These tools will no longer be maintained as of December 31, 2024. Archived website can be found here. PubMed4Hh GitHub repository can be found here. Contact NLM Customer Service if you have questions.
147 related articles for article (PubMed ID: 17022064)
1. Polymer scaffolds with interconnected spherical pores and controlled architecture for tissue engineering: fabrication, mechanical properties, and finite element modeling. Diego RB; Estellés JM; Sanz JA; García-Aznar JM; Sánchez MS J Biomed Mater Res B Appl Biomater; 2007 May; 81(2):448-55. PubMed ID: 17022064 [TBL] [Abstract][Full Text] [Related]
2. Microcomputed tomography and microfinite element modeling for evaluating polymer scaffolds architecture and their mechanical properties. Alberich-Bayarri A; Moratal D; Ivirico JL; Rodríguez Hernández JC; Vallés-Lluch A; Martí-Bonmatí L; Estellés JM; Mano JF; Pradas MM; Ribelles JL; Salmerón-Sánchez M J Biomed Mater Res B Appl Biomater; 2009 Oct; 91(1):191-202. PubMed ID: 19425071 [TBL] [Abstract][Full Text] [Related]
4. Finite element predictions compared to experimental results for the effective modulus of bone tissue engineering scaffolds fabricated by selective laser sintering. Cahill S; Lohfeld S; McHugh PE J Mater Sci Mater Med; 2009 Jun; 20(6):1255-62. PubMed ID: 19199109 [TBL] [Abstract][Full Text] [Related]
5. 3D fiber-deposited scaffolds for tissue engineering: influence of pores geometry and architecture on dynamic mechanical properties. Moroni L; de Wijn JR; van Blitterswijk CA Biomaterials; 2006 Mar; 27(7):974-85. PubMed ID: 16055183 [TBL] [Abstract][Full Text] [Related]
6. Optimization of the configuration of porous bone scaffolds made of Polyamide/Hydroxyapatite composites using Selective Laser Sintering for tissue engineering applications. Ramu M; Ananthasubramanian M; Kumaresan T; Gandhinathan R; Jothi S Biomed Mater Eng; 2018; 29(6):739-755. PubMed ID: 30282331 [TBL] [Abstract][Full Text] [Related]
7. [Mechanical properties of polylactic acid/beta-tricalcium phosphate composite scaffold with double channels based on three-dimensional printing technique]. Lian Q; Zhuang P; Li C; Jin Z; Li D Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi; 2014 Mar; 28(3):309-13. PubMed ID: 24844010 [TBL] [Abstract][Full Text] [Related]
8. Fabrication of bimodal open-porous poly (butylene succinate)/cellulose nanocrystals composite scaffolds for tissue engineering application. Ju J; Gu Z; Liu X; Zhang S; Peng X; Kuang T Int J Biol Macromol; 2020 Mar; 147():1164-1173. PubMed ID: 31751685 [TBL] [Abstract][Full Text] [Related]
9. Low-pressure foaming: a novel method for the fabrication of porous scaffolds for tissue engineering. Chung EJ; Sugimoto M; Koh JL; Ameer GA Tissue Eng Part C Methods; 2012 Feb; 18(2):113-21. PubMed ID: 21933018 [TBL] [Abstract][Full Text] [Related]
10. Fabrication of porous ultra-short single-walled carbon nanotube nanocomposite scaffolds for bone tissue engineering. Shi X; Sitharaman B; Pham QP; Liang F; Wu K; Edward Billups W; Wilson LJ; Mikos AG Biomaterials; 2007 Oct; 28(28):4078-90. PubMed ID: 17576009 [TBL] [Abstract][Full Text] [Related]
11. Relationship between micro-porosity, water permeability and mechanical behavior in scaffolds for cartilage engineering. Vikingsson L; Claessens B; Gómez-Tejedor JA; Gallego Ferrer G; Gómez Ribelles JL J Mech Behav Biomed Mater; 2015 Aug; 48():60-69. PubMed ID: 25913609 [TBL] [Abstract][Full Text] [Related]
12. Acrylic scaffolds with interconnected spherical pores and controlled hydrophilicity for tissue engineering. Diego RB; Olmedilla MP; Aroca AS; Ribelles JL; Pradas MM; Ferrer GG; Sánchez MS J Mater Sci Mater Med; 2005 Aug; 16(8):693-8. PubMed ID: 15965737 [TBL] [Abstract][Full Text] [Related]
13. Fabrication and mechanical characterization of 3D electrospun scaffolds for tissue engineering. Wright LD; Young RT; Andric T; Freeman JW Biomed Mater; 2010 Oct; 5(5):055006. PubMed ID: 20844321 [TBL] [Abstract][Full Text] [Related]
14. Fabrication and Tang X; Qin Y; Xu X; Guo D; Ye W; Wu W; Li R Biomed Res Int; 2019; 2019():2076138. PubMed ID: 31815125 [TBL] [Abstract][Full Text] [Related]
15. Structural monitoring and modeling of the mechanical deformation of three-dimensional printed poly(ε-caprolactone) scaffolds. Ribeiro JFM; Oliveira SM; Alves JL; Pedro AJ; Reis RL; Fernandes EM; Mano JF Biofabrication; 2017 May; 9(2):025015. PubMed ID: 28349900 [TBL] [Abstract][Full Text] [Related]
16. Mechanical properties and cell cultural response of polycaprolactone scaffolds designed and fabricated via fused deposition modeling. Hutmacher DW; Schantz T; Zein I; Ng KW; Teoh SH; Tan KC J Biomed Mater Res; 2001 May; 55(2):203-16. PubMed ID: 11255172 [TBL] [Abstract][Full Text] [Related]
18. Fabrication using a rapid prototyping system and in vitro characterization of PEG-PCL-PLA scaffolds for tissue engineering. Hoque ME; Hutmacher DW; Feng W; Li S; Huang MH; Vert M; Wong YS J Biomater Sci Polym Ed; 2005; 16(12):1595-610. PubMed ID: 16366339 [TBL] [Abstract][Full Text] [Related]
19. Porous poly(ε-caprolactone) scaffolds for load-bearing tissue regeneration: solventless fabrication and characterization. Allaf RM; Rivero IV; Abidi N; Ivanov IN J Biomed Mater Res B Appl Biomater; 2013 Aug; 101(6):1050-60. PubMed ID: 23559444 [TBL] [Abstract][Full Text] [Related]
20. Validation of scaffold design optimization in bone tissue engineering: finite element modeling versus designed experiments. Uth N; Mueller J; Smucker B; Yousefi AM Biofabrication; 2017 Feb; 9(1):015023. PubMed ID: 28222045 [TBL] [Abstract][Full Text] [Related] [Next] [New Search]