999精品在线视频,手机成人午夜在线视频,久久不卡国产精品无码,中日无码在线观看,成人av手机在线观看,日韩精品亚洲一区中文字幕,亚洲av无码人妻,四虎国产在线观看 ?

A Study on a Inductor Simulation by PExprt

2015-07-10 22:04:22S.E.Cho1S.J.Park2
卷宗 2015年1期

S.E. Cho 1?S.J. Park 2

Abstract: Recently, there has been increasing demand for power conversion system. The input current of THD for power conversion system has affected the quality of current. To improve this, the study of inductor has been booming.

This inductor is the reason of noise, also it is a component which affects convertors size and heat. To solve this, by using the PExpert program of ANSOFT, it is possible to design the convertor optimized for the product. This study has simulated several kinds of inductor by using PExpert. In order to select the optimized inductor for the system, weve simulated inductors power losses, core losses, wire losses, and temperature rise according to its type.

Keyword: DC-DC Converter ,Power Loss, PExprt, Simulation, Temperature

Introduction

We originally designed inductor and transformer with formulation. We should consider a lot of

variables such as the material of core, the size of air gap, the capacitance between coils and etc,

when we are designing inductor and transformer. However, we cannot consider this by

formulation. Thus, we go through several times of trials and errors to make inductor or

transformer which has needed specific characteristic.[1] We have designed inductor, multi winding

transformer, coupled inductor by using PExpert. By using these simulations we optimized core size,

core material, the number of turns, the length of air gap, the diameter of electric wire. PExpert

simulation also calculates winding losses, core losses, DC/AC resistance, valid current, excited

inductance, leakage inductance, fringing flux around air gap. The designing and building

procedure of inductor and transformer are difficult. This study has designed inductor and

transformer by using PExpert of Ansoft, one of the designing tool for transformer and inductor.

As designing tool for transformer and inductor, PExpert of Ansoft helps easier and precise

designing of those.

Main subject

PExpert of Ansoft help easier and more precise designing , as designing tool of transformer and

inductor. Table1 is designing specification of BUCK Converter. We have simulated various kinds

of inductor to optimize the best inductor that suits the designing specification of table1.

Table 1. Specification of design for Buck converter

Input Voltage [Vpeak] 150

Switching Frequency [kHz] 100

Out Voltage [Vpeak] 25

Inductance [uH] 250.10

Power [W] 100

Inductor current ripple[mA] 833

Inductor average current[A] 4.0

Conduction mode Continuous

Duty cycle[%] 16.7

Conduction mode Continuous

Figure1 is applied circuit and waveform.

Fig. 1. Circuit and waveform of buck converter.

Figure 2 is design input of converter. Weve considered Gap position as central leg, Geometry as

Concentric component, and Gap as Fringing Gap Energy when we simulate the inductor.

Maximum Temperature is 200 deg. Maximum parallel turns are 3. Ambient Temperature is 25 deg.

Figure 3 shows the properties of inductor core. (a) is Jiles Atherton Hysteresis Curve of core(PC40).

(b) shows the parameter of Core (PC40) losses. (c) shows the electric properties of Core (PC40)

In Modeling option, Windidng losses calculation is harmonics and AC resistance(skin), number of

harmonics is 32. We used Steinmetz formula for Core losses calculation. Figure 4 is shape and

dimension properties of PQ26/25-Z12.

Figure 5 is properties of wire that are applied to inductor.

Figure 6 is constructive drawing of simulation inductor.

Figure 6 represents the AC resistance of inductor wire according to its frequency.

Figure 7 shows inductor current according to its frequency.

Figure 8 shows distribution of inductor temperature according to distance. Max. temperature : 41.58 deg. Core temperature : 40.13 deg.

Core losses calculation using Steinmetz equation. Figure 9 is Performance results at PQ26/25-Z12, AWG19, 37turns, 1 parallel turn. Core losses calculation using Steinmetz equation

Core losses[W] = vol[m^3] * k * f[Hz]^alpha * B[T]^beta --------------(1)

Where, f(frequency):100[kHz], vol(volume): 6549[mm^3], B(flux density):23.86[Mt], k : 0.32

Alpha : 1.61, beta : 2.68

Core losses : 10.554[mW]

DC winding losses calculation.

