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Items: 1 to 20 of 108

1.

A new magneto-elastic resonance based technique to determine magneto-mechanical parameters of amorphous ferromagnetic ribbons.

Le Bras Y, Lasheras A, Gutierrez J, Mazaleyrat F, Greneche JM.

Rev Sci Instrum. 2013 Apr;84(4):043904. doi: 10.1063/1.4799177.

PMID:
23635206
2.

Sensor applications of soft magnetic materials based on magneto-impedance, magneto-elastic resonance and magneto-electricity.

García-Arribas A, Gutiérrez J, Kurlyandskaya GV, Barandiarán JM, Svalov A, Fernández E, Lasheras A, de Cos D, Bravo-Imaz I.

Sensors (Basel). 2014 Apr 25;14(5):7602-24. doi: 10.3390/s140507602.

3.

An ultra-high Q silicon compound cantilever resonator for Young's modulus measurements.

Metcalf TH, Liu X.

Rev Sci Instrum. 2013 Jul;84(7):075001. doi: 10.1063/1.4812268.

PMID:
23902093
4.

Structural and magnetic behaviour of soft magnetic Finemet-type ribbons.

Iturriza N, Fernández L, Chizhik A, Vara G, Pierna AR, del Val JJ.

J Nanosci Nanotechnol. 2008 Jun;8(6):2912-22.

PMID:
18681027
5.

Thin magnetically soft wires for magnetic microsensors.

Zhukova V, Ipatov M, Zhukov A.

Sensors (Basel). 2009;9(11):9216-40. doi: 10.3390/s91109216. Epub 2009 Nov 18.

6.

In vivo measurements of the elastic mechanical properties of human skin by indentation tests.

Pailler-Mattei C, Bec S, Zahouani H.

Med Eng Phys. 2008 Jun;30(5):599-606. Epub 2007 Sep 14.

PMID:
17869160
7.

Reliability and validity of quantifying absolute muscle hardness using ultrasound elastography.

Chino K, Akagi R, Dohi M, Fukashiro S, Takahashi H.

PLoS One. 2012;7(9):e45764. doi: 10.1371/journal.pone.0045764. Epub 2012 Sep 21.

8.

Quantitative imaging of young's modulus of soft tissues from ultrasound water jet indentation: a finite element study.

Lu MH, Mao R, Lu Y, Liu Z, Wang TF, Chen SP.

Comput Math Methods Med. 2012;2012:979847. doi: 10.1155/2012/979847. Epub 2012 Aug 15.

9.

A mechanical model to compute elastic modulus of tissues for harmonic motion imaging.

Shan B, Pelegri AA, Maleke C, Konofagou EE.

J Biomech. 2008 Jul 19;41(10):2150-8. doi: 10.1016/j.jbiomech.2008.04.029. Epub 2008 Jun 20.

PMID:
18571182
10.
11.

Apparent Young's modulus of human radius using inverse finite-element method.

Bosisio MR, Talmant M, Skalli W, Laugier P, Mitton D.

J Biomech. 2007;40(9):2022-8. Epub 2006 Nov 13.

PMID:
17097663
12.
13.

Influence of static compression on mechanical parameters of acoustic foams.

Geslain A, Dazel O, Groby JP, Sahraoui S, Lauriks W.

J Acoust Soc Am. 2011 Aug;130(2):818-25. doi: 10.1121/1.3605535.

PMID:
21877797
14.

A molecular dynamics study of Young's modulus change of semi-crystalline polymers during degradation by chain scissions.

Ding L, Davidchack RL, Pan J.

J Mech Behav Biomed Mater. 2012 Jan;5(1):224-30. doi: 10.1016/j.jmbbm.2011.09.002. Epub 2011 Sep 13.

PMID:
22100097
15.

Mechano-acoustic determination of Young's modulus of articular cartilage.

Saarakkala S, Korhonen RK, Laasanen MS, Töyräs J, Rieppo J, Jurvelin JS.

Biorheology. 2004;41(3-4):167-79.

PMID:
15299250
16.

The elastic modulus of soft denture liners.

Ellis B, Lamb DJ, Al-Nakash S.

J Biomed Mater Res. 1980 Nov;14(6):731-42.

PMID:
7052205
17.

Measuring the mass of thin films and adsorbates using magnetoelastic techniques.

Zhang R, Tejedor-Tejedor MI, Grimes CA, Anderson MA.

Anal Chem. 2007 Sep 15;79(18):7078-86. Epub 2007 Aug 22.

PMID:
17711351
18.

Elasticity modulus of rabbit middle ear ossicles determined by a novel micro-indentation technique.

Soons JA, Aernouts J, Dirckx JJ.

Hear Res. 2010 May;263(1-2):33-7. doi: 10.1016/j.heares.2009.10.001. Epub 2009 Oct 8.

PMID:
19818840
19.

Effect of large mechanical stress on the magnetic properties of embedded Fe nanoparticles.

Saranu S, Selve S, Kaiser U, Han L, Wiedwald U, Ziemann P, Herr U.

Beilstein J Nanotechnol. 2011;2:268-75. doi: 10.3762/bjnano.2.31. Epub 2011 Jun 1.

20.

A new method for wideband characterization of resonator-based sensing platforms.

Munir F, Wathen A, Hunt WD.

Rev Sci Instrum. 2011 Mar;82(3):035119. doi: 10.1063/1.3567005.

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