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LTM4644 Datasheet(PDF) 21 Page - Linear Technology

Part # LTM4644
Description  Dual 25A or Single 50A DC/DC 關Module Regulator with 1% DC Accuracy
PDF  38 Pages
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Manufacturer  LINER [Linear Technology]
Direct Link  http://www.linear.com
Logo LINER - Linear Technology

LTM4644 Datasheet(HTML) 21 Page - Linear Technology

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LTM4650A
21
4650afb
For more information www.linear.com/LTM4650A
TEMPERATURE (°C)
–50 –25
0.3
0.5
0.8
0
50
75
0.4
0.7
0.6
25
100
4650A F09
125
ID = 100µA
Figure 9. Diode Voltage VD vs Temperature T(K)
for Different Bias Currents
APPLICATIONS INFORMATION
where f is the resonant frequency of the ring, and L is the
total parasitic inductance in the switch path. If a resistor
is selected that is equal to Z, then the ringing should be
dampened. The snubber capacitor value is chosen so that
its impedance is equal to the resistor at the ring frequency.
Calculated by: Z(C) = 1/(2πfC). These values are a good
place to start with. Modification to these components
should be made to attenuate the ringing with the least
amount of power loss.
Temperature Monitoring
A diode connected PNP transistor is used for the TEMP
monitor function by monitoring its voltage over tempera-
ture. The temperature dependence of this diode voltage
can be understood in the equation:
VD = nVT ln
ID
IS


where VT is the thermal voltage (kT/q), and n, the ideality
factor, is 1 for the diode connected PNP transistor being
used in the LTM4650A. IS is expressed by the typical
empirical equation:
IS =I0 exp
– VG0
VT


where I0 is a process and geometry dependent current, (I0
is typically around 20k orders of magnitude larger than IS
at room temperature) and VG0 is the band gap voltage of
1.2V extrapolated to absolute zero or –273°C.
If we take the IS equation and substitute into the VD equa-
tion, then we get:
VD = VG0
kT
q


ln
I0
ID


, VT =
kT
q
The expression shows that the diode voltage decreases
(linearly if I0 were constant) with increasing temperature
and constant diode current. Figure 9 shows a plot of VD
vs Temperature over the operating temperature range of
the LTM4650A.
If we take this equation and differentiate it with respect to
temperature T, then:
dVD
dT
= –
VG0 – VD
T
This dVD/dT term is the temperature coefficient equal to
about –2mV/K or –2mV/°C. The equation is simplified for
the first order derivation.
Solving for T, T = –(VG0 – VD)/(dVD/dT) provides the
temperature.
1st Example: Figure 9 for 27°C, or 300K the diode
voltage is 0.598V, thus, 300K = –(1200mV – 598mV)/
–2.0 mV/K)
2nd Example: Figure 9 for 75°C, or 350K the diode
voltage is 0.50V, thus, 350K = –(1200mV – 500mV)/
–2.0mV/K)
Converting the Kelvin scale to Celsius is simply taking the
Kelvin temp and subtracting 273 from it.
A typical forward voltage is given in the electrical charac-
teristics section of the data sheet, and Figure 9 is the plot
of this forward voltage. Measure this forward voltage at
27°C to establish a reference point. Then using the above
expression while measuring the forward voltage over
temperature will provide a general temperature monitor.
Connect a resistor between TEMP and VIN to set the cur-
rent to 100µA. See Figure 33 for an example.



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