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参数资料
| 型号: | MIC3232YMM |
| 厂商: | Micrel Inc |
| 文件页数: | 14/19页 |
| 文件大小: | 0K |
| 描述: | IC LED DRVR HP CONS CURR 10-MSOP |
| 标准包装: | 100 |
| 恒定电流: | 是 |
| 拓扑: | PWM,升压(升压) |
| 输出数: | 1 |
| 内部驱动器: | 是 |
| 类型 - 主要: | 通用 |
| 频率: | 400kHz |
| 电源电压: | 6 V ~ 45 V |
| 安装类型: | 表面贴装 |
| 封装/外壳: | 10-TFSOP,10-MSOP(0.118",3.00mm 宽) |
| 供应商设备封装: | 10-MSOP |
| 包装: | 管件 |
| 工作温度: | -40°C ~ 125°C |
| 产品目录页面: | 1082 (CN2011-ZH PDF) |
| 其它名称: | 576-3405-5 |
��
�
�0� .� 45� =� I� RAMP� � R� SLC� � D� +� I� L� _� pk� Limit� � R� CS�
�V� OUT� ?� V� IN� MIN� )� � R� CS�
�R� SLC� =�
�Eq.� (13)�
�L� =� IN�
�=� 43� μ� H�
�12� V� ×� 0� .� 56� ×� 2� μ� s�
�R� CS� =�
�Eq.� (13a)�
�I� in� _� PP� =�
�V� IN� _� nom� � D� nom� � T� 12� v� � 0� .� 56� � 2� us�
�R� CS� =�
�(� 28� v� ?� 8� v� )� ×� (� 0� .� 50� )� +� 1� .� 9� A� =� 179� m� Ω�
�(� 28� ?� 8� )� ×� 150� m� Ω�
�R� SLC� =� =� 511� Ω�
�(� I� IN� _� RMS� _� max� )� 2� ?� (� I� IN� 12� PP� )�
�Eq.� (13b)�
�I� IN� _� AVE� _� max� =�
�Micrel,� Inc.�
�(see� the� current� waveforms� in� Figure� 5).�
�It� can� be� difficult� to� find� large� inductor� values� with� high�
�saturation� currents� in� a� surface� mount� package.� Due� to�
�this,� the� percentage� of� the� ripple� current� may� be� limited�
�by� the� available� inductor.� It� is� recommended� to� operate�
�in� the� continuous� conduction� mode.� The� selection� of� L�
�described� here� is� for� continuous� conduction� mode.�
�V� � D� � T�
�I� in� _� PP�
�Using� the� nominal� values,� we� get:�
�L� =�
�0� .� 31� A�
�Select� the� next� higher� standard� inductor� value� of� 47μH.�
�Going� back� and� calculating� the� actual� ripple� current�
�gives:�
�=� =� 0� .� 29� A� PP�
�L� 47� uh�
�The� average� input� current� is� different� than� the� RMS� input�
�current� because� of� the� ripple� current.� If� the� ripple� current�
�is� low,� then� the� average� input� current� nearly� equals� the�
�RMS� input� current.� In� the� case� where� the� average� input�
�current� is� different� than� the� RMS,� Equation� 10� shows� the�
�following:�
�2�
�_�
�MIC3230/1/2�
�Eq.� (14a)�
�To� calculate� the� value� of� the� slope� compensation� resistance,�
�R� SLC� ,� we� can� use� Equation� 5:�
�MAX�
�L� ×� 250� μ� A� ×� F� SW�
�First� we� must� calculate� R� CS� ,� which� is� given� below� in�
�Equation� 15:�
�Eq.� (15)� 0� .� 45�
�(� VOUT� MAX� ?� VIN� MIN� )� � D� max� +� I� L� _� pk� Limit�
�L� � F� SW�
�Therefore;�
�0� .� 45�
�47� μ� H� ×� 500� kHz�
�Using� a� standard� value� 150m� ?� resistor� for� R� CS� ,� we� obtain�
�the� following� for� R� SLC� :�
�47� μ� H� ×� 250� μ� A� ×� 500� kHz�
�Use� the� next� higher� standard� value� if� this� not� a� standard�
�value.� In� this� example� 511� ?� is� a� standard� value.�
�Check:� Because� we� must� use� a� standard� value� for� Rcs� and�
