RH5RE RICOH | Alldatasheet
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Technical content
NO. EA-016-130402 OUTLINE The Rx5RE Series are CMOS-based voltage regulator ICs with high output voltage accuracy and ultra-low quiescent current. Each of these ICs consists of a volt age reference unit, an error amplifier, a driver transistor, and resistors for setting output voltage, and a current limit circuit. By use of these ICs, a constant voltage power supply circuit with high efficiency can be constructed because the dropout voltage and quiescent current of these ICs are very small. Furthermore, theses ICs have a built-in current limit circuit. The output voltage of these ICs is fixed with high accuracy. Two types of packages, TO-92 (Discontinued) and SOT-89 (Mini-power Mold) are available.
FEATURES
( For other voltages, please refer to MARK INFORMATIONS.)
APPLICATIONS
- Power source for battery-powered equipment
- Power source for cameras, video instruments such as camcorders, VCRs, and hand- held communication equipment
- Precision voltage references
The output voltage and package for the ICs can be selected at the user’s request. Product Name Package Quantity per Reel Pb Free Halogen Free RH5RExxAA-T1-FE SOT-89 1,000 pcs Yes Yes RE5RExxAA-TZ-F TO-92 ( Discontinued) 2,500 pcs Yes No xx : The output voltage can be designated in the range from 2.0V (20) to 6.0V (60) in 0.1V steps. (For other voltages, please refer to MARK INFORMATIONS.)
(mark side) 312 (mark side) PIN DESCRIPTION
- SOT-89 Pin No Symbol Pin Description
1 GND Ground Pin
2 V IN Input Pin
3 V OUT Output Pin
- TO-92 (Discontinued) Pin No Symbol Pin Description
VOUT Output Voltage −0.3 to VIN+0.3 V IOUT Output Current 300 mA Power Dissipation∗ (SOT-89) 900 PD Power Dissipation∗ (TO-92) ( Discontinued) 300 mW Topt Operating Temperature Range −40 to 85 °C Tstg Storage Temperature Range −55 to 125 °C Tsolder Lead Temperature (Soldering) 260°C,10s ∗) For Power Dissipation, please refer to PACKAGE INFORMATION. ABSOLUTE MAXIMUM RATINGS Electronic and mechanical stress momentarily exceeded absolute maximum ratings may cause the permanent damages and may degrade the life time and safety for both device and system using the device in the field. The functional operation at or over these absolute maximum ratings is not assured. RECOMMENDED OPERATING CONDITIONS (ELECTRICAL CHARACTERISTICS) All of electronic equipment should be designed that the mounted semiconductor devices operate within the recommended operating conditions. The semiconductor devices cannot operate normally over the recommended operating conditions, even if when they are used over such conditions by momentary electronic noise or surge. And the semiconductor devices may receive serious damage when they continue to operate over the recommended operating conditions.
ELECTRICAL CHARACTERISTICS
