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参数资料
| 型号: | LT1507IN8-3.3#PBF |
| 厂商: | Linear Technology |
| 文件页数: | 12/20页 |
| 文件大小: | 0K |
| 描述: | IC REG BUCK 3.3V 1.5A 8DIP |
| 标准包装: | 50 |
| 类型: | 降压(降压) |
| 输出类型: | 固定 |
| 输出数: | 1 |
| 输出电压: | 3.3V |
| 输入电压: | 4 V ~ 15 V |
| PWM 型: | 电流模式 |
| 频率 - 开关: | 500kHz |
| 电流 - 输出: | 1.5A |
| 同步整流器: | 无 |
| 工作温度: | -40°C ~ 85°C |
| 安装类型: | 通孔 |
| 封装/外壳: | 8-DIP(0.300",7.62mm) |
| 包装: | 管件 |
| 供应商设备封装: | 8-PDIP |
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�
�LT1507�
�APPLICATIO� N� S� I� N� FOR� M� ATIO� N�
�Example:� with� V� OUT� =� 3.3V,� V� IN� =� 5V;�
�Discontinuous� mode:�
�(� I� P� )� (� f� )(� L� )(� V� IN� )�
�V� OUT� /V� IN� =� 3.3/5� =� 0.67�
�I� P� =� 1.75� –� (0.5)(0.66)� =� 1.42A�
�I� OUT� (� MAX� )� =�
�2�
�2� (� V� OUT� )(� V� IN� –� V� OUT� )�
�(� )� (� )� ?� ?� ?� 15�
�?� ?� ?�
�I� OUT� (� MAX� )� =�
�I� OUT� (� MAX� )� =� I� P� –�
�I� OUT� (� MAX� )� =� 1� .� 42� –�
�(� )� (� )� ?� 5�
�(� )� (� )�
�?� 6� ?� ?�
�3� ?�
�?�
�??� ??�
�??�
�??�
�I� D� (� AVG� )� =� OUT� IN� OUT�
�Maximum� load� current� would� be� equal� to� maximum�
�switch� current� for� an� infinitely� large� inductor,� but� with�
�finite� inductor� size,� maximum� load� current� is� reduced� by�
�one� half� peak-to-peak� inductor� current.� The� following�
�formula� assumes� continuous� mode� operation;� the� term� on�
�the� right� must� be� less� than� one� half� of� I� P� .�
�Continuous� mode:�
�(V� OUT� )(V� IN� – V� OUT� )�
�2� (� L� )(� f� )(� V� IN� )�
�For� the� conditions� above,� with� L� =� 5� μ� H� and� f� =� 500kHz;�
�(� 3� .� 3� )(� 5� –� 3� .� 3� )�
�2� ?� 5� 10� ?� 6� ?� ?� 500� 10� 3�
�?� ?� ?�
�?� ?� ?�
�=� 1� .� 42� –� 0� .� 22� =� 1� .� 2� A�
�At� V� IN� =� 8V,� V� OUT� /� V� IN� =� 0.41,� so� I� P� is� equal� to� 1.5A� and�
�I� OUT(MAX)� is� equal� to;�
�(� 3� .� 3� )(� 8� –� 3� .� 3� )�
�1� .� 5� –�
�2� 5� 10� 500� 10� 8�
�=� 1� .� 5� –� 0� .� 39� =� 1� .� 11� A�
�Note� that� there� is� less� load� current� available� at� the� higher�
�input� voltage� because� inductor� ripple� current� increases.�
�This� is� not� always� the� case.� Certain� combinations� of�
�inductor� value� and� input� voltage� range� may� yield� lower�
�available� load� current� at� the� lowest� input� voltage� due� to�
�reduced� peak� switch� current� at� high� duty� cycles.� If� load�
�current� is� close� to� the� maximum� available,� please� check�
�maximum� available� current� at� both� input� voltage�
�extremes.� To� calculate� actual� peak� switch� current� with� a�
�given� set� of� conditions,� use:�
�Example:� with� L� =� 2� μ� H,� V� OUT� =� 5V� and� V� IN(MAX)� =� 15V;�
�(� 1� .� 5� )� 2� ?� 500� 10� 3� ?� ?� 2� 10� ?� 6�
�2� (� 5� )(� 15� –� 5� )�
�=� 338� mA�
�The� main� reason� for� using� such� a� tiny� inductor� is� that� it� is�
�physically� very� small,� but� keep� in� mind� that� peak-to-peak�
�inductor� current� will� be� very� high.� This� will� increase� output�
�ripple� voltage.� If� the� output� capacitor� has� to� be� made� larger�
�to� reduce� ripple� voltage,� the� overall� circuit� could� actually�
�be� larger.�
�CATCH� DIODE�
�The� suggested� catch� diode� (D1)� is� a� 1N5818� Schottky� or�
�its� Motorola� equivalent,� MBR130.� It� is� rated� at� 1A� average�
�forward� current� and� 30V� reverse� voltage.� Typical� forward�
�voltage� is� 0.42V� at� 1A.� The� diode� conducts� current� only�
�during� switch� OFF� time.� Peak� reverse� voltage� is� equal� to�
�regulator� input� voltage.� Average� forward� current� in� normal�
�operation� can� be� calculated� from:�
�I (V – V� )�
�V� IN�
�This� formula� will� not� yield� values� higher� than� 1A� with�
�maximum� load� current� of� 1.25A� unless� the� ratio� of� input� to�
�output� voltage� exceeds� 5:1.� The� only� reason� to� consider� a�
�larger� diode� is� the� worst-case� condition� of� a� high� input�
�voltage� and� overloaded� (not� shorted)� output.� Under� short-�
�circuit� conditions,� foldback� current� limit� will� reduce� diode�
�current� to� less� than� 1A,� but� if� the� output� is� overloaded� and�
�does� not� fall� to� less� than� 1/3� of� nominal� output� voltage,�
�foldback� will� not� take� effect.� With� the� overloaded� condi-�
�I� SWITCH� (� PEAK� )� =� I� OUT� +� OUT� IN� OUT�
�V� (� V� –� V�
�2� (� L� )(� f� )(� V� IN� )�
�)�
�tion,� output� current� will� increase� to� a� typical� value� of� 1.8A,�
�determined� by� peak� switch� current� limit� of� 2A.� With� V� IN� =�
�10V,� V� OUT� =� 2V� (3.3V� overloaded)� and� I� OUT� =� 1.8A:�
�For� lighter� loads� where� discontinuous� mode� operation� can�
�be� used,� maximum� load� current� is� equal� to:�
�I� D� (� AVG� )� =�
�1.8 (10 – 2� )�
�10�
�=� 1� .� 44� A�
�12�
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