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相关概念视频

Physiological Control of Respiration01:23

Physiological Control of Respiration

1.9K
Introduction
Breathing, a seemingly passive process, is regulated by the respiratory center in the brainstem. This center coordinates the involuntary control of respirations, which means it occurs without conscious effort, ensuring a smooth and uninterrupted pattern.
Regulation of Ventilation
The body maintains ventilation by monitoring levels of carbon dioxide (CO2), oxygen (O2), and hydrogen ion concentration (pH) in the arterial blood. Among these factors, the level of CO2 plays a crucial...
1.9K
Oxygen Delivering System I: Nasal Cannula and Face Mask01:26

Oxygen Delivering System I: Nasal Cannula and Face Mask

242
The human body requires oxygen to function, and when the natural process of respiration is hindered, external devices, including the following, are needed to help deliver this vital gas.
Nasal Cannula
A nasal cannula is a lightweight tube split at one end into two prongs and placed in the nostrils. It is typically used to deliver low to medium levels of oxygen.
Suggested flow rate: The suggested flow rate for a nasal cannula typically ranges between 1 and 6 L/min.
Oxygen percentage setting:...
242
Oxygen Delivering System II: Venturi Mask and Transtracheal Oxygen01:16

Oxygen Delivering System II: Venturi Mask and Transtracheal Oxygen

329
Oxygen therapy is a pivotal aspect of medical care, particularly for patients with respiratory ailments. Two prominent oxygen-delivering systems include the Venturi mask and the transtracheal oxygen catheter.
Venturi Mask
The Venturi mask, named after the Venturi effect, is designed to deliver precise oxygen concentrations. It consists of a large tube with an oxygen inlet that narrows down, causing a pressure drop that pulls air in through adjustable side ports. The mask is a lightweight,...
329

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The weakly electric fish, Apteronotus albifrons, actively avoids experimentally induced hypoxia.

Journal of comparative physiology. A, Neuroethology, sensory, neural, and behavioral physiology·2021
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Updated: Jun 5, 2025

Quantitative and Temporal Control of Oxygen Microenvironment at the Single Islet Level
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Quantitative and Temporal Control of Oxygen Microenvironment at the Single Islet Level

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一个基于微控制器的系统,用于在实验室实验中灵活控制氧气.

Stefan Mucha1

  • 1Behavioral Physiology, Institute of Biology, Humboldt-Universität zu Berlin, 10099 Berlin, Germany.

The Journal of experimental biology
|December 4, 2024
PubMed
概括

研究人员现在可以使用Arduino微控制器构建一个低成本,灵活的环境氧气控制系统. 该系统为各种动物与环境相互作用研究提供了精确的溶解氧调节.

科学领域:

  • 环境科学 环境科学
  • 生物技术是生物技术.
  • 工程 工程师 工程师 工程师

背景情况:

  • 环境控制系统对于研究动物与环境的相互作用至关重要.
  • 商业氧气控制系统通常很昂贵,缺乏实验灵活性.
  • 需要适应性强,具有成本效益的解决方案来精确调节氧气.

研究的目的:

  • 开发一个低成本,灵活的环境氧气控制系统.
  • 为了证明该系统对各种实验设置的适应性.
  • 为研究人员提供实用例子.

主要方法:

  • 使用了Arduino微控制器和商用光学氧气传感器.
  • 为氧气控制设计的硬件和软件.
  • 实施并测试了三个应用程序:单一设置点,序列和长期溶解氧 (DO) 控制.

主要成果:

  • 开发的系统在维持所需的DO条件方面实现了高精度和可重复性.
  • 在不同控制策略中成功实施.
  • 该系统被证明可以适应各种实验要求.

结论:

关键词:
适应 适应 适应阿尔杜诺是一个Arduino.溶解的氧气是一种溶解的氧气.环境控制环境控制氧气过低是因为缺氧.呼吸系统生理学 呼吸系统生理学

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Fabrication and Operation of an Oxygen Insert for Adherent Cellular Cultures
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Last Updated: Jun 5, 2025

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  • 本次介绍的基于Arduino的氧气控制系统是商业系统的可行,具有成本效益的替代方案.
  • 该系统的灵活性使其能够适应广泛的实验研究.
  • 这种方法使研究人员拥有可定制的环境控制工具.