- Rx5RE20A Symbol Item VOUT Output Voltage IOUT Output Current ∆VOUT Load Regulation∆IOUT VDIF Dropout Voltage ISS Quiescent Current ∆VOUT ∆VIN Line Regulation VIN Input Voltage Ilim Current Limit ∆VOUT Output Voltage ∆Topt Temperature Coefficient Conditions Min. Typ. Max. Unit VIN=4.0V,IOUT=10mA 1.950 2.000 2.050 V VIN=4.0V 40 60 mA VIN=4.0V 1mA≤IOUT≤50mA 40 80 mV IOUT=30mA 0.5 0.7 V VIN=4.0V 1.0 3.0 µA IOUT=10mA VOUT+1.0V≤VIN≤10V 0.1 %/V 10 V 240 mA IOUT=10mA ±100 ppm/˚C–40˚C≤Topt≤85˚C Topt=25˚C
- Rx5RE30A Topt=25˚C Symbol Item VOUT Output Voltage IOUT Output Current ∆VOUT Load Regulation∆IOUT VDIF Dropout Voltage ISS Quiescent Current ∆VOUT ∆VIN Line Regulation VIN Input Voltage Ilim Current Limit ∆VOUT Output Voltage ∆Topt Temperature Coefficient Conditions Min. Typ. Max. Unit VIN=5.0V,IOUT=10mA 2.925 3.000 3.075 V VIN=5.0V 50 80 mA VIN=5.0V 1mA≤IOUT≤60mA 40 80 mV IOUT=40mA 0.5 0.7 V VIN=5.0V 1.1 3.3 µA IOUT=10mA VOUT+1.0V≤VIN≤10V 0.1 %/V 10 V 240 mA IOUT=10mA ±100 ppm/˚C–40˚C≤Topt≤85˚C
- Rx5RE50A Topt=25˚C
- Rx5RE40A Topt=25˚C Symbol Item VOUT Output Voltage IOUT Output Current ∆VOUT Load Regulation∆IOUT VDIF Dropout Voltage ISS Quiescent Current ∆VOUT ∆VIN Line Regulation VIN Input Voltage Ilim Current Limit ∆VOUT Output Voltage ∆Topt Temperature Coefficient Conditions Min. Typ. Max. Unit VIN=6.0V,IOUT=10mA 3.900 4.000 4.100 V VIN=6.0V 65 100 mA VIN=6.0V 1mA≤IOUT≤70mA 40 80 mV IOUT=50mA 0.5 0.7 V VIN=6.0V 1.2 3.6 µA IOUT=10mA VOUT+1.0V≤VIN≤10V 0.1 %/V 10 V 240 mA IOUT=10mA ±100 ppm/˚C–40˚C≤Topt≤85˚C Symbol Item VOUT Output Voltage IOUT Output Current ∆VOUT Load Regulation∆IOUT VDIF Dropout Voltage ISS Quiescent Current ∆VOUT ∆VIN Line Regulation VIN Input Voltage Ilim Current Limit ∆VOUT Output Voltage ∆Topt Temperature Coefficient Conditions Min. Typ. Max. Unit VIN=7.0V,IOUT=10mA 4.875 5.000 5.125 V VIN=7.0V 80 120 mA VIN=7.0V 1mA≤IOUT≤80mA 40 80 mV IOUT=60mA 0.5 0.7 V VIN=7.0V 1.3 3.9 µA IOUT=10mA VOUT+1.0V≤VIN≤10V 0.1 %/V 10 V 240 mA IOUT=10mA ±100 ppm/˚C–40˚C≤Topt≤85˚C
- Rx5RE60A Topt=25˚C Symbol Item VOUT Output Voltage IOUT Output Current ∆VOUT Load Regulation∆IOUT VDIF Dropout Voltage ISS Quiescent Current ∆VOUT ∆VIN Line Regulation VIN Input Voltage Ilim Current Limit ∆VOUT Output Voltage ∆Topt Temperature Coefficient Conditions Min. Typ. Max. Unit VIN=8.0V,IOUT=10mA 5.850 6.000 6.150 V VIN=8.0V 80 120 mA VIN=8.0V 1mA≤IOUT≤80mA 40 80 mV IOUT=60mA 0.5 0.7 V VIN=8.0V 1.4 4.2 µA IOUT=10mA VOUT+1.0V≤VIN≤10V 0.1 %/V 10 V 240 mA IOUT=10mA ±100 ppm/˚C–40˚C≤Topt≤85˚C
ELECTRICAL CHARACTERISTICS BY OUTPUT VOLTAGE VIN– VOUT =2.0V 1mA≤ 40 60 IOUT ≤50mA VIN– VOUT =2.0V 1mA≤ IOUT ≤60mA 50 80 VIN– VOUT =2.0V 40 80 1mA≤ IOUT ≤70mA 65 100 VIN– VOUT =2.0V 1mA≤ 80 120 I OUT ≤80mA Rx5RE20A 1.950 2.000 2.050 Rx5RE21A 2.048 2.100 2.152 Rx5RE22A 2.145 2.200 2.255 Rx5RE23A 2.243 2.300 2.357 Rx5RE24A 2.340 2.400 2.460 Rx5RE25A 2.438 2.500 2.562 Rx5RE26A 2.535 2.600 2.665 Rx5RE27A 2.633 2.700 2.767 Rx5RE28A 2.730 2.800 2.870 Rx5RE29A 2.828 2.900 2.972 Rx5RE30A 2.925 3.000 3.075 Rx5RE31A 3.023 3.100 3.177 