一区二区三区av-国内自拍偷拍-日穴视频-色婷婷基地-免费视频成人-免费播放av-黄色影音-亚洲伦理一区二区-婷婷在线影院-国产成人在线电影-最新色网站-九色视频网-一级一级黄色片-αv在线-欧美交受高潮1

Time: 2024-08-18  韋克威科技

What are the two types of Hall sensors?

Hall current sensors come in two types: open-loop and closed-loop.


1Open-loop Hall current sensorAlso known as direct discharge Hall current sensor, its working principle is shown in the following figure:


When the primary current IP flows through a long wire, a magnetic field is generated in the annular magnetic core, and the magnitude of this magnetic field is proportional to the current flowing through the wire. The generated magnetic field is concentrated in the magnetic ring, measured and amplified by Hall elements in the air gap of the magnetic ring, and its output voltage VS reflects the primary current IP proportionally.


Due to the proportional relationship between the magnetic induction intensity in the annular magnetic core and the primary current, as long as the primary current is large enough, the annular magnetic core will inevitably saturate.


2閉環(huán)式霍爾電流傳感器Also known as zero flux transformer or magnetic balance current sensor, its working principle is shown in the following figure:


The magnetic field generated by the primary current Ip in the magnetic core is compensated by the magnetic field generated by the secondary compensation coil current, so that the Hall device is in the working state of detecting zero magnetic flux. The compensation current Is proportionally reflects the primary current Ip. The specific working process is as follows: when a current passes through the main circuit, the magnetic field generated on the wire is concentrated by the magnetic core and induced to the Hall device. The generated signal output is used to drive the power transistor and make it conductive, thereby obtaining a compensation current Is. This current then generates a magnetic field through a multi turn winding, which is exactly opposite to the magnetic field generated by the measured current, thus compensating for the original magnetic field and gradually reducing the output of the Hall device. When the magnetic field generated by multiplying Ip with the number of turns is equal, Is no longer increases. At this point, the Hall device acts as an indicator of zero magnetic flux, and Ip can be tested using Is. When Ip changes, the balance is disrupted, and the Hall device outputs a signal, repeating the above process to reach balance again. Any change in the measured current will disrupt this balance. Once the magnetic field loses balance, the Hall device will output a signal. After power amplification, a corresponding current immediately flows through the secondary winding to compensate for the unbalanced magnetic field. The time required from magnetic field imbalance to re equilibrium is theoretically less than 1 μ s, which is a dynamic equilibrium process.


開環(huán)型穿孔霍爾電流傳感器-D3


Therefore, from a macro perspective, the number of ampere turns of the secondary compensation current is always equal to the number of ampere turns of the primary measured current at any time.


When the closed-loop Hall current sensor is working normally, the magnetic flux of its primary winding and secondary winding cancel each other out, achieving magnetic balance, and the actual magnetic flux in the magnetic core is zero. However, this is only an ideal situation. In actual sensors, the output current capability of the secondary winding composed of electronic circuits is always limited. When there is an overload, if the secondary output is limited, the actual output current will be smaller than the theoretical current, and the magnetic balance will be broken. As long as the primary current continues to increase, the iron core will saturate.


Regardless of the type of Hall current sensor, magnetic saturation of the magnetic core may result in residual magnetism, and the output of the Hall sensor is related to the magnetic flux of the magnetic core. Therefore, even in the absence of input, a Hall current sensor with magnetic saturation will still output a certain DC signal.


主站蜘蛛池模板: 人妻久久久一区二区三区 | 无码 人妻 在线 视频 | 免费在线观看日韩 | 精品视频一区二区 | 一区二区av电影 | 成人短视频在线观看 | 天堂资源在线观看 | 视频区小说区图片区 | 亚欧成人精品一区二区 | 日韩在线视频免费观看 | 国产欧美一区二区三区鸳鸯浴 | 茄子视频色 | 精品福利在线视频 | 日本少妇喂奶 | 99精品国产99久久久久久97 | av在线播放免费 | 无码人妻av一区二区三区波多野 | 国产网红女主播精品视频 | 国产一区自拍视频 | 久久av无码精品人妻系列试探 | 91精品国产99久久久久久红楼 | 精品国产无码在线观看 | 成人视屏在线 | 丰满少妇高潮在线观看 | 国产精品xx | 拍国产真实乱人偷精品 | 久草福利在线观看 | 久草五月| 另类专区亚洲 | 毛片基地免费 | 日韩熟女一区二区 | 日韩欧美h| 亚洲伦理精品 | 狠狠干狠狠干 | 国产乱强伦一区二区三区 | 男女一区二区三区 | 簧片av| 一本色道久久综合狠狠躁的推荐 | 欧亚一区二区三区 | 日日爱视频 | 中国a级黄色片 | 欧美中文字幕第一页 | 熟女俱乐部一区二区视频在线 | 亚洲精品一区二区二区 | 美日韩一级| 四虎永久免费影院 | 蜜臀久久99精品久久久久久宅男 | 日本打屁股网站 | 香蕉网在线观看 | www麻豆 | 中文字幕 视频一区 | 国产精品久久久久9999爆乳 | 成人福利av | 在线毛片网站 | 狠狠爱免费视频 | 日本99视频| 亚洲天堂黄 | 嫩草视频| 双性懵懂美人被强制调教 | 东方影库av | 中文字幕视频观看 | 啪啪啪一区二区 | 久久久精品视频免费 | 无码人妻一区二区三区精品视频 | www.jizzcom| 五月婷婷,六月丁香 | 2018av在线| 在线你懂得 | 久艹在线 | 国产1区在线 | av男人资源 | 韩日av网站 | 91在线视频免费观看 | 波多野结衣影院 | 爱情岛论坛自拍亚洲品质极速最新章 | 国产女主播在线观看 | 亚洲五月花| 影音先锋国产在线 | 超污网站在线观看 | 午夜两性| 青青草综合视频 | 欧美成人综合网站 | 99久久精品日本一区二区免费 | 风间由美一区 | 欧美sm极限捆绑bd | 蜜桃啪啪| 欧美老女人性生活 | 国产三级第一页 | 中日韩精品一区二区三区 | 一区二区三区视频免费看 | 天堂资源在线播放 | 九九色影院 | 91国视频 | 桃色综合网 | 欧美激情偷拍 | 手机在线毛片 | 国产伦精品一区二区三区视频孕妇 | 99精品久久久久久 | 少妇被按摩师摸高潮了 |