磁芯電感器的諧波失真分析 摘 要:簡(jiǎn)述了改進(jìn)鐵氧體軟磁材料比損耗系數(shù)和磁滯常數(shù)ηB,從而降低總諧波失真THD的歷史過(guò)程,分析了諸多因數(shù)對(duì)諧波測(cè)量的影響,提出了磁心性能的調(diào)控方向。 關(guān)鍵詞:比損耗系數(shù), 磁滯常數(shù)ηB ,直流偏置特性DC-Bias,總諧波失真THD Analysis on THD of the fer rite co res u se d i n i nductancShi Yan Nanjing Finemag Technology Co. Ltd., Nanjing 210033 Abstract: Histrory of decreasing THD by improving the ratio loss coefficient and hysteresis constant of soft magnetic ferrite is briefly narrated. The effect of many factors which affect the harmonic wave testing is analysed. The way of improving the performance of ferrite cores is put forward. Key words: ratio loss coefficient,hysteresis constant,DC-Bias,THD 近年來(lái),變壓器生產(chǎn)廠家和軟磁鐵氧體生產(chǎn)廠家,在電感器和變壓器產(chǎn)品的總諧波失真指標(biāo)控制上,進(jìn)行了深入的探討和廣泛的合作,逐步弄清了一些似是而非的問(wèn)題。從工藝技術(shù)上采取了不少有效措施,促進(jìn)了質(zhì)量問(wèn)題的迅速解決。本文將就此熱門話題作一些粗淺探討。 一、 歷史回顧 總諧波失真(Total harmonic distortion) ,簡(jiǎn)稱THD,并不是什么新的概念,早在幾十年前的載波通信技術(shù)中就已有嚴(yán)格要求<1>。1978年郵電部公布的標(biāo)準(zhǔn)YD/Z17-78“載波用鐵氧體罐形磁心”中,規(guī)定了高μQ材料制作的無(wú)中心柱配對(duì)罐形磁心詳細(xì)的測(cè)試電路和方法。如圖一電路所示,利用LC組成的150KHz低通濾波器在高電平輸入的情況下測(cè)量磁心產(chǎn)生的非線性失真。這種相對(duì)比較的實(shí)用方法,專用于無(wú)中心柱配對(duì)罐形磁心的諧波衰耗測(cè)試。 這種磁心主要用于載波電報(bào)、電話設(shè)備的遙測(cè)振蕩器和線路放大器系統(tǒng),其非線性失真有很嚴(yán)格的要求。
圖中 ZD —— QF867 型阻容式載頻振蕩器,輸出阻抗 150Ω, Ld47 —— 47KHz 低通濾波器,阻抗 150Ω,阻帶衰耗大于61dB, Lg88 ——并聯(lián)高低通濾波器,阻抗 150Ω,三次諧波衰耗大于61dB Ld88 ——并聯(lián)高低通濾波器,阻抗 150Ω,三次諧波衰耗大于61dB FD —— 30~50KHz 放大器, 阻抗 150Ω, 增益不小于 43 dB,三次諧波衰耗b3(0)≥91 dB, DP —— Qp373 選頻電平表,輸入高阻抗, L ——被測(cè)無(wú)心罐形磁心及線圈, C ——聚苯乙烯薄膜電容器CMO-100V-707APF±0.5%,二只。
測(cè)量時(shí),所配用線圈應(yīng)用絲包銅電磁線SQJ9×0.12(JB661-75)在直徑為16.1mm的線架上繞制 120 匝, (線架為一格) , 其空心電感值為 318μH(誤差1%) 被測(cè)磁心配對(duì)安裝好后,先調(diào)節(jié)振蕩器頻率為 36.6~40KHz, 使輸出電平值為+17.4 dB, 即選頻表在 22′端子測(cè)得的主波電平 (P2)為+17.4 dB,然后在33′端子處測(cè)得輸出的三次諧波電平(P3), 則三次諧波衰耗值為:b3(+2)= P2+S+ P3 式中:S 為放大器增益dB 從以往的資料引證, 就可以發(fā)現(xiàn)諧波失真的測(cè)量是一項(xiàng)很精細(xì)的工作,其中測(cè)量系統(tǒng)的高、低通濾波器,信號(hào)源和放大器本身的三次諧波衰耗控制很嚴(yán),阻抗必須匹配,薄膜電容器的非線性也有相應(yīng)要求。