Rx5RE32A 3.120 3.200 3.280 Rx5RE33A 3.218 3.300 3.382 Rx5RE34A 3.315 3.400 3.485 Rx5RE35A 3.413 3.500 3.587 Rx5RE36A 3.510 3.600 3.690 Rx5RE37A 3.608 3.700 3.792 Rx5RE38A 3.705 3.800 3.895 Rx5RE39A 3.803 3.900 3.997 Rx5RE40A 3.900 4.000 4.100 Rx5RE41A 3.998 4.100 4.202 Rx5RE42A 4.095 4.200 4.305 Rx5RE43A 4.193 4.300 4.407 Rx5RE44A 4.290 4.400 4.510 Rx5RE45A 4.388 4.500 4.612 Rx5RE46A 4.485 4.600 4.715 Rx5RE47A 4.583 4.700 4.817 Rx5RE48A 4.680 4.800 4.920 Rx5RE49A 4.778 4.900 5.022 Rx5RE50A 4.875 5.000 5.125 Rx5RE51A 4.973 5.100 5.227 Rx5RE52A 5.070 5.200 5.330 Rx5RE53A 5.168 5.300 5.432 Rx5RE54A 5.265 5.400 5.535 Rx5RE55A 5.363 5.500 5.637 Rx5RE56A 5.460 5.600 5.740 Rx5RE57A 5.558 5.700 5.842 Rx5RE58A 5.655 5.800 5.945 Rx5RE59A 5.753 5.900 6.047 Rx5RE60A 5.850 6.000 6.150 Output Voltage OutputCurrent Load Regulation Part Number VOUT(V) IOUT(mA) ∆VOUT/∆IOUT(mV) VIN– VOUT =2.0V IOUT =10mA VIN– VOUT =2.0V IOUT =30mA IOUT =40mA 0.5 0.7 IOUT =50mA IOUT =60mA Dropout Voltage VDIF(V) Conditions Typ. Max.
Topt=25˚C 1.0 3.0 1.1 3.3 IOUT =10mA IOUT VIN– =10mA VOUT 1.2 3.6 0.1 10 240 ±100 =2.0V VOUT+ –40˚C≤ 1.0V≤ Topt VIN ≤85˚C ≤10V 1.3 3.9 1.4 4.2 Quiescent Current Line Regulation Input Voltage Current Limit Output Voltage Tempco. Iss(µA) ∆VOUT/∆VIN(%/V) V IN(V) Ilim(mA) ∆VOUT/∆T(ppm/˚C)
Output voltage VOUT divided at the node between regis- ters R1 and R2 is compared with reference voltage by error amplifier, so that a constant voltage is output. TEST CIRCUITS FIG. 2 Test Circuit FIG. 3 Quiescent Current Test Circuit FIG. 4 Line Transient Response Test Circuit FIG. 1 Brock Diagram GNDGND VIN Error Amplifire VOUT Vref CI 1µF Co 1µF VIN GND Rx5RE SERIES VOUT IOUT VOUT VIN + + ISS CI 1µF VIN GND Rx5RE SERIES VOUT VIN Ro Co 0.1µF P.G GND Rx5RE SERIES VOUT VOUT VIN
1) Output Voltage vs. Output Current Rx5RE40A Rx5RE50ARx5RE50A Output Current IOUT(mA) Output Voltage VOUT(V) 3.7 3.8 3.9 4.1 4.0 VIN=6.0V 50 100 150 200 Topt=–40˚C 85˚C 25˚C 4.7 4.8 4.9 5.1 5.0 VIN=7.0V 0 50 100 150 200 250 Output Voltage VOUT(V) Output Current IOUT(mA) with heatsink without heatsink 4.7 4.8 4.9 5.1 5.0 V IN=7.0V 0 50 100 150 200 250 heatsink 30×30×1mm Output Voltage VOUT(V) Output Current IOUT(mA) 4.7 4.8 4.9 5.1 5.0 VIN=7.0V 0 50 100 150 200 250 300 350 25˚C Topt=–40˚C 85˚C Rx5RE30A Output Voltage VOUT(V) Output Current IOUT(mA) 2.7 2.8 2.9 3.1 3.0 VIN=5.0V 0 50 100 150 200 250 Topt= –40˚C 25˚C 85˚C Rx5RE20A Rx5RE20A 2) Output Voltage vs. Input Voltage IOUT=1µA Topt=25˚C Input Voltage VIN(V) 1mA 10mA Output Voltage VOUT(V) 1.0 1.2 0.8 1.4 1.6 1.8 2.0 2.2 2.4 Topt=25˚C 24 5 36 7 Input Voltage VIN(V) Output Voltage VOUT(V) 1.98 1.96 2.00 2.02 2.04 IOUT=1µA 1mA 10mA
