Cataldo Andrea, Cataldo Enrico, Masciullo Antonio, Schiavoni Raissa
Department of Engineering for Innovation, University of Salento, 73100 Lecce, Italy.
Bioengineering (Basel). 2025 Mar 19;12(3):314. doi: 10.3390/bioengineering12030314.
Pulse oximetry is essential for monitoring arterial oxygen saturation (SpO2) and heart rate (HR) in various medical scenarios. However, the traditional pulse oximeters face challenges related to high costs, motion artifacts, and susceptibility to ambient light interference. This work presents a low-cost experimental pulse oximeter prototype designed to address these limitations through design advancements. The device incorporates a 3D-printed finger support to minimize motion artifacts and excessive capillary pressure, along with an elastic element to enhance stability. Unlike conventional transmission-based oximetry, the prototype employs a reflectance-based measurement approach, improving versatility and enabling reliable readings even in cases of poor peripheral perfusion. Additionally, the integration of light-shielding materials mitigates the effects of ambient illumination, ensuring accurate operation in challenging environments such as surgical settings. Metrological characterization demonstrates that the prototype achieves accuracy comparable to that of the commercial GIMA Oxy-50 pulse oximeter while maintaining a production cost at approximately one-tenth of the commercial alternatives. This study highlights the potential of the prototype to deliver affordable and reliable pulse oximetry for different applications.
脉搏血氧测定法对于在各种医疗场景中监测动脉血氧饱和度(SpO2)和心率(HR)至关重要。然而,传统的脉搏血氧仪面临着与高成本、运动伪影以及易受环境光干扰相关的挑战。这项工作展示了一种低成本的实验性脉搏血氧仪原型,旨在通过设计改进来解决这些局限性。该设备集成了一个3D打印的手指支撑结构,以尽量减少运动伪影和过高的毛细血管压力,还配备了一个弹性元件以增强稳定性。与传统的基于透射的血氧测定法不同,该原型采用基于反射的测量方法,提高了通用性,即使在周围灌注不良的情况下也能实现可靠读数。此外,遮光材料的集成减轻了环境光照的影响,确保在手术环境等具有挑战性的环境中能准确运行。计量表征表明,该原型在保持生产成本约为商业同类产品十分之一的同时,实现了与商业GIMA Oxy-50脉搏血氧仪相当的精度。这项研究突出了该原型为不同应用提供经济实惠且可靠的脉搏血氧测定法的潜力。