参数资料
型号: LTC3216EDE#TRPBF
厂商: Linear Technology
文件页数: 9/12页
文件大小: 0K
描述: IC CHARGE PUMP LED 12-DFN
标准包装: 2,500
应用: 转换器,高电流 LED
输入电压: 2.9 V ~ 4.4 V
输出数: 1
输出电压: 多重
工作温度: -40°C ~ 85°C
安装类型: 表面贴装
封装/外壳: 12-WFDFN 裸露焊盘
供应商设备封装: 12-DFN(4x3)
包装: 带卷 (TR)
LTC3216
APPLICATIONS INFORMATION
10nH
Table 2. Recommended Capacito r Vendors
V IN
AVX
www.avxcorp.com
0.1μF
2.2μF
LTC3216
Kemet
www.kemet.com
GND
3216 F02
Figure 2. 10nH Inductor Used for Input Noise
Reduction (Approximately 1cm of Wire)
Murata
Taiyo Yuden
Vishay
TDK
www.murata.com
www.t-yuden.com
www.vishay.com
www.tdk.com
Flying Capacitor Selection
Warning: Polarized capacitors such as tantalum or alumi-
num should never be used for the ?ying capacitors since
their voltage can reverse upon start-up of the LTC3216.
Ceramic capacitors should always be used for the ?ying
capacitors.
The ?ying capacitors control the strength of the charge
pump. In order to achieve the rated output current it is
necessary to have at least 2.2μF of actual capacitance
for each of the ?ying capacitors. Capacitors of different
materials lose their capacitance with higher temperature
and voltage at different rates. For example, a ceramic
capacitor made of X7R material will retain most of its
capacitance from – 40 o C to 85 o C whereas a Z5U or Y5V
style capacitor
will lose considerable capacitance over that range. Z5U and
Y5V capacitors may also have a very poor voltage coef?cient
causing them to lose 60% or more of their capacitance when
the rated voltage is applied. Therefore, when comparing
different capacitors, it is often more appropriate to compare
the amount of achievable capacitance for a given case size
rather than comparing the speci?ed capacitance value. For
example, over rated voltage and temperature conditions,
a 1μF, 10V, Y5V ceramic capacitor in a 0603 case may not
provide any more capacitance than a 0.22μF, 10V, X7R
available in the same case. The capacitor manufacturer’s
data sheet should be consulted to determine what value
of capacitor is needed to ensure minimum capacitances
at all temperatures and voltages.
Table 2 shows a list of ceramic capacitor manufacturers
and how to contact them.
Layout Considerations and Noise
Due to its high switching frequency and the transient
currents produced by the LTC3216, careful board layout
is necessary. A true ground plane and short connections
to all capacitors will improve performance and ensure
proper regulation under all conditions.
The ?ying capacitor pins C1 + , C2 + , C1 – and C2 – will have
very high edge rate waveforms. The large dv/dt on these
pins can couple energy capacitively to adjacent PCB runs.
Magnetic ?elds can also be generated if the ?ying capacitors
are not close to the LTC3216 (i.e., the loop area is large).
To decouple capacitive energy transfer, a Faraday shield
may be used. This is a grounded PCB trace between the
sensitive node and the LTC3216 pins. For a high quality
AC ground, it should be returned to a solid ground plane
that extends all the way to the LTC3216.
Power Ef?ciency
To calculate the power ef?ciency ( η ) of a white LED
driver chip, the LED power should be compared to the
input power. The difference between these two numbers
represents lost power whether it is in the charge pump
or the current sources. Stated mathematically, the power
ef?ciency is given by:
P LED (4)
P IN
The ef?ciency of the LTC3216 depends upon the mode in
which it is operating. Recall that the LTC3216 operates
as a pass switch, connecting V IN to CPO, until dropout
is detected at the I LED pin. This feature provides the op-
timum ef?ciency available for a given input voltage and
3216fc
9
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