�R� SLC;� I� L� _� pk� Limit� may� be� set� at� a� different� level� (if� the� calculated�
�value� isn’t� a� standard� value)� and� we� must� calculate� the�
�actual� I� L� _� pk� Limit� value� (remember� I� L� _� pk� Limit� is� the� same� as�
�I� IN� _� AVE� _� max� =�
�(� 1� .� 64� )� 2� ?� (� 0� .� 29� )� 2� /� 12� ≈� 1� .� 64� A�
�I� in� _� pk� Limit� ).�
�I� in� _� pk� Limit� =�
�I� in� _� actual� Limit� =�
�=� 2� .� 34� A�
�Eq.� (13c)� P� INDUCTOR� =� I� in� _� RMS� _� max� � DCR�
�The� Maximum� Peak� input� current� I� L_PK� can� found� using�
�equation� 11:�
�I� L� _� PK� _� max� =� I� IN� _� AVE� _� max� +� 0� .� 5� � I� L� _� PP� _� max� =� 1� .� 78� A�
�The� saturation� current� (I� SAT� )� at� the� highest� operating�
�temperature� of� the� inductor� must� be� rated� higher� than�
�this.�
�The� power� dissipated� in� the� inductor� is:�
�2�
�Current� Limit� and� Slope� Compensation�
�Having� calculated� the� I� L_pk� above,� We� can� set� the� current�
�limit� 20%� above� this� maximum� value:�
�I� L� _� pk� Limit� =� 1� .� 2� � 1� .� 6� A� =� 1� .� 9� A�
�The� internal� current� limit� comparator� reference� is� set� at�
�0.45V,� therefore� when� V� IS� _� PIN� =� 0� .� 45� ,� the� IC� enters�
�current� limit.�
�Eq.� (14)� 0� .� 45� =� (� V� A� PK� +� Vcs� PK� )�
�Where� V� A� PK� is� the� peak� of� the� V� A� waveform� and�
�Vcs� PK� is� the� peak� of� the� Vcs� waveform�
�Rearranging� Equation� 14a� to� solve� for� I� L� _� pk� Limit� :�
�( 0 .45� ?� I� RAMP� � R� SLC� � D� )�
�R� CS�
�( 0 . 45� ?� 250� ua� � 511� � 0 . 75 )�
�.� 150�
�This� is� higher� than� the� initial� 1� .� 2� � I� L� _� PK� _� max� =� 1� .� 9� A� limit�
�because� we� have� to� use� standard� values� for� R� CS� and� for�
�R� SLC� .� If� I� in� _� actual� Limit� is� too� high� than� use� a� higher� value� for�
�R� CS� .� The� calculated� value� of� R� CS� for� a� 1.9A� current� limit� was�
�179m� ?� .� In� this� example,� we� have� chosen� a� lower� value�
�which� results� in� a� higher� current� limit.� If� we� use� a� higher�
�standard� value� the� current� limit� will� have� a� lower� value.� The�
�designer� does� not� have� the� same� choices� for� small� valued�
�resistors� as� with� larger� valued� resistors.� The� choices� differ�
�from� resistor� manufacturers.� If� too� large� a� current� sense�
�resistor� is� selected,� the� maximum� output� power� may� not� be�
�able� to� be� achieved� at� low� input� line� voltage� levels.� Make�
�sure� the� inductor� will� not� saturate� at� the� actual� current� limit�
�I� in� _� actual� Limit� .�
�Perform� a� check� at� I� IN� =2.34Apk.�
�V� IS� _� PIN� =� 250� μ� A� ×� (� 0� .� 78� )� ×� 511� Ω� +� 2� .� 34� A� ×� 150� m� Ω� =� 0� .� 45� V�
�March� 2011�
�14�
�M9999-030311-D�
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