濾波器的電感全由不帶任何磁介質(zhì)的大空心線圈繞成,以保證本身的“潔凈” ,不至于造成對(duì)磁心分選的誤判。 為了滿足多路通信整機(jī)的小型化和穩(wěn)定性要求, 必須生產(chǎn)低損耗高穩(wěn)定磁心。上世紀(jì) 70 年代初,1409 所和四機(jī)部、郵電部各廠,從工藝上改變了推板空氣窯燒結(jié),出窯后經(jīng)真空罐冷卻的落后方式,改用真空爐,并控制燒結(jié)、冷卻氣氛。技術(shù)上采用共沉淀法攻關(guān)試制出了μQ乘積 60 萬(wàn)和 100 萬(wàn)的低損耗高穩(wěn)定材料,在此基礎(chǔ)上,還實(shí)現(xiàn)了高μ7000~10000材料的突破,從而大大縮短了與國(guó)外企業(yè)的技術(shù)差異。當(dāng)時(shí)正處于通信技術(shù)由FDM(頻率劃分調(diào)制)向PCM(脈沖編碼調(diào)制) 轉(zhuǎn)換時(shí)期, 日本人明石雅夫發(fā)表了μQ乘積125 萬(wàn)為 0.8×10 ,100KHz)的超優(yōu)鐵氧體材料<3>,其磁滯系數(shù)降為優(yōu)鐵
為了改變目前電網(wǎng)現(xiàn)場(chǎng)作業(yè)管理的變電巡檢、變電檢修試驗(yàn)、輸電線路巡檢檢修等管理系統(tǒng)各自獨(dú)立運(yùn)行,信息不能共享,功能、效率受限,建設(shè)和維護(hù)成本高的現(xiàn)狀,提出了采用B/S+C/S構(gòu)架模式,將各現(xiàn)場(chǎng)作業(yè)管理模塊和生產(chǎn)MIS(管理系統(tǒng))集成為一體的現(xiàn)場(chǎng)作業(yè)管理系統(tǒng)的設(shè)計(jì)方案,做到各子系統(tǒng)和生產(chǎn)MIS軟硬資源共享,做到同一數(shù)據(jù)唯一入口、一處錄入多處使用。各子系統(tǒng)設(shè)備人員等基礎(chǔ)信息來(lái)源于生產(chǎn)管理系統(tǒng),各子系統(tǒng)又是生產(chǎn)管理系統(tǒng)的作業(yè)數(shù)據(jù)、缺陷信息的重要來(lái)源。經(jīng)過(guò)研究試用成功和推廣應(yīng)用,目前該系統(tǒng)已在江西電網(wǎng)220 kV及以上變電站全面應(yīng)用。
Abstract:
In order to improve the status that the substation field inspection system, substation equipments maintenance and testing system, power-line inspection and maintenance system are running independent with each other. They can?蒺t share the resource information which accordingly constrains their functions and efficiency, and their construction and maintenance costs are high. This paper introduces a field standardized work management system based on B/S+C/S mode, integrating all field work management systems based on MIS and share the equipments and employee?蒺s data of MIS,the field work data of the sub systems are the source information of MIS, by which the same single data resouce with one-time input can be utilized in multiple places. After the research and testing, this system is triumphantly using in all 220kV and above substations in Jiangxi grid.