Topt=25˚C Input Voltage VIN(V) Output Voltage VOUT(V) 2.0 2.2 1.8 2.4 2.6 2.8 3.0 3.2 3.4 IOUT=1mA 50mA 10mA 2.5 4.53.5 5.5 Input Voltage VIN(V) Topt=25˚C Output Voltage VOUT(V) 3.4 3.2 3.6 3.8 4.0 4.2 IOUT=1mA 50mA 10mA Topt=25˚C Input Voltage VIN(V) Output Voltage VOUT(V) 2.96 2.95 2.97 2.98 2.99 3.00 IOUT=1µA 1mA 10mA Topt=25˚C 46 7 58 9 Input Voltage VIN(V) Output Voltage VOUT(V) 3.98 3.96 4.00 4.02 4.04 4.06 1mA IOUT=1µA 10mA Topt=25˚C Input Voltage VIN(V) Output Voltage VOUT(V) 4.4 4.2 4.6 4.8 5.0 5.1 IOUT=1mA 50mA 10mA Topt=25˚C 658 9 71 0 Input Voltage VIN(V) Output Voltage VOUT(V) 4.97 4.98 4.95 4.96 4.99 5.00 5.01 5.02 5.03 5.04 5.05 10mA IOUT=1µA 1mA
3) Dropout Voltage vs. Output Curret Output Current IOUT(mA) Dropout Voltage VDIF(V) 0 20 40 60 80 100 Topt=–40˚C 25˚C 85˚C 0.0 0.4 0.6 0.2 0.8 1.0 1.2 1.4 Output Current IOUT(mA) Dropout Voltage VDIF(V) 0 20 40 60 80 100 85˚C 25˚C Topt= –40˚C 0.0 0.4 0.5 0.7 0.6 0.2 0.3 0.1 0.8 Output Current IOUT(mA) Dropout Voltage VDIF(V) 0 20 40 60 80 100 0.0 0.2 0.4 0.6 0.8 1.0 25˚C Topt=–40˚C 85˚C Rx5RE30A 4) Output Voltage vs.Temperature Temperature Topt(˚C) Output Voltage VOUT(V) - 5 0 - 3 0 - 1 0 1 03 05 07 09 0 2.9 3.0
3.1 IOUT=10mA
Temperature Topt(˚C) Output Voltage VOUT(V) 3.9 4.0 4.1 - 5 0 - 3 0 - 1 0 1 03 05 07 09 0 IOUT=10mA
5) Quiescent Current vs. Input Voltage Rx5RE40A Rx5RE50A Temperature Topt(˚C) Output Voltage VOUT(V) 4.9 4.8 5.0 5.2 5.1 - 5 0 - 3 0 - 1 0 1 03 05 07 09 0 IOUT=10mA Input Voltage VIN(V) 0.6 3456789 1 0 0.7 0.8 0.9 1.0 1.1 Quiescent Current Iss(µA) Topt=25˚C Rx5RE30A Input Voltage VIN(V) 1.0 24 3 5 67 89 1 0 1.1 1.2 1.3 1.4 Quiescent Current Iss(µA) Topt=25˚C Input Voltage VIN(V) 1.0 46 5 7 8 9 10 11 1.1 1.2 1.3 1.4 1.5 Quiescent Current Iss(µA) Topt=25˚C Input Voltage VIN(V) 0.5 0.6 7 658 9 1 0 1 1 1 2 0.7 0.8 0.9 1.0 1.1 1.2 1.3 1.5 1.4 Quiescent Current Iss(µA) Topt=25˚C
6) Quiescent Current vs. Temperature Quiescent Current Iss(µA) Temperature Topt(˚C) 0.5 0.6 0.7 0.8 0.9 1.0 1.5 1.1 1.2 1.3 1.4 –50 –30 –10 10 30 50 70 90 Quiescent Current Iss(µA) Temperature Topt(˚C) 0.5 0.6 0.7 0.8 0.9 1.0 1.5 1.1 1.2 1.3 1.4 –50 –30 –10 10 30 50 70 90 Rx5RE30A Quiescent Current Iss(µA) Temperature Topt(˚C) 0.5 0.6 0.7 0.8 0.9 1.0 1.5 1.1 1.2 1.3 1.4 –50 –30 –10 10 30 50 70 90 7) Dropout Voltage vs. Set Output Voltage Rx5RE SERIES 012 34 56 0.0 0.2 0.1 0.3 0.4 0.5 0.6 0.7 Set Output Voltage Vreg(V) Dropout Voltage VDIF(V) 1mA Topt=25˚C 10mA IOUT=50mA
8) Line Transient Response (1) Rx5RE30A Rx5RE40A Rx5RE20A Rx5RE50A 9) Line Transient Response (2) Rx5RE20A Rx5RE30A 1.0 2.0 1.5 2.5 3.0 4.5 4.5 3.5 5.0 Input Voltage/Output Voltage V(V) IOUT=1mA Time t(ms) Input Voltage Output Voltage 2.0 4.0 3.0 5.0 7.0 6.0 8.0 Input Voltage/Output Voltage V(V) IOUT=1mA Time t(ms) Input Voltage Output Voltage 1.0 3.0 2.0 4.0 6.0 5.0 7.0 Input Voltage/Output Voltage V(V) IOUT=1mA Time t(ms) Input Voltage Output Voltage Output Voltage 3.0 5.0 4.0 6.0 8.0 7.0 9.0 Input Voltage/Output Voltage V(V) IOUT=1mA Time t(ms) Input Voltage 0.0 1.0 1.5 0.5 2.0 2.5 4.0 4.5 3.5 3.0 5.0 Input Voltage/Output Voltage V(V) IOUT=30mA Time t(ms) Input Voltage Output Voltage 1.0 3.0 2.0 4.0 6.0 5.0 7.0 Input Voltage/Output Voltage V(V) IOUT=30mA Time t(ms) Input Voltage Output Voltage
