The total cavo pulmonary connection, or TCPC, is a surgical correction to congenital heart defects. The geometry of this connection has been shown to determine the fluid power loss as well as the distribution of hepatic fluid that enters through the inferior vena cava. In vitro studies were performed to measure the power loss and hepatic fluid distribution in models of the TCPC with four different geometries. It was found that a zero offset straight geometry provided good hepatic fluid distribution but large power loss. A zero offset flared geometry provided low power loss but poor hepatic fluid distribution. The optimal geometry from those tested was found to be the zero offset cowl geometry whereby an enlargement was made on one side of the inferior and superior vena cava. So long as the cowl was directed toward the pulmonary artery of lowest flow rate, low power loss and relatively good distribution of hepatic flow could be obtained.

1.
Fontan
,
F.
, and
Baudet
,
E.
,
1971
, “
Surgical Repair of Tricuspid Atresia
,”
Thorax
,
26
, pp.
240
248
.
2.
de Laval
,
M. R.
,
Kilner
,
P.
,
Gewillig
,
M.
, and
Bull
,
C.
,
1988
, “
Total Cavo-Pulmonary Connection: A Logical Alternative to Atrialpulmonary Connection for Complex Fontan Operations
,”
J. Thorac. Cardiovasc. Surg.
,
96
, pp.
682
695
.
3.
Stein
,
D. G.
,
Laks
,
H.
,
Drinkwater
,
D. C.
,
Permut
,
L. C.
,
Louie
,
H. W.
,
Pearl
,
J. M.
,
George
,
B. L.
, and
Williams
,
R. G.
,
1991
, “
Results of Total Cavopulmonary Connection in the Treatment of Patients With a Functional Single Ventricle
,”
J. Thorac. Cardiovasc. Surg.
,
102
, pp.
280
287
.
4.
Puga
,
F. J.
,
Chiavarelli
,
M.
, and
Hagler
,
D. J.
,
1987
, “
Modifications of the Fontan Operation Applicable to Patients With Left Atrioventricular Valve Atresia or Single Atrioventricular Valve
,”
Circulation
,
76
, (Pt 2), pp.
53
60
.
5.
Sharma
,
S.
,
Goudy
,
S.
,
Walker
,
P.
,
Panchal
,
S.
,
Ensley
,
A.
,
Kanter
,
K.
,
Tam
,
V.
,
Fyfe
,
D.
, and
Yoganathan
,
A.
,
1996
, “
In Vitro Flow Experiments for Determination of Optimal Geometry of Total Cavopulmonary Connection for Surgical Repair of Children With Functional Single Ventricle
,”
J. Am. Coll. Cardiol.
,
27
, No.
5
, pp.
1264
1269
.
6.
Kim
,
Y. H.
,
Walker
,
P. G.
,
Fontaine
,
A. A.
,
Panchal
,
S.
,
Ensley
,
A. E.
,
Oshinski
,
J.
,
Sharma
,
S.
,
Ha
,
B.
,
Lucas
,
C. L.
, and
Yoganathan
,
A. P.
,
1995
, “
Hemodynamics of the Fontan Connection: An In-Vitro Study
,”
ASME J. Biomech. Eng.
,
117
, pp.
423
428
.
7.
Low
,
H. T.
,
Chew
,
Y. T.
, and
Lee
,
C. N.
,
1993
, “
Flow Studies on Atriopulmonary and Cavopulmonary Connections of the Fontan Operations for Congenital Heart Defects
,”
J. Biomed. Eng.
,
15
, pp.
303
307
.
8.
Shanda
,
R.
,
DeGroff
,
C. G.
,
Kwon
,
J.
, and
Valdest-Cruz
,
L.
,
1997
, “
Vortex Structures Within the Modified Fontan Connection Play a Primary Role in Energy Loss: In Vitro Digital Particle Image Velocimetry Studies
,”
J. Am. Coll. Cardiol.
,
29
, (abst: 1043–58), p.
427A
427A
.
9.
Sharma
,
S.
,
Ensley
,
A.
,
Chatzimavroudis
,
G. P.
,
Fontaine
,
A. A.
, and
Yoganathan
,
A. P.
,
1997
, “
Does the Addition of Curvature at the Total Cavopulmonary Connection (TCPC) Site Reduce Power Losses?
J. Am. Coll. Cardiol.
,
29
, (abst: 1043–59), p.
427A
427A
.
10.
Lardo
,
A. C.
,
Friehs
,
I.
,
Webber
,
S. A.
,
del Nido
,
P. J.
, and
Cape
,
E. G.
,
1997
, “
Comparison of Lateral Tunnel and Extra-Cardiac Conduits in Total Cavo Pulmonary Connections: A Fluid Dynamics Study
,”
J. Am. Coll. Cardiol.
,
29
, (abst: 751-2), p.
403A
403A
.
11.
Migliavacca
,
F.
,
de Leval
,
M. R.
,
Dubini
,
G.
, and
Pietrabissa
,
R.
,
1996
, “
A Computational Pulsatile Model of the Bi-Directional Cavopulmonary Anastomosis: The Influence of Pulmonary Forward Flow
,”
ASME J. Biomech. Eng.
,
118
, pp.
520
528
.
12.
Lardo
,
A. C.
,
Webber
,
S. A.
,
Friehs
,
I.
