentation—Element Reference—Part I. Element Library—CONTA174
.
26.
ANSYS Inc.
, Canonsburb, PA, 2003,
ANSYS 7.1 Documentation—Element Reference—Part I. Element Library—TARGE170
.
27.
Brunski
,
B.
, 1999, “
In Vivo Bone Response to Biomechanical Loading at the Bone/Dental-Implant Interface
,”
Adv. Dent. Res.
0895-9374,
13
, pp.
99
119
.
28.
Thomson
,
W.
, 1981,
Theory of Vibration with Applications
,
Prentice-Hall
,
Englewood Cliffs, NJ
, pp.
218
221
.
29.
Blevins
,
R.
, 1979,
Formulas for Natural Frequency and Mode Shape
,
Krieger
,
Malabar, FL
, p.
158
.
You do not currently have access to this content.