UPC24M00A RENESAS | Alldatasheet

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To our customers, Old Company Name in Catalogs and Other Documents On April 1st, 2010, NEC Electronics Corporation merged with Renesas Technology Corporation, and Renesas Electronics Corporation took over all the business of both companies. Therefore, although the old company name remains in this document, it is a valid Renesas Electronics document. We appreciate your understanding. Renesas Electronics website: http://www.renesas.com April 1st, 2010 Renesas Electronics Corporation Issued by: Renesas Electronics Corporation (http://www.renesas.com) Send any inquiries to http://www.renesas.com/inquiry.

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© 1995 DATA SHEET BIPOLAR ANALOG INTEGRATED CIRCUIT µPC24M00A Series

DESCRIPTION

µPC24M00A Series are low dropout regulators which have 500 mA capable for output current. These ICs are built-in the saturation protection circuit of the output transistor.

FEATURES

  • Built-in the saturaiton protection circuit of the output transistor.
  • The capability of output current is 500 mA.
  • High accuracy of output voltage.
  • Low dropout voltage. VDIF ≤ 1 V (IO ≤ 500 mA, TJ ≤ 125 ˚C)
  • Built-in overcurrent protection circuit, thermal shut-down circuit.
  • Built-in Safe Operating Area protection circuit.
  • Compatible for µPC24M00 Series.

ORDERING INFORMATION

Output Voltage Type Number Package

5 V µPC24M05AHF MP-45G

6 V µPC24M06AHF (Isolated TO-220)

7 V µPC24M07AHF

8 V µPC24M08AHF

9 V µPC24M09AHF

10 V µPC24M10AHF

12 V µPC24M12AHF

15 V µPC24M15AHF

18 V µPC24M18AHF

Document No. G10353EJ2V0DS00 (2nd edition) Date Published December 1995 P Printed in Japan THREE TERMINAL LOW DROPOUT VOLTAGE REGULATOR CONNECTION DIAGRAM (TOP VIEW) 123 1 : INPUT 2 : GND 3 : OUTPUT

µPC24M00A Series BLOCK DIAGRAM INPUT OUTPUT GND Safe operating area protection Error amplifier Thermal shut down Start-up circuit Reference voltage Drive circuit Over-current protection Saturation protection

µPC24M00A Series ABSOLUTE MAXIMUM RATINGS (T A = 25 ˚C, Unless otherwise specified.) PARAMETER SYMBOL RATING UNIT Input Voltage VIN 36 V Internal Power Dissipation PT 15 Note W Operating Ambient Temperature Range T A –20 to +85 ˚C Operating Junction Temperature Range T J –20 to +150 ˚C Storage Temperature Range Tstg –55 to +150 ˚C Thermal Resistance (Junction to Case) R th(J - C) 7.0 ˚C/W Thermal Resistance (Junction to Ambient) Rth(J - A) 65 ˚C/W Note Internally limited. TYPICAL CONNECTION D 1 INPUT OUTPUTPC24M00A C IN C OUT D 2 µ C IN : 0.1 to 0.47 µF. C OUT : More than 47 µF. D 1 : Need for VO > VIN. D 2 : Need for VO < GND. RECOMMENDED OPERATING CONDITIONS PARAMETER SYMBOL TYPE NUMBER MIN. TYP. MAX. UNIT Input Voltage VIN µPC24M05AHF 6 9 20 V µPC24M06AHF 7 10 21 µPC24M07AHF 8 11 22 µPC24M08AHF 9 13 23 µPC24M09AHF 10 14 24 µPC24M10AHF 11 15 25 µPC24M12AHF 13 18 27 µPC24M15AHF 16 22 27 µPC24M18AHF 19 25 28 Output Current IO All 0 500 mA Operating Ambient Temperature Range TA All –20 +85 ˚C Operating Junction Temperature Range TJ All –20 +125 ˚C