介紹了用單片機(jī)C 語(yǔ)言實(shí)現(xiàn)無(wú)功補(bǔ)償中電容組循環(huán)投切的基本原理和算法,并舉例說(shuō)明。關(guān)鍵詞:循環(huán)投切;C51;無(wú)功補(bǔ)償中圖分類號(hào): TM76 文獻(xiàn)標(biāo)識(shí)碼: BAbstract: This paper introduces the aplication of C51 in the controlling of capacitorsuits cycle powered to be on and off in reactive compensation.it illustrate thefondamental principle and algorithm with example.Key words: cycle powered to be on and off; C51; reactive compensation
為提高功率因數(shù),往往采用補(bǔ)償電容的方法來(lái)實(shí)現(xiàn)。而電容器的容量是由實(shí)時(shí)功率因數(shù)與標(biāo)準(zhǔn)值進(jìn)行比較來(lái)決定的,實(shí)時(shí)功率因數(shù)小于標(biāo)準(zhǔn)值時(shí),需投入電容組,實(shí)時(shí)功率因數(shù)大于標(biāo)準(zhǔn)值時(shí),則需切除電容組。投切方式的不合理,會(huì)對(duì)電容器造成損壞,現(xiàn)有的控制器多采用“順序投切”方式,在這種投切方式下排序在前的電容器組,先投后切;而后面的卻后投先切。這不僅使處于前面的電容組經(jīng)常處于運(yùn)行狀態(tài),積累熱量不易散失,影響其使用壽命,而且使后面的投切開(kāi)關(guān)經(jīng)常動(dòng)作,同樣減少壽命。合理的投切方式應(yīng)為“循環(huán)投切”。這種投切方式使先投入的運(yùn)行的電容組先退出,后投的后切除,從而使各組電容及投切開(kāi)關(guān)使用機(jī)率均等,降低了電容組的平均運(yùn)行溫度,減少了投切開(kāi)關(guān)的動(dòng)作次數(shù),延長(zhǎng)了其使用壽命。
The PCA9549 provides eight bits of high speed TTL-compatible bus switching controlledby the I2C-bus. The low ON-state resistance of the switch allows connections to be madewith minimal propagation delay. Any individual A to B channel or combination of channelscan be selected via the I2C-bus, determined by the contents of the programmable Controlregister. When the I2C-bus bit is HIGH (logic 1), the switch is on and data can flow fromPort A to Port B, or vice versa. When the I2C-bus bit is LOW (logic 0), the switch is open,creating a high-impedance state between the two ports, which stops the data flow.An active LOW reset input (RESET) allows the PCA9549 to recover from a situationwhere the I2C-bus is stuck in a LOW state. Pulling the RESET pin LOW resets the I2C-busstate machine and causes all the bits to be open, as does the internal power-on resetfunction.
All inputs of the C16x family have Schmitt-Trigger input characteristics. These Schmitt-Triggers are intended to always provide proper internal low and high levels, even if anundefined voltage level (between TTL-VIL and TTL-VIH) is externally applied to the pin.The hysteresis of these inputs, however, is very small, and can not be properly used in anapplication to suppress signal noise, and to shape slow rising/falling input transitions.Thus, it must be taken care that rising/falling input signals pass the undefined area of theTTL-specification between VIL and VIH with a sufficient rise/fall time, as generally usualand specified for TTL components (e.g. 74LS series: gates 1V/us, clock inputs 20V/us).The effect of the implemented Schmitt-Trigger is that even if the input signal remains inthe undefined area, well defined low/high levels are generated internally. Note that allinput signals are evaluated at specific sample points (depending on the input and theperipheral function connected to it), at that signal transitions are detected if twoconsecutive samples show different levels. Thus, only the current level of an input signalat these sample points is relevant, that means, the necessary rise/fall times of the inputsignal is only dependant on the sample rate, that is the distance in time between twoconsecutive evaluation time points. If an input signal, for instance, is sampled throughsoftware every 10us, it is irrelevant, which input level would be seen between thesamples. Thus, it would be allowable for the signal to take 10us to pass through theundefined area. Due to the sample rate of 10us, it is assured that only one sample canoccur while the signal is within the undefined area, and no incorrect transition will bedetected. For inputs which are connected to a peripheral function, e.g. capture inputs, thesample rate is determined by the clock cycle of the peripheral unit. In the case of theCAPCOM unit this means a sample rate of 400ns @ 20MHz CPU clock. This requiresinput signals to pass through the undefined area within these 400ns in order to avoidmultiple capture events.For input signals, which do not provide the required rise/fall times, external circuitry mustbe used to shape the signal transitions.In the attached diagram, the effect of the sample rate is shown. The numbers 1 to 5 in thediagram represent possible sample points. Waveform a) shows the result if the inputsignal transition time through the undefined TTL-level area is less than the time distancebetween the sample points (sampling at 1, 2, 3, and 4). Waveform b) can be the result ifthe sampling is performed more than once within the undefined area (sampling at 1, 2, 5,3, and 4).Sample points:1. Evaluation of the signal clearly results in a low level2. Either a low or a high level can be sampled here. If low is sampled, no transition willbe detected. If the sample results in a high level, a transition is detected, and anappropriate action (e.g. capture) might take place.3. Evaluation here clearly results in a high level. If the previous sample 2) had alreadydetected a high, there is no change. If the previous sample 2) showed a low, atransition from low to high is detected now.
