Design and Build a Distance and Heart Rate Monitoring System on a Dynamic Bike Integrated with Power Generating System

Anggara Trisna Nugraha
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Abstract

One of the organs of the body that must be protected is the heart. The heart is an organ of the human body that performs important functions to sustain life. Maintaining health is a top priority and requires careful attention, so small abnormalities in the heart can have a big impact on our body's performance [2]. In addition to the rapid development of the field of health sciences, this can affect not only aspects of medicine, but also other supporting fields of science such as chemistry, biology, pharmacy and other scientific fields. Don't forget that informatics plays an important role in maintaining, monitoring, diagnosing, and managing health, especially heart health. With the development of medical science, people are always active in improving their physical fitness in order to remain optimal in the current new normal era. After the Covid-19 pandemic, many things change to adapt to the environment around us. One of the implications of the adjustment in the new normal era is the use of transportation for social distancing. Many people use environmentally friendly and healthy modes of transportation, such as bicycles, to travel. In 2016, Deshmukh and colleagues conducted a study entitled 'Design of a Walking Bike', one of several developments in the title of research that discusses the design of a treadmill bicycle [5]. In this study, a mechanical test and design of a treadmill bicycle was carried out in the form of 3D modeling which had been integrated with a power generating system in the form of adding a BLDC motor to the rear wheel. By following the rapid development of technology. The authors investigated the effect of treadmill cycling on heart rate monitoring using the MAX30102 sensor. The two initial values ​​can easily be derived from the results of the conducted studies. The first test has an error rate of 12.64% and the second test has an error rate of 22.09%. From the results of these tests, the author is in further investigation by adding the Kalman filtering method to the MAX30102 sensor. Then, the output generated from this power generating system can charge the battery up to 12.95 volts with a period of 25 minutes of testing. From the results of these tests, the author is in further investigation by adding the Kalman filtering method to the MAX30102 sensor. Then, the output generated from this power generating system can charge the battery up to 12.95 volts with a period of 25 minutes of testing. From the results of these tests, the author is in further investigation by adding the Kalman filtering method to the MAX30102 sensor. Then, the output generated from this power generating system can charge the battery up to 12.95 volts with a period of 25 minutes of testing.
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结合发电系统的动态自行车距离与心率监测系统的设计与实现
必须保护的身体器官之一是心脏。心脏是人体的一个器官,对维持生命起着重要的作用。保持健康是最重要的,需要仔细注意,所以心脏的小异常会对我们身体的表现产生很大的影响。除了健康科学领域的快速发展之外,这不仅可以影响医学方面,还可以影响其他支持科学领域,如化学,生物学,药学和其他科学领域。不要忘记,信息学在维护、监测、诊断和管理健康(尤其是心脏健康)方面发挥着重要作用。随着医学的发展,为了在新常态下保持最佳状态,人们一直在积极提高自己的身体素质。新冠肺炎大流行之后,很多事情都发生了变化,以适应我们周围的环境。在新常态时代,这种调整的影响之一是利用交通工具保持社会距离。许多人使用环保和健康的交通方式,如自行车,去旅行。2016年,Deshmukh和他的同事进行了一项名为“步行自行车的设计”的研究,这是讨论跑步机自行车设计的研究标题中的几项进展之一。在本研究中,以3D建模的形式对跑步机自行车进行力学测试和设计,并以后轮增加无刷直流电机的形式集成了发电系统。随着科技的飞速发展。作者利用MAX30102传感器研究了跑步机骑行对心率监测的影响。这两个初始值可以很容易地从所进行的研究的结果中得出。第一次测试错误率为12.64%,第二次测试错误率为22.09%。根据这些测试结果,作者将卡尔曼滤波方法添加到MAX30102传感器中进行进一步研究。然后,该发电系统产生的输出可以在25分钟的测试周期内为电池充电高达12.95伏。根据这些测试结果,作者将卡尔曼滤波方法添加到MAX30102传感器中进行进一步研究。然后,该发电系统产生的输出可以在25分钟的测试周期内为电池充电高达12.95伏。根据这些测试结果,作者将卡尔曼滤波方法添加到MAX30102传感器中进行进一步研究。然后,该发电系统产生的输出可以在25分钟的测试周期内为电池充电高达12.95伏。
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