ML7800 - FBE*
SERIES
3-TERMINAL POSITIVE
VOLTAGE REGULATOR
The ML7800 series are 3-Terminal Positive Voltage Regulators. These regulators employ internal current-limiting, thermal-shutdown and safe-area compensation, making them essentially indestructible. If adequate heat sinking is provided, they can deliver over 1A output current (Please refer to the "thermal design" portion of application note). They are intended as fixed voltage regulations in a wide range of applications including local (on-card) regulation for elimination of distributution problems associated with single point regulation. In addition to use as fixed voltage regulators, these devices can be used with external components to obtain adjustable output voltages and currents.
* Parts of FBE are satisfied with requirements of directive 2002/95/EC on RoHS.
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Package Outline
TO-220
1. OUT 2. GND 3. IN
TO-220F
32
1
ABSOLUTE MAXIMUM RATINGS (Ta=25℃)
PARAMETER
Input Voltage
SYMBOL
VIN
Maximum Rating
ML7805 to ML7809 ML7812 to ML7820 ML7824 35 35 40 -40 to +125 Operating Junction Temperature Operating Ambient Temperature Tj Topr 15(Tc≦70℃ ) -30 to +150 -30 to +75
UNIT
V
Storage Temperature Range Operating Temperature Range Power Dissipation
Tstg
℃ ℃ W
PD
THERMAL RESISTANCE
Thermal Resistance Junction-to-Ambient Temperature Junction-to-Case Θ ja Θ jc 60 5 ℃/W
ELECTRICAL CHARACTERISTICS
PARAMETER
ML7805A / ML7805FA Output Voltage Quiescent Current Load Regulation Line Regulation Ripple Rejection Output Noise Voltage Average Temperature Cofficient of Output Voltage Vo IQ ΔVo Io RR VNO VIN=10V VIN=10V VIN=10V VIN=10V VIN=10V
(Tj=25℃,C1=0.33 μF,Co=0.1 μF) TEST CONDITIONS
Measurement is to be conducted in pulse testing.
SYMBOL
MIN.
TYP. MAX.
UNIT
Io=0.5A Io=0mA Io=0.005A to 1.5A Io=0.5A Io=0.5A
4.8 f=120Hz Io=0.5A 62 -
5.0 4.2 15 3 78 40 -1.1
5.2 8.0 100 100 -
V mA mV mV dB μV mV/℃
ΔVo Vin VIN=7 to 25V
ein=2Vp-p
BW=10Hz to 100KHz Io=0.5A
ΔVo / ΔT VIN=10V
MICRO ELECTRONICS LTD.
7/F, Enterprise Square Three, 39 Wang Chiu Road, Kowloon Bay, Kowloon, Hong Kong. Fax: (852) 2341 0321 Tel: (852) 2343 0181-5 Website: www.microelectr.com.hk
APR 2005
Page 1 of 11
ELECTRICAL CHARACTERISTICS
PARAMETER
ML7806A / ML7806FA Output Voltage Quiescent Current Load Regulation Line Regulation Ripple Rejection Vo IQ ΔVo Io VIN=11V VIN=11V VIN=11V
(Tj=25℃,C1=0.33 μF,Co=0.1μF)
Measurement is to be conducted in pulse testing.