,
del Nido
,
P. J.
, and
Cape
,
E. G.
,
1999
, “
Fluid Dynamic Comparison of Intra-Atrial and Extracardiac Total Cavopulmonary Connections
,”
J. Thorac. Cardiovasc. Surg.
,
117
, No.
4
, pp.
697
704
.
13.
Ensley
,
A. E.
,
Lynch
,
P.
,
Chatzimavroudis
,
G. P.
,
Lucas
,
C.
,
Sharma
,
S.
, and
Yoganathan
,
A. P.
,
1999
, “
Toward Designing the Optimal Total Cavopulmonary Connection: An In Vitro Study
,”
Ann. Thoracic Surgery
,
68
, pp.
1384
1390
.
14.
Shah
,
M. J.
,
Rychik
,
J.
,
Fogel
,
M. A.
,
Murphy
,
J. D.
, and
Jacobs
,
M. L.
,
1997
, “
Pulmonary AV Malformations After Superior Cavopulmonary Connection: Resolution After Inclusion of Hepatic Veins in the Pulmonary Circulation
,”
Ann. Thoracic Surgery
63
, No.
4
, pp.
960
963
.
15.
Schneider
,
D. J.
,
Banerjee
,
A.
,
Mendelsohn
,
A. M.
, and
Norwood
, Jr.,
W. I.
,
1997
, “
Hepatic Venous Malformation After Modified Fontan Procedure With Partial Hepatic Vein Exclusion
,”
Ann. Thoracic Surgery
,
63
, No.
4
, pp.
1177
1179
.
16.
Graham
,
K.
,
Sondheimer
,
H.
, and
Schaffer
,
M.
,
1997
, “
Resolution of Cavopulmonary Shunt-Associated Pulmonary Arteriovenous Malformation After Heart Transplantation
,”
J. Heart Lung Transplant
16
, No.
12
, pp.
1271
1274
.
17.
Trusler
,
G. A.
,
Williams
,
W. G.
,
Cohen
,
A. J.
,
Rabinovitch
,
M.
,
Moes
,
C. A.
,
Smallhorn
,
J. F.
,
Coles
,
J. G.
,
Lightfoot
,
N. E.,
, and
Freedom
,
R. M.
,
1990
, “
The Cavopulmonary Shunt. Evolution of a Concept
,”
Circulation
,
82
, pp.
IV131–IV138
IV131–IV138
.
18.
Kopf
,
G. S.
,
Laks
,
H.
,
Stansel
,
H. C.
,
Hellenbrand
,
W. E.
,
Kleinman
,
C. S.
, and
Talner
,
N. S.
,
1990
, “
Thirty Year Follow-Up of Superior Vena Cava-Pulmonary Artery (Glenn) Shunts
,”
J. Thorac. Cardiovasc. Surg.
,
100
, pp.
662
671
.
19.
Srivastava
,
D.
,
Preminger
,
T.
,
Lock
,
J. E.
,
Mandell
,
V.
,
Keane
,
J. F.
,
Mayer
, Jr.,
J. E.
,
Kozakewich
,
H.
, and
Spevak
,
P. J.
,
1995
, “
Hepatic Venous Blood and the Development of Pulmonary Arteriovenous Malformations in Congenital Heart Disease
,”
Circulation
,
92
, No.
5
, pp.
1217
1222
.
20.
Duncan
,
B. W.
,
Kneebone
,
J. M.
,
Chi
,
E. Y.
,
Hraska
,
V.
,
Isik
,
F. F.
,
Rosenthal
,
G. L.
,
Jones
,
T. K.
,
Starnes
,
S. L.
, and
Lupinetti
,
F. M.
,
1999
, “
A Detailed Histologic Analysis of Pulmonary Arteriovenous Malformations in Children With Cyanotic Congenital Heart Disease
,”
J. Thorac. Cardiovasc. Surg.
,
117
, No.
5
, pp.
931
936
.
21.
Walker
,
P. G.
,
Howe
,
T. T.
,
Davies
,
R. L.
,
Fisher
,
J.
, and
Watterson
,
K. G.
,
2000
, “
Distribution of Hepatic Venous Blood in the Total Cavo Pulmonary Connection: An In-Vitro Study
,”
Eur. J. Cardiothorac Surg.
,
17
, No.
6
, pp.
658
665
.
22.
Fogel
,
M. A.
,
Weinberg
,
P. M.
,
Hoydu
,
A.
,
Hubbard
,
A.
,
Rychik
,
J.
,
Jacobs
,
M.
,
Fellows
,
K. E.
, and
Haselgrove
,
J.
,
1997
, “
The Nature of Flow in the Systemic Venous Pathway Measured by Magnetic Resonance Blood Tagging in Patients Having the Fontan Operation
,”
J. Thorac. Cardiovasc. Surg.
,
114
, pp.
1032
1041
.
23.
Salim
,
M. A.
,
DiSessa
,
T. G.
,
Arheart
,
K. L.
, and
Alpert
,
B. S.
,
1995
, “
Contribution of Superior Vena Caval Flow to Total Cardiac Output in Children: A Doppler Echocardiographic Study
,”
Circulation
,
92
, pp.
1860
1865
.
24.
Cook, N. H., and Rabinowicz, E., Physical Measurement and Analysis, Addison-Wesley Publishing Company, Inc., London.
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