Zhang Yu, Ma Li
Department of Biomaterials and Biomimetics, New York University College of Dentistry, 345 East 24th Street, New York, NY 10010, USA.
Acta Mater. 2009 May 1;57(9):2721-2729. doi: 10.1016/j.actamat.2009.02.037.
We present a new concept for strengthening ceamics by utilizing a graded structure with a low elastic modulus at both top and bottom surfaces sandwiching a high-modulus interior. Closed-form equations have been developed for stress analysis of simply supported graded sandwich beams subject to transverse center loads. Theory predicts that suitable modulus gradients at the ceramic surface can effectively reduce and spread the maximum bending stress from the surface into the interior. The magnitude of such stress dissipation is governed by the thickness ratio of the beam to the graded layers. We test our concept by infiltrating both top and bottom surfaces of a strong class of zirconia ceramic with an in-house prepared glass of similar coefficient of thermal expansion and Poisson's ratio to zirconia, producing a controlled modulus gradient at the surface without significant long-range residual stresses. The resultant graded glass/zirconia/glass composite exhibits significantly higher load-bearing capacity than homogeneous zirconia.
我们提出了一种强化陶瓷的新概念,即利用一种梯度结构,在上下表面具有低弹性模量,中间夹着高模量的内部结构。已经推导了用于承受横向中心载荷的简支梯度夹层梁应力分析的封闭形式方程。理论预测,陶瓷表面合适的模量梯度可以有效地降低最大弯曲应力,并将其从表面扩散到内部。这种应力耗散的大小由梁与梯度层的厚度比决定。我们通过用一种内部制备的、热膨胀系数和泊松比与氧化锆相似的玻璃渗透到一种高强度氧化锆陶瓷的上下表面来测试我们的概念,从而在表面产生可控的模量梯度,而不会产生明显的长程残余应力。所得的梯度玻璃/氧化锆/玻璃复合材料表现出比均质氧化锆显著更高的承载能力。