SYMBOL
TEST CONDITIONS
MIN. TYP. MAX. UNIT
Io=0.5A Io=0mA Io=0.005A to 1.5A Io=0.5A Io=0.5A
5.75 f=120Hz Io=0.5A 59 -
6.0 4.3 15 5 75 45 -0.8
6.25 8.0 120 120 -
V mA mV mV dB μV mV/℃
ΔVo Vin VIN=8 to 25V RR VIN=11V
ein=2Vp-p
VIN=11V Output Noise Voltage VNO Average Temperature ΔVo / ΔT VIN=11V Cofficient of Output Voltage ML7808A / ML7808FA Output Voltage Quiescent Current Load Regulation Line Regulation Ripple Rejection Vo IQ ΔVo Io VIN=14V VIN=14V VIN=14V
BW=10Hz to 100KHz Io=5mA
Io=0.5A Io=0mA Io=0.005A to 1.5A Io=0.5A
7.7 f=120Hz Io=0.5A 55 -
8.0 4.3 15 6 72 52 -0.8
8.3 8.0 160 160 -
V mA mV mV dB μV mV/℃
ΔVo Vin VIN=10.5 to 25V RR VIN=14V Io=0.5A
ein=2Vp-p
VIN=14V Output Noise Voltage VNO Average Temperature ΔVo / ΔT VIN=14V Cofficient of Output Voltage ML7809A / ML7809FA Output Voltage Quiescent Current Load Regulation Line Regulation Ripple Rejection Vo IQ ΔVo Io VIN=15V VIN=15V VIN=15V
BW=10Hz to 100KHz Io=5mA
Io=0.5A Io=0mA Io=0.005A to 1.5A Io=0.5A
8.65 f=120Hz Io=0.5A 55 -
9.0 4.3 15 7 70 60 -1
9.35 8.0 180 180 -
V mA mV mV dB μV mV/℃
ΔVo Vin VIN=11.5 to 25V RR VIN=15V Io=0.5A
ein=2Vp-p
VIN=15V Output Noise Voltage VNO Average Temperature ΔVo / ΔT VIN=15V Cofficient of Output Voltage ML7812A / ML7812FA Output Voltage Quiescent Current Load Regulation Line Regulation Ripple Rejection Vo IQ ΔVo Io VIN=19V VIN=19V VIN=19V
BW=10Hz to 100KHz Io=5mA
Io=0.5A Io=0mA Io=0.005A to 1.5A Io=0.5A
11.5 f=120Hz Io=0.5A 55 -
12.0 4.3 25 10 71 75 -1
12.5 8.0 240 240 -
V mA mV mV dB μV mV/℃
ΔVo Vin VIN=14.5 to 30V RR VIN=19V Io=0.5A
ein=2Vp-p
VIN=19V Output Noise Voltage VNO Average Temperature ΔVo / ΔT VIN=19V Cofficient of Output Voltage
BW=10Hz to 100KHz Io=5mA
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ELECTRICAL CHARACTERISTICS
PARAMETER
ML7815A / ML7815FA Output Voltage Quiescent Current Load Regulation Line Regulation Ripple Rejection Vo IQ ΔVo Io VIN=23V VIN=23V VIN=23V
(Tj=25℃,C1=0.33 μF,Co=0.1μF)
Measurement is to be conducted in pulse testing.
SYMBOL
TEST CONDITIONS
MIN. TYP. MAX. UNIT
Io=0.5A Io=0mA Io=0.005A to 1.5A Io=0.5A
14.4 f=120Hz Io=0.5A 54 -
15.0 4.3 35 12 70 90 -1
15.6 8.0 300 300 -
V mA mV mV dB μV mV/℃
ΔVo Vin VIN=17.5 to 30V RR VIN=23V Io=0.5A
ein=2Vp-p
VIN=23V Output Noise Voltage VNO Average Temperature ΔVo / ΔT VIN=23V Cofficient of Output Voltage ML7818A / ML7818FA Output Voltage Quiescent Current Load Regulation Line Regulation Ripple Rejection Vo IQ ΔVo Io VIN=27V VIN=27V VIN=27V
BW=10Hz to 100KHz Io=5mA
Io=0.5A Io=0mA Io=0.005A to 1.5A Io=0.5A Io=0.5A
17.3 f=120Hz Io=0.5A 53 -
18.0 4.5 55 15 69 110 -1
18.7 8.0 360 360 -
V mA mV mV dB μV mV/℃
ΔVo Vin VIN=21 to 33V RR VIN=27V
ein=2Vp-p
VIN=27V Output Noise Voltage VNO Average Temperature ΔVo / ΔT VIN=27V Cofficient of Output Voltage ML7820A / ML7820FA Output Voltage Quiescent Current Load Regulation Line Regulation Ripple Rejection Vo IQ ΔVo Io VIN=29V VIN=29V VIN=29V
BW=10Hz to 100KHz Io=5mA
Io=0.5A Io=0mA Io=0.005A to 1.5A Io=0.5A Io=0.5A
19.2 f=120Hz Io=0.5A 51 -
20.0 4.5 61 16 66 150 -2.0
20.8 8.0 400 400 -
V mA mV mV dB μV mV/℃
