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首页> 外文期刊>Medical and Biological Engineering and Computing: Journal of the International Federation for Medical and Biological Engineering >Chamber for indirect calorimetry with accurate measurement and time discrimination of metabolic plateaus of over 20 min.
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Chamber for indirect calorimetry with accurate measurement and time discrimination of metabolic plateaus of over 20 min.

机译:间接量热法的腔室,可对代谢平稳期进行精确测量并能进行超过20分钟的时间分辨。

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摘要

A robust algorithm for pull-calorimeters that provides a rapid response to changes in respiratory gas exchange has been implemented. Metabolic plateaus (over 20 min), such as that generated by steady treadmill exercise, can be measured accurately (< 2.0% error for an energy expenditure level of 16.7 kJ min(-1)). The time resolution for changes between plateaus can be accurately found with 1 min discrimination. Implementation required only software changes but no structural or instrumentation changes to the chamber. The algorithm was based on the one developed for the push-calorimeter at the Sahlgrenska Hospital in Sweden. The method utilises published equations for the rate of O2 consumption and CO2 production in the chamber, along with techniques for suppressing noise and identifying trends. Using the exact solution of the equations for steady state, the O2 concentrations from the preceding 30 min period are fitted to two connected exponential segments, of variable length, using the least-squares method. The smoothed O2 concentration and associated time derivative are then determined for the time point 15 min earlier and substituted into the respiration equations. The CO2 concentrations are subjected to the same analysis. The process is repeated every minute, and the newly computed rates of O2 consumption and CO2 production, as well as metabolic rate, are then presented. Gas injection tests proved that the chamber can respond instantaneously to a change from one steady state of respiration to another and correctly averages repeated changes in respiration with periods less than 15min (< 1.4% error for simulated, alternating O2 consumption levels of 0.81 min (-1) and 0.01 min). The successful integration of the algorithm into the Pennington chambers allows for traditional 24 h energy expenditure measurements and various metabolic experiments requiring rapid responses.
机译:已实现了一种针对拉式热量计的鲁棒算法,该算法可对呼吸气体交换的变化提供快速响应。代谢平稳期(超过20分钟),例如稳定的跑步机运动所产生的平稳期,可以准确测量(对于16.7 kJ min(-1)的能量消耗水平,<2.0%误差)。只需1分钟即可准确找到高原之间变化的时间分辨率。实施只需更改软件,无需更改腔室的结构或仪器。该算法基于瑞典Sahlgrenska医院为推热量计开发的算法。该方法利用已发布的方程式计算室内的O2消耗速率和CO2产生速率,并采用抑制噪声和识别趋势的技术。使用稳态方程的精确解,使用最小二乘法将前30分钟内的O2浓度拟合到两个可变长度的相连指数段。然后在15分钟之前的时间点确定平滑的O2浓度和相关的时间导数,并将其代入呼吸方程。对CO2浓度进行相同的分析。该过程每分钟重复一次,然后显示新计算的O2消耗和CO2产生速率以及新陈代谢速率。气体注入测试证明,该腔室可以对从一种稳定呼吸状态到另一种稳定呼吸状态的变化做出即时响应,并且可以正确地平均重复的呼吸变化,持续时间少于15分钟(对于模拟的交替氧气消耗水平为0.81分钟(-,误差小于1.4%)(- 1)和0.01分钟)。该算法成功集成到Pennington腔室中,可以进行传统的24小时能量消耗测量和需要快速响应的各种代谢实验。

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