基于USB接口的數(shù)據(jù)采集模塊的設(shè)計(jì)與實(shí)現(xiàn)Design and Implementation of USB-Based Data Acquisition Module路 永 伸(天津科技大學(xué)電子信息與自動(dòng)化學(xué)院,天津300222)摘要文中給出基于USB接口的數(shù)據(jù)采集模塊的設(shè)計(jì)與實(shí)現(xiàn)。硬件設(shè)計(jì)采用以Adpc831與PDIUSBDI2為主的器件進(jìn)行硬件設(shè)計(jì),采用Windriver開(kāi)發(fā)USB驅(qū)動(dòng),并用Visual C十十6.0對(duì)主機(jī)軟件中硬件接口操作部分進(jìn)行動(dòng)態(tài)鏈接庫(kù)封裝。關(guān)鍵詞USB 數(shù)據(jù)采集Adpc831 PDNSBDI2 Windriver動(dòng)態(tài)鏈接庫(kù)Abstract T hed esigna ndim plementaitono fU SB-BasedD ataA cquisiitonM oduleis g iven.Th ec hips oluitonm ainlyw ithA dpc831a ndP DTUSBD12i sused for hardware design. The USB drive is developed場(chǎng)Wmdriver, and the operation on the hardware interface is packaged into Dynamic Link Libraries場(chǎng)Visual C++6.0. Keywords USB DataA cquisition Adttc831 PDfUSBD12 Windriver0 引言US B總 線 是新一代接口總線,最初推出的目的是為了統(tǒng)一取代PC機(jī)的各類外設(shè)接口,迄今經(jīng)歷了1.0,1.1與2.0版本3個(gè)標(biāo)準(zhǔn)。在國(guó)內(nèi)基于USB總線的相關(guān)設(shè)計(jì)與開(kāi)發(fā)也得到了快速的發(fā)展,很多設(shè)計(jì)者從各自的應(yīng)用領(lǐng)域,用不同方案設(shè)計(jì)出了相應(yīng)的裝置[1,2]。數(shù)據(jù)采集是工業(yè)控制中一個(gè)普遍而重要的環(huán)節(jié),因此開(kāi)發(fā)基于USB接口的數(shù)據(jù)采集模塊具有很強(qiáng)的現(xiàn)實(shí)應(yīng)用意義。雖然 US B總線標(biāo)準(zhǔn)已經(jīng)發(fā)展到2.0版本,但由于工業(yè)控制現(xiàn)場(chǎng)干擾信號(hào)的情況比較復(fù)雜,高速數(shù)據(jù)傳輸?shù)目煽啃圆蝗菀妆槐WC,并且很多場(chǎng)合對(duì)數(shù)據(jù)采集的實(shí)時(shí)性要求并不高,開(kāi)發(fā)2.0標(biāo)準(zhǔn)產(chǎn)品的成本又較1.1標(biāo)準(zhǔn)產(chǎn)品高,所以筆者認(rèn)為,在工業(yè)控制領(lǐng)域,目前開(kāi)發(fā)基于USB總線1.1標(biāo)準(zhǔn)實(shí)現(xiàn)的數(shù)據(jù)采集模塊的實(shí)用意義大于相應(yīng)2.0標(biāo)準(zhǔn)模塊。
磁芯電感器的諧波失真分析 摘 要:簡(jiǎn)述了改進(jìn)鐵氧體軟磁材料比損耗系數(shù)和磁滯常數(shù)ηB,從而降低總諧波失真THD的歷史過(guò)程,分析了諸多因數(shù)對(duì)諧波測(cè)量的影響,提出了磁心性能的調(diào)控方向。 關(guān)鍵詞:比損耗系數(shù), 磁滯常數(shù)ηB ,直流偏置特性DC-Bias,總諧波失真THD Analysis on THD of the fer rite co res u se d i n i nductancShi Yan Nanjing Finemag Technology Co. Ltd., Nanjing 210033 Abstract: Histrory of decreasing THD by improving the ratio loss coefficient and hysteresis constant of soft magnetic ferrite is briefly narrated. The