Heated and humidified high-flow (HHHF) oxygen therapy is frequently used for spontaneous breathing tracheostomized patients when the ventilator is weaned off. However, the efficacy of in-line placement of nebulizer via HHHF remains unclear. We aimed to assess the impact of nebulizer placements, flow settings, and interfaces on aerosol delivery using a vibrating mesh nebulizer with HHHF in a tracheostomized model. A simulated spontaneous breathing model of a tracheostomized adult with tracheostomy tube size 8.0 mm was utilized. A collecting filter was placed between the tracheostomy tube and the model lung. Albuterol sulfate (2.5 mg/3 mL) was aerosolized via a vibrating mesh nebulizer in-line with HHHF (Airvo2). The aerosol delivery was evaluated with the nebulizer placed distally (near the humidifier) and proximally to the airway, using tracheostomy adapter and tracheostomy collar at gas flows of 15, 30, and 45 L/min. Each condition was tested five times. The drug was eluted from the collecting filter and assayed with ultraviolet spectrophotometry (276 nm). When delivering aerosol via an in-line vibrating mesh nebulizer with HHHF in a tracheostomized model, the inhaled dose increased as flow decreased, regardless of the interfaces and nebulizer placements (all < .05). With the tracheostomy adapter, distal placement resulted in higher inhaled doses than the proximal placement at all flows (all < .05). With the tracheostomy collar, inhaled doses were lower with distal placement than proximal placement, except at 15 L/min (21.3 ± 1.9 vs 16.4 ± 2.1%, = .009). Compared with the tracheostomy adapter, the tracheostomy collar had higher inhaled doses with the vibrating mesh nebulizer placed proximally at 30 and 45 L/min but a lower inhaled dose with the vibrating mesh nebulizer placed distally at 30 L/min. During aerosol delivery via in-line placement of vibrating mesh nebulizer with HHHF in a tracheostomized model, the inhaled dose increased as flow decreased. Distal nebulizer placement resulted in higher inhaled doses than proximal placement with the tracheostomy adapter at all flows and with the tracheostomy collar at 15 L/min.
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http://dx.doi.org/10.1089/respcare.12467 | DOI Listing |
Respir Care
March 2025
Dr Chen, Mrs Albuainain, and Dr Li are affiliated with Division of Respiratory Care, Department of Cardiopulmonary Sciences, Rush University, Chicago, Illinois, USA.
Heated and humidified high-flow (HHHF) oxygen therapy is frequently used for spontaneous breathing tracheostomized patients when the ventilator is weaned off. However, the efficacy of in-line placement of nebulizer via HHHF remains unclear. We aimed to assess the impact of nebulizer placements, flow settings, and interfaces on aerosol delivery using a vibrating mesh nebulizer with HHHF in a tracheostomized model.
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Instituto Politécnico Nacional, Centro de Investigación en Ciencia Aplicada y Tecnología Avanzada, Querétaro, Querétaro, Mexico; Facultad de Ingeniería, Universidad Autónoma de Querétaro, Querétaro, Mexico. Electronic address:
Starch retrogradation remains as an area of interest due to its technological implications. The long-term structural changes taking place during the retrogradation process of gels from rice, potato, and corn starches were investigated using X-ray diffraction (XRD), rheology, and Fourier transform infrared spectroscopy (FTIR). Rietveld refinement of XRD showed that initial crystalline arrangement of starches transitioned to a combination of hexagonal and monoclinic structure in varying proportions, also the distribution of crystalline and amorphous phases had a preferential growth depending on the starch source.
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Faculty of Health Sciences, Naragakuen University, Japan.
Objective Short-acting β agonists (SABAs) are key drugs for the treatment of asthma and chronic obstructive pulmonary disease (COPD). A high-flow nasal cannula (HFNC) is widely used for respiratory failure. Recently, a consensus statement on inhalation therapy with HFNC has been published.
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Variable frequency drives (VFDs) are widely used in industry as an efficient means to control the rotational speed of AC motors by varying the supply frequency to the motor. VFD signatures can be detected in vibration signals in the form of sidebands (modulations) induced on tonal components (carrier frequencies). These sidebands are spaced at twice the "pseudo line" VFD frequency, as the magnetic forces in the motor have two peaks per current cycle.
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