2.0 4.0 3.0 5.0 7.0 6.0 8.0 Input Voltage/Output Voltage V(V) IOUT=30mA Time t(ms) Input Voltage Output Voltage IOUT=30mA Output Voltage 3.0 5.0 4.0 6.0 8.0 7.0 9.0 Input Voltage/Output Voltage V(V) Time t(ms) Input Voltage
In Rx5RE Series, a constant voltage can be obtained without using capacitors C1 and C2. However, when the wire connected to VIN is long, use capacitor C1. Output noise can be reduced by using capacitor C2. Insert capacitors C1 and C2 with the capacitance of 0.1µF to 2.0µF between input/output pins and GND pin with minimum wiring. The output voltage can be obtained by the follow- ing formula : VOUT=Vreg · (1+R2/R1) + ISS · R2 Since the quiescent current of Rx5RE Series is so small that the resistances of R1 and R2 can be set as large as several hundreds k Ω and therefore the sup- ply current of “Voltage Boost Circuit” itself can be reduced. Furthermore, since Rx5RE Series are operated by a constant voltage, the supply current of “Voltage Boost Circuit” is not substantially affected by the input voltage. As shown in the circuit diagram, a dual power sup- ply circuit can be constructed by using two Rx5RE Series. This circuit diagram shows a dual power supply circuit with an output of 3V and an output of 5V. When the minimum output current of IC2 is larger than I SS of IC1, resistor R is unnecessary. Diode D is a protection diode for the case where VOUT2 becomes larger than VOUT1.
- VOLTAGE BOOST CIRCUIT
- DUAL POWER SUPPLY CIRCUIT C2C1 VIN GND GND GND Rx5RE SERIES VOUT VOUT VIN + + VIN GND GND Rx5RE SERIES VOUT VOUT VIN ISS+ VIN GND GNDGND Rx5RE20A Rx5RE30A VOUT VOUT1 VOUT2 VIN GND VOUTVIN R ISS IC1 IC2 D + + *1) Vreg : Set Output Voltage of Rx5RE Series. APPLICATION CIRCUITS
- CURRENT BOOST CIRCUIT Output current of 120mA or more can be obtained by the current boost circuit constructed as shown in this circuit diagram.
- CURRENT BOOST CIRCUIT WITH OVERCURRENT LIMIT CIRCUIT
- CURRENT SOURCE A current source with the structure as shown in this circuit diagram can be used. Output Current I OUT is obtained as follows : IOUT=Vreg /R + ISS Take care that Output Current I OUT does not exceed its allowable current. C2GND GNDGND Rx5RE SERIES VOUT VOUT VIN VIN Tr.1 + + C2GND GND GND Rx5RE SERIES VOUT VOUT VIN VIN Tr.1 Tr.2 IOUT Vbe2 + + GND Rx5RE SERIES VIN VIN R IOUT ISS VOUT A circuit for protecting Tr.1 from the destruction caused by output short-circuit or overcurrent is shown in this circuit diagram. When the voltage reduction caused by the current ( aa IOUT) which flows through R2 reaches Vbe2 of Tr.2 by additionally providing the current boost circuit with Tr.2 and R2, Tr.2 is turned ON and the base current of Tr.1 is increased, so that the output current is limited. Current limit of Overcurrent Limit Circuit is obtained as follows : I OUT Vbe2/R2 *1) Vreg : Set Output Voltage of Rx5RE Series.
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