ΔVo Vin VIN=23 to 35V RR VIN=29V
ein=2Vp-p
VIN=29V Output Noise Voltage VNO Average Temperature ΔVo / ΔT VIN=29V Cofficient of Output Voltage ML7824A / ML7824FA Output Voltage Quiescent Current Load Regulation Line Regulation Ripple Rejection Vo IQ ΔVo Io VIN=33V VIN=33V VIN=33V
BW=10Hz to 100KHz Io=5mA
Io=0.5A Io=0mA Io=0.005A to 1.5A Io=0.5A Io=0.5A
23.0 f=120Hz Io=0.5A 50 -
24.0 4.6 65 18 66 170 -2.4
25.0 8.0 480 480 -
V mA mV mV dB μV mV/℃
ΔVo Vin VIN=28 to 38V RR VIN=33V
ein=2Vp-p
VIN=33V Output Noise Voltage VNO Average Temperature ΔVo / ΔT VIN=33V Cofficient of Output Voltage
BW=10Hz to 100KHz Io=5mA
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Power Dissipation vs. Ambient Temperature
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Equivalent Circuit
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Test Circuit
1. Output Voltage, Line Regulation, Load Regulation, Quiescent Current, Average Temperature Coefficient of Output Voltage, Output Noise Voltage. 2. Ripple Rejection
ein = 2 Vp-p
ML7805 IIN 1 IN OUT GND 2 IQ 3
f = 120Hz
Io
ML7805 1 IN OUT GND
Load
3
VIN
0.33uF
0.1uF
Vo,
VN
VIN
0.33uF
2
0.1uF
Load
Vo,
eo
Page 4 of 11
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Typical Characteristics
ML7805 / 15 / 24
ML7805 / 15 / 24
Page 5 of 11
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Typical Characteristics
/24 Quiescent
Page 6 of 11
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Typical Characteristics
Page 7 of 11
1. Application Circuit
In the following explain only the positive regulator unless otherwise specified. However they can apply to the negative voltage regulator by easy change.
Positive/Negative Voltage Supply
78 series +Vin IN GND 0.33uF D1 0.1uF OUT +Vo
Note : In the above positive and negative power supply application, D1 and D2 should be connected. If D1 and D2 are not connected, either of positive or negative power supply circuit may not turns on.
COM
0.33uF COM -Vin IN 79 series OUT
D2
0.1uF
-Vo
2. Note in Application Circuit
(1) If the higher voltage (above the rated value) or lower voltage (GND-0.5V) is supplied to the input terminals, the IC may be destroyed. To avoid such a case, a zener diode or other parts of the surge supressor should be connected as shown below.
L
R Vin
1
IN
OUT
3
Vo
Vin
1
IN
OUT
3
Vo
GND
GND
+
Ze ner Diode
Capacitor
+
Diode Capacitor
(2)
If the higher voltage than the input terminal is supplied to the output terminal, the IC may be destroyed. To avoid input terminal short to the GND or the stored voltage in the capacitor back to the output terminal, by the large value capacitor connecting to the output terminal application, the SBD should be required as shown below;
DIODE
2
2
Vin
1
IN
OUT
3
Vo
* In case of negative voltage regulator, reverse the SBD and capacitor direction.
GND 2
+
Capacitor
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3. Thermal Design
(1) Heat Producting There are two kinds of heat producting (P LOSS-1, PLOSS-2) in three terminal regulator and the sum of them is total heat producting of IC (PLOSS).
