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New intraocular pressure measurement method using reflected pneumatic pressure from cornea deformed by air puff of ring-type nozzle

机译:一种新的眼压测量方法,该方法利用了环形喷嘴的气嘴变形引起的角膜反射气压的反射

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摘要

In this study, a non-contact type intraocular pressure (IOP) measuring system using reflected pneumatic pressure is proposed to overcome the disadvantages of existing measurement systems. A ring-type nozzle, a key component in the proposed system, is designed via computational fluid analysis. It predicts the reflected pneumatic pressure based on the nozzle exit angle and inner and outer diameters of the nozzle, which are 30°, 7 mm, and 9 mm, respectively. Performance evaluation is conducted using artificial eyes fabricated using polydimethylsiloxane with the specifications of human eyes. The IOP of the fabricated artificial eyes is adjusted to 10, 30, and 50 mm Hg, and the reflected pneumatic pressure is measured as a function of the distance between the ring-type nozzle and artificial eye. The measured reflected pneumatic pressure is high when the measurement distance is short and eye pressure is low. The cornea of an artificial eye is significantly deformed at a low IOP, and the applied pneumatic pressure is more concentrated in front of the ring-type nozzle because of the deformed cornea. Thus, the reflected pneumatic pressure at a low IOP has more inflows into the pressure sensor inserted inside the nozzle. The sensitivity of the output based on the IOP at measurement distances between 3–5 mm is -0.0027, -0.0022, -0.0018, -0.0015, and -0.0012. Sensitivity decreases as the measurement distance increases. In addition, the reflected pneumatic pressure owing to the misalignment at the measurement distances of 3–5 mm is not affected within a range of 0.5 mm. Therefore, the measurement range is acceptable up to a 1 mm diameter from the center of an artificial eye. However, the accuracy gradually decreases as the reflected pneumatic pressure from a misalignment of 1 mm or more decreases by 26% or more.
机译:在这项研究中,提出了一种使用反射气压的非接触式眼内压(IOP)测量系统,以克服现有测量系统的缺点。通过计算流体分析设计了环形喷嘴,该喷嘴是建议系统中的关键组件。它根据喷嘴的出口角度以及喷嘴的内径和外径分别为30°,7 mm和9 mm来预测反射的气压。使用人眼规格的聚二甲基硅氧烷制成的人造眼进行性能评估。将人造眼的IOP调整为10、30和50 mm Hg,并根据环形喷嘴和人造眼之间的距离测量反射的气压。当测量距离短且眼压低时,测得的反射气压高。人造眼的角膜在较低的IOP下会明显变形,并且由于变形的角膜,所施加的气压会更加集中在环形喷嘴的前面。因此,在低IOP下反射的气压有更多的流入量流入插入喷嘴内部的压力传感器中。在3–5 mm之间的测量距离处,基于IOP的输出灵敏​​度为-0.0027,-0.0022,-0.0018,-0.0015和-0.0012。灵敏度随着测量距离的增加而降低。此外,在0.5 mm的范围内,由于在3-5 mm的测量距离处未对准而导致的反射气压不会受到影响。因此,从人造眼中心到直径最大1 mm的测量范围是可以接受的。但是,随着来自1mm以上的未对准的反射气压降低26%以上,精度逐渐降低。

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