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Items: 1 to 20 of 127

1.

The capability of fiber Bragg grating sensors to measure amputees' trans-tibial stump/socket interface pressures.

Al-Fakih EA, Osman NA, Eshraghi A, Adikan FR.

Sensors (Basel). 2013 Aug 12;13(8):10348-57. doi: 10.3390/s130810348.

3.

Two dimensional polymer-embedded quasi-distributed FBG pressure sensor for biomedical applications.

Kanellos GT, Papaioannou G, Tsiokos D, Mitrogiannis C, Nianios G, Pleros N.

Opt Express. 2010 Jan 4;18(1):179-86. doi: 10.1364/OE.18.000179.

PMID:
20173837
4.

Optical fiber Bragg grating-instrumented silicone liner for interface pressure measurement within prosthetic sockets of lower-limb amputees.

Al-Fakih E, Arifin N, Pirouzi G, Mahamd Adikan FR, Shasmin HN, Abu Osman NA.

J Biomed Opt. 2017 Aug;22(8):1-8. doi: 10.1117/1.JBO.22.8.087001.

PMID:
28822140
5.

Engineering a trans-tibial prosthetic socket for the lower limb amputee.

Laing S, Lee PV, Goh JCh.

Ann Acad Med Singapore. 2011 May;40(5):252-9. Review.

6.

A comparison of pressure distributions between two types of sockets in a bulbous stump.

Gholizadeh H, Abu Osman NA, Eshraghi A, Arifin N, Chung TY.

Prosthet Orthot Int. 2016 Aug;40(4):509-16. doi: 10.1177/0309364614564022. Epub 2015 Jan 12.

PMID:
25583929
7.

Socket Interface Pressure and Amputee Reported Outcomes for Comfortable and Uncomfortable Conditions of Patellar Tendon Bearing Socket: A Pilot Study.

Safari MR, Tafti N, Aminian G.

Assist Technol. 2015 Spring;27(1):24-31; quiz 32-3. doi: 10.1080/10400435.2014.949016.

PMID:
26132222
8.

Laboratory and clinical tests of a prototype pressure sensor for clincial assessment of prosthetic socket fit.

Polliack AA, Craig DD, Sieh RC, Landsberger S, Mcneal DR.

Prosthet Orthot Int. 2002 Apr;26(1):23-34.

PMID:
12043923
9.

Clinical investigation of the interface pressure in the trans-tibial socket with Dermo and Seal-In X5 liner during walking and their effect on patient satisfaction.

Ali S, Osman NA, Mortaza N, Eshraghi A, Gholizadeh H, Wan Abas WA.

Clin Biomech (Bristol, Avon). 2012 Nov;27(9):943-8. doi: 10.1016/j.clinbiomech.2012.06.004. Epub 2012 Jul 12.

PMID:
22795863
10.
12.

A noncontact capacitive sensing system for recognizing locomotion modes of transtibial amputees.

Zheng E, Wang L, Wei K, Wang Q.

IEEE Trans Biomed Eng. 2014 Dec;61(12):2911-20. doi: 10.1109/TBME.2014.2334316. Epub 2014 Jul 1.

PMID:
25014949
13.

Development of an air pneumatic suspension system for transtibial prostheses.

Pirouzi G, Abu Osman NA, Oshkour AA, Ali S, Gholizadeh H, Abas WA.

Sensors (Basel). 2014 Sep 9;14(9):16754-65. doi: 10.3390/s140916754.

14.

Interface pressure profile analysis for patellar tendon-bearing socket and hydrostatic socket.

Moo EK, Osman NA, Pingguan-Murphy B, Abas WA, Spence WD, Solomonidis SE.

Acta Bioeng Biomech. 2009;11(4):37-43.

PMID:
20405814
15.

Effects of liner stiffness for trans-tibial prosthesis: a finite element contact model.

Lin CC, Chang CH, Wu CL, Chung KC, Liao IC.

Med Eng Phys. 2004 Jan;26(1):1-9.

PMID:
14644593
16.

Development and validation of a 3D-printed interfacial stress sensor for prosthetic applications.

Laszczak P, Jiang L, Bader DL, Moser D, Zahedi S.

Med Eng Phys. 2015 Jan;37(1):132-7. doi: 10.1016/j.medengphy.2014.10.002. Epub 2014 Oct 23.

PMID:
25455164
17.

The development of a rapid prototyping prosthetic socket coated with a resin layer for transtibial amputees.

Hsu LH, Huang GF, Lu CT, Hong DY, Liu SH.

Prosthet Orthot Int. 2010 Mar;34(1):37-45. doi: 10.3109/03093640902911820.

PMID:
19947824
18.
19.

An experimental and theoretical framework for manufacturing prosthetic sockets for transtibial amputees.

Faustini MC, Neptune RR, Crawford RH, Rogers WE, Bosker G.

IEEE Trans Neural Syst Rehabil Eng. 2006 Sep;14(3):304-10.

PMID:
17009490
20.

Clinical investigation of the pressure and shear stress on the trans-tibial stump with a prosthesis.

Zhang M, Turner-Smith AR, Tanner A, Roberts VC.

Med Eng Phys. 1998 Apr;20(3):188-98.

PMID:
9690489

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