Dc winding losses[W] = Rdc[ohm] * Irms^2 ----------------------------(2)

Rdc[ohm] = resistivity[ohm*m] * length[m] -----------------------------(3)

Where, DC resistance per turn : 1.64[mohm],

DC resistance per parallel branch[37 turn] : 60.688[mohm],

Total DC resistance : 60.688[mohm], parallel turn : 1, Irms : 4.007[A].

DC Losses : 974.511[mW].

Window filling : 34.38[%], window rate : 68.40[%], current density : 6.16[A/mm^2]

Figure 10 shows the result of simulation in window filling, power losses, temperature etc when we changed wire into awg19,22,25,28,31 in PQ26/25-Z12 core, and parallel turns changed into 1,2,3.

In this case, if we consider temperature and power loss and etc, we can find out that the case of PQ26/25-Z12 core, AWG19, 37turns, 1 parallel turns is the optimized option.

3. Conclusion

The part that this study covers with simulation is inductor.

It is possible to design optimized inductor not only by analyzing the reason of temperature rise, noise from structure and topology but also by calculating the inductor capacity that are required by the system. We have optimally simulated inductor which can be applied to normal form of power conversion system. With this study, It is possible to industrialize minimization of inverter/convertor size and optimization of those by enabling the loss optimization of inductor which affect the size of power conversion system.

Acknowledgement

The present research has been conducted by the Research Grant of Seoil University in 2012.

Reference

[1] ] Su-bin Han, “Status and Using of CAD program for Transformer / Inductor Design”, KIPE

Magazine, pp.31-35, 2006. April.

[2] Marlin O. Thurston, “Transformer and Inductor Design Handbook“, Marcel Dekker, Inc.

[3] Ansoft Korea Homepage,"http://www.ansoft.co.kr/html/pro/pe.php"

作者簡介

S.E. Cho

Department of Electrical Engineering, Seoil University Korea

Seoil University gil 22 Jungnang-Gu, Seoul, Korea

S.J. Park

Department of Electrical Engineering, Chonnam National University Korea

Yongbong-ro 77, Bug-gu, Kwangju, Korea

主站蜘蛛池模板: 99久久国产精品无码| 日本高清免费一本在线观看| 久久99久久无码毛片一区二区| 日本精品影院| 国产精品无码一二三视频| a级毛片视频免费观看| 很黄的网站在线观看| 91伊人国产| 久久国产精品国产自线拍| 另类欧美日韩| 91久久精品日日躁夜夜躁欧美| 精品福利国产| 亚洲天堂首页| 毛片在线看网站| 亚洲色图欧美激情| 国产福利大秀91| 免费全部高H视频无码无遮掩| 91 九色视频丝袜| 久久 午夜福利 张柏芝| 亚洲综合二区| 国产性精品| 在线看片中文字幕| 幺女国产一级毛片| 欧美高清国产| 原味小视频在线www国产| 露脸一二三区国语对白| 69av免费视频| 99一级毛片| 亚洲AⅤ波多系列中文字幕| 国产系列在线| 一本综合久久| 色爽网免费视频| 伊人蕉久影院| 日本一区二区三区精品国产| 九色免费视频| 在线视频97| 亚洲欧美另类中文字幕| 深夜福利视频一区二区| 国禁国产you女视频网站| 欧美成人怡春院在线激情| 在线国产欧美| 97在线免费| 亚洲视频在线青青| 日韩无码视频播放| 欧美区日韩区| 成人一级黄色毛片| 99青青青精品视频在线| 亚洲伊人电影| 国产又粗又猛又爽视频| 久久久久久高潮白浆| 亚洲日本中文字幕天堂网| 色悠久久综合| 伊人婷婷色香五月综合缴缴情| 免费在线国产一区二区三区精品| 国产免费高清无需播放器| 亚洲黄色成人| 久久精品中文字幕免费| 国产在线观看第二页| 中文字幕永久在线看| аⅴ资源中文在线天堂| 97青青青国产在线播放| 精品乱码久久久久久久| 97se亚洲综合在线天天| 久久semm亚洲国产| 国产精品综合久久久| 99免费在线观看视频| 潮喷在线无码白浆| 一本大道香蕉中文日本不卡高清二区| 久久女人网| 色噜噜中文网| 72种姿势欧美久久久大黄蕉| 噜噜噜久久| 青青操视频免费观看| 极品私人尤物在线精品首页 | 久青草网站| 亚洲美女一级毛片| 青青青国产视频| 久久久久久尹人网香蕉 | 国产美女叼嘿视频免费看| 黄片在线永久| 福利小视频在线播放| 日韩区欧美区|