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LP3991TL-1.7/NOPB bảng dữ liệu(PDF) 13 Page - Texas Instruments

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LP3991TL-1.7/NOPB bảng dữ liệu(HTML) 13 Page - Texas Instruments

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DC BIAS (V)
0402, 6.3V, X5R
0603, 10V, X5R
100
80
60
40
20
13
LP3991
www.ti.com
SNVS296J – DECEMBER 2006 – REVISED JUNE 2016
Product Folder Links: LP3991
Submit Documentation Feedback
Copyright © 2006–2016, Texas Instruments Incorporated
Figure 13. Effect of DC Bias on Capacitance Value
As an example Figure 13 shows a typical graph showing a comparison of capacitor case sizes in a capacitance
vs. DC Bias plot. As shown in Figure 13, as a result of the DC Bias condition, the capacitance value may drop
below the minimum capacitance value given in the recommended capacitor table. Note that Figure 13 shows the
capacitance out of spec for the 0402 case size capacitor at higher bias voltages. TI therefore recommends that
the capacitor manufacturers' specifications for the nominal value capacitor are consulted for all conditions as
some capacitor sizes (for example, 0402) may not be suitable in the actual application. Ceramic capacitors have
the lowest ESR values, thus making them best for eliminating high frequency noise. The ESR of a typical 4.7-µF
ceramic capacitor is in the range of 20 m
Ω to 40 mΩ, which easily meets the ESR requirement for stability for the
LP3991. The temperature performance of ceramic capacitors varies by type. Capacitor type X7R is specified with
a tolerance of ±15% over the temperature range –55°C to +125°C. The X5R has a similar tolerance over the
reduced temperature range of –55°C to +85°C. Some large value ceramic capacitors (4.7 µF) are manufactured
with Z5U or Y5V temperature characteristics, which can result in the capacitance dropping by more than 50% as
the temperature varies from 25°C to +85°C. Therefore, X7R or X5R types are recommended in applications
where the temperature changes significantly above or below 25°C.
Tantalum capacitors are less desirable than ceramic for use as output capacitors because they are more
expensive when comparing equivalent capacitance and voltage ratings in the 1-µF to 4.7-µF range. Another
important consideration is that tantalum capacitors have higher ESR values than equivalent size ceramics. This
means that while it may be possible to find a tantalum capacitor with an ESR value within the stable range, it
would have to be larger in capacitance (which means bigger and more costly) than a ceramic capacitor with the
same ESR value. The ESR of a typical tantalum increases about 2:1 as the temperature goes from 25°C down to
–40°C, so some guard band must be allowed.
8.2.2.6 Power Dissipation
Knowing the device power dissipation and proper sizing of the thermal plane connected to the tab or pad is
critical to ensuring reliable operation. Device power dissipation depends on input voltage, output voltage, and
load conditions and can be calculated with Equation 1.
PD(MAX) = (VIN(MAX) – VOUT) × IOUT
(1)
Power dissipation can be minimized, and greater efficiency can be achieved, by using the lowest available
voltage drop option that would still be greater than the dropout voltage (VDO). However, keep in mind that higher
voltage drops result in better dynamic (that is, PSRR and transient) performance.
On the LP3991 DSBGA (YZR) package, the primary conduction path for heat is through the four bumps to the
PCB. The maximum allowable junction temperature (TJ(MAX)) determines maximum power dissipation allowed
(PD(MAX)) for the device package.
Power dissipation and junction temperature are most often related by the junction-to-ambient thermal resistance
(RθJA) of the combined PCB and device package and the temperature of the ambient air (TA), according to
Equation 2 or Equation 3:
TJ(MAX) = TA(MAX) + ( RθJA × PD(MAX))
(2)
PD(MAX) = (TJ(MAX) – TA(MAX)) / RθJA
(3)



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