D. Saini, C. Yurteri, N. Grable, R. Sims, M. Mazumder
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引用次数: 14
摘要
干粉吸入器(DPI)广泛用于治疗哮喘、肺气肿和囊性纤维化等肺部疾病。静电电荷已被证明会影响吸入颗粒在肺部的沉积,使4.5 /spl μ l /m颗粒的沉积分数从无电场下的0.28增加到带负电荷颗粒的0.58。为了研究带电荷气溶胶通过口呼吸在肺中的沉积,建立了一个使用玻璃球的肺物理模型。采用旋转圆盘气溶胶发生器对肺模型进行了测试。测量了沉积分数与空气动力直径和静电电荷分布的关系。颗粒从旋转盘气溶胶发生器通过喉部进入物理玻璃珠肺模型。喉部切片是喉部的解剖模型。使用E-SPART分析仪测量肺沉积作为颗粒电荷和大小的函数。颗粒的大小和电荷与测试气溶胶发生器不同。初步实验数据表明,通过控制气溶胶颗粒上的静电荷,可以增强DPI气溶胶在肺中的输送。
Drug delivery studies on electrostatically charged dry powder inhaler aerosols using a glass bead lung model
The dry powder inhaler (DPI) is widely used for treating lung diseases such as asthma, emphysema and cystic fibrosis. Electrostatic charge has been shown to influence the deposition of inhaled particles in the lung increasing the deposition fraction for 4.5 /spl mu/m particles from 0.28 for particles under no electric field to 0.58 for particles that are negatively charged. To study the lung deposition of charged aerosols through mouth breathing, a physical lung model using a glass bead was developed. The lung model was tested by using a spinning disk aerosol generator. The deposition fraction was measured as a function of aerodynamic diameter and electrostatic charge distribution. Particles were introduced from the spinning disk aerosol generator through a throat section into a physical glass bead lung model. The throat section is an anatomical model of the larynx. An E-SPART analyzer was used to measure lung deposition as a function of the particle charge and size. The size and charge of the particles was varied from the test aerosol generator. Preliminary experimental data shows that enhanced delivery of the DPI aerosol in the lung can be achieved by controlling the electrostatic charge on the aerosol particles.