(1-1)
PLOSS-1 : heat producting by own operation Input voltage (Vin) and quiescent current (IQ) produce the heat mentioned below equation. PLOSS-1 = Vin X IQ
Input
Vin
IN GND
OUT
Iout
Output
Vout
IQ
(1-2)
PLOSS-2 : heat producing by output current and the input-output differential voltage. Internal power transistor produces the hest mentioned following equation. PLOSS-2 = (Vin-Vout) x Iout (W)
Therefore, the total heat producing PLOSS is : PLOSS = PLOSS-1 + PLOSS-2 = Vin X IQ + (Vin-Vout) X Iout (2) (2-1) Thermal Resistance Definition of Thermal Resistance : θ Thermal resistance (θ ) is a degree of heat radiation mentioned following equation. = (T1 - T2)/P ( ℃ /W) Heat Producing Quantity Ambient Temperature or case temperature Heat Source Temperature
P(W)
(W)
: P (W) :T2 (℃ ) :T1 (℃ )
T1
Rp T1 > T2
T2
(2-2)
Thermal resistance of TO-220 There are two kinds of thermal resistance of TO-220. One is " θjc" for the application with the heat sink, the other is "θja" for the application without the heat sink. thermal resistance between IC chip (junction point) and the package back side θjc : contacting with the heat sink.
θja :
thermal resistance between IC chip (junction point) and ambience.
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(3)
Heat Radiation Balance The heat produced in the IC is radiated to ambience through the package and the heat sink. The quantity of the heat radiation depends on the heat source temperature, ambient temperature and the thermal resistance of the package.
(3-1)
TO-220 with heat sink Heat radiation balance model of the TO-220 with heat sink is shown as below.
PLOSS
θJC
θCH
θHS
Tj
Heat Source (junction) Temperature
θJS
Ambient Temperature
Ta
Where
θjc : θjs : θCH :
thermal resistance between IC chip (junction point) and the package backside connecting to the heatsink. thermal resistance between IC chip (junction point) and the package surface. thermal resistance between package backside and the heat sink including the condidtion of insulator, silicon grease and tighten torque. thermal resistance of the heat sink
Package Face Side Resin Chip Package Back Side
θHS :
θJS θJC θCH θHS
IC
Heat Sink
If the js is large enough compare with other thermal resistance, the js can be neglected and the heat radiation model can be mentioned as below.
PLOSS
θJC
θCH
θHS
Tj
Ta
The relation between temperature and heat radiation quantity is shown below. Tj=P LOSS X (θjc+θCH +θHS) + Ta (℃ )
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(4)
Thermal Design
The heat radiation balance model of the TO-220 with the heat sink is shown as follows. Heat radiation balance Tj = P LOSS X (θjc +θCH + θHS) + Ta PLOSS = Vin X IQ + (Vin-Vout) X Iout Substituting "Eq.(4-2) into "Eq.(4-1)" obtains Tj = [Vin X I Q +(Vin-Vout) X Iout] X (θjc +θCH +θHS)+Ta In Eq.(4-3) Vin, Iout, θCH, θHS, Ta depand on using condition. Tj, I Q,Vout,θjc depend on IC depend on IC specification. WhenθCH, IQ and Tj are assumed the following values, Eq.(4-3) becomes Eq.(4-4). θCH=0.3 to 0.4 ( ℃/W) Insert the mica paper (0.1t) and thermal conduction silicon grease between the IC and heat sink and tighten them with the bolt by 4Kg*cm-min. IQ = 5 to 6mA (max.) Tj = 125 ℃ (max.) Tj(max) = 125 = [5 X Vin + (Vin-Vout) X Iout] X (5+0.3+ θHS) +Ta When fix the Vout, Tj depends on the Vin, Iout, θHS and Ta. It means; Lower Vin and / or Iout are required to linit the temperature rise. Smaller θHS is required for the effective heat reduce (i.e. using the large heat sink). In the thermal design, when fix the Vin, Iout and Ta, selectthe heat sink which θHS is smaller that the result of Eq.(4-4). For more detail, please refer the heat resistance value mentioned in the specification of the heat sink supplier. ( ℃) (4-4) (℃) (4-3) (℃ ) (W) (4-1) (4-2)
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