effect of many factors which affect the harmonic wave testing is analysed. The way of improving the performance of ferrite cores is put forward. Key words: ratio loss coefficient,hysteresis constant,DC-Bias,THD 近年來(lái),變壓器生產(chǎn)廠家和軟磁鐵氧體生產(chǎn)廠家,在電感器和變壓器產(chǎn)品的總諧波失真指標(biāo)控制上,進(jìn)行了深入的探討和廣泛的合作,逐步弄清了一些似是而非的問(wèn)題。從工藝技術(shù)上采取了不少有效措施,促進(jìn)了質(zhì)量問(wèn)題的迅速解決。本文將就此熱門話題作一些粗淺探討。 一、 歷史回顧 總諧波失真(Total harmonic distortion) ,簡(jiǎn)稱THD,并不是什么新的概念,早在幾十年前的載波通信技術(shù)中就已有嚴(yán)格要求<1>。1978年郵電部公布的標(biāo)準(zhǔn)YD/Z17-78“載波用鐵氧體罐形磁心”中,規(guī)定了高μQ材料制作的無(wú)中心柱配對(duì)罐形磁心詳細(xì)的測(cè)試電路和方法。如圖一電路所示,利用LC組成的150KHz低通濾波器在高電平輸入的情況下測(cè)量磁心產(chǎn)生的非線性失真。這種相對(duì)比較的實(shí)用方法,專用于無(wú)中心柱配對(duì)罐形磁心的諧波衰耗測(cè)試。 這種磁心主要用于載波電報(bào)、電話設(shè)備的遙測(cè)振蕩器和線路放大器系統(tǒng),其非線性失真有很嚴(yán)格的要求。
圖中 ZD —— QF867 型阻容式載頻振蕩器,輸出阻抗 150Ω, Ld47 —— 47KHz 低通濾波器,阻抗 150Ω,阻帶衰耗大于61dB, Lg88 ——并聯(lián)高低通濾波器,阻抗 150Ω,三次諧波衰耗大于61dB Ld88 ——并聯(lián)高低通濾波器,阻抗 150Ω,三次諧波衰耗大于61dB FD —— 30~50KHz 放大器, 阻抗 150Ω, 增益不小于 43 dB,三次諧波衰耗b3(0)≥91 dB, DP —— Qp373 選頻電平表,輸入高阻抗, L ——被測(cè)無(wú)心罐形磁心及線圈, C ——聚苯乙烯薄膜電容器CMO-100V-707APF±0.5%,二只。
測(cè)量時(shí),所配用線圈應(yīng)用絲包銅電磁線SQJ9×0.12(JB661-75)在直徑為16.1mm的線架上繞制 120 匝, (線架為一格) , 其空心電感值為 318μH(誤差1%) 被測(cè)磁心配對(duì)安裝好后,先調(diào)節(jié)振蕩器頻率為 36.6~40KHz, 使輸出電平值為+17.4 dB, 即選頻表在 22′端子測(cè)得的主波電平 (P2)為+17.4 dB,然后在33′端子處測(cè)得輸出的三次諧波電平(P3), 則三次諧波衰耗值為:b3(+2)= P2+S+ P3 式中:S 為放大器增益dB 從以往的資料引證, 就可以發(fā)現(xiàn)諧波失真的測(cè)量是一項(xiàng)很精細(xì)的工作,其中測(cè)量系統(tǒng)的高、低通濾波器,信號(hào)源和放大器本身的三次諧波衰耗控制很嚴(yán),阻抗必須匹配,薄膜電容器的非線性也有相應(yīng)要求。濾波器的電感全由不帶任何磁介質(zhì)的大空心線圈繞成,以保證本身的“潔凈” ,不至于造成對(duì)磁心分選的誤判。 為了滿足多路通信整機(jī)的小型化和穩(wěn)定性要求, 必須生產(chǎn)低損耗高穩(wěn)定磁心。上世紀(jì) 70 年代初,1409 所和四機(jī)部、郵電部各廠,從工藝上改變了推板空氣窯燒結(jié),出窯后經(jīng)真空罐冷卻的落后方式,改用真空爐,并控制燒結(jié)、冷卻氣氛。技術(shù)上采用共沉淀法攻關(guān)試制出了μQ乘積 60 萬(wàn)和 100 萬(wàn)的低損耗高穩(wěn)定材料,在此基礎(chǔ)上,還實(shí)現(xiàn)了高μ7000~10000材料的突破,從而大大縮短了與國(guó)外企業(yè)的技術(shù)差異。當(dāng)時(shí)正處于通信技術(shù)由FDM(頻率劃分調(diào)制)向PCM(脈沖編碼調(diào)制) 轉(zhuǎn)換時(shí)期, 日本人明石雅夫發(fā)表了μQ乘積125 萬(wàn)為 0.8×10 ,100KHz)的超優(yōu)鐵氧體材料<3>,其磁滯系數(shù)降為優(yōu)鐵