µPC24M00A Series

ELECTRICAL CHARACTERISTICS

µPC24M05A (V IN = 9 V, IO = 350 mA, TJ = 25 ˚C, Unless otherwise specified) PARAMETER SYMBOL MIN. TYP. MAX. UNIT TEST CONDITIONS Output Voltage VO 4.9 5.0 5.1 V 4.85 5.15 6 V ≤ VIN ≤ 20 V, 5 mA ≤ IO ≤ 350 mA, 0 ˚C ≤ TJ ≤ 125 ˚C 4.85 5.15 5 mA ≤ IO ≤ 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Line Regulation REG IN 5 50 mV 6.5 V ≤ VIN ≤ 20 V Load Regulation REG L 3 25 mV 5 mA ≤ IO ≤ 500 mA Quiescent Current IBIAS 2.3 3.2 mA I O = 0 73 0 I O = 500 mA Start-up Current IBIAS(S) 15 mA V IN = 4.5 V, IO = 0 mA 45 VIN = 4.5 V, IO = 500 mA Quiescent Current Change Δ IBIAS 10 mA 6.5 V ≤ VIN ≤ 20 V, IO = 500 mA Output Noise Voltage Vn 90 µVrms 10 Hz ≤ f ≤ 100 kHz Ripple Rejection R·R 55 60 dB f = 120 Hz, 6.5 V ≤ VIN ≤ 16.5 V Dropout Voltage VDIF 0.5 1.0 V I O = 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Short Circuit Current IOshort 0.6 A V IN = 20 V Peak Output Current IOpeak 0.75 1.0 1.63 A V IN = 9 V Temperature Coefficient of Δ VO /Δ T 0.2 mV/˚C I O = 5 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Output Voltage µPC24M06A (V IN = 10 V, IO = 350 mA, TJ = 25 ˚C, Unless otherwise specified) PARAMETER SYMBOL MIN. TYP. MAX. UNIT TEST CONDITIONS Output Voltage VO 5.88 6.0 6.12 V 5.82 6.18 7 V ≤ VIN ≤ 21 V, 5 mA ≤ IO ≤ 350 mA, 0 ˚C ≤ TJ ≤ 125 ˚C 5.82 6.18 5 mA ≤ IO ≤ 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Line Regulation REG IN 6 60 mV 7.5 V ≤ VIN ≤ 21 V Load Regulation REG L 4 30 mV 5 mA ≤ IO ≤ 500 mA Quiescent Current IBIAS 2.3 3.2 mA I O = 0 73 0 I O = 500 mA Start-up Current IBIAS(S) 15 mA V IN = 5.5 V, IO = 0 mA 45 VIN = 5.5 V, IO = 500 mA Quiescent Current Change Δ IBIAS 10 mA 7.5 V ≤ VIN ≤ 21 V, IO = 500 mA Output Noise Voltage Vn 110 µVrms 10 Hz ≤ f ≤ 100 kHz Ripple Rejection R·R 53 58 dB f = 120 Hz, 7.5 V ≤ VIN ≤ 17.5 V Dropout Voltage VDIF 0.5 1.0 V I O = 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Short Circuit Current IOshort 0.6 A V IN = 21 V Peak Output Current IOpeak 0.75 1.0 1.63 A V IN = 10 V Temperature Coefficient of Δ VO /ΔT –0.4 mV/˚C I O = 5 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Output Voltage

µPC24M00A Series µPC24M07A (V IN = 11 V, IO = 350 mA, TJ = 25 ˚C, Unless otherwise specified) PARAMETER SYMBOL MIN. TYP. MAX. UNIT TEST CONDITIONS Output Voltage VO 6.86 7.0 7.14 V 6.79 7.21 8 V ≤ VIN ≤ 22 V, 5 mA ≤ IO ≤ 350 mA, 0 ˚C ≤ TJ ≤ 125 ˚C 6.79 7.21 5 mA ≤ IO ≤ 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Line Regulation REG IN 7 70 mV 8.5 V ≤ VIN ≤ 22 V Load Regulation REG L 4 35 mV 5 mA ≤ IO ≤ 500 mA Quiescent Current IBIAS 2.3 3.2 mA I O = 0 73 0 I O = 500 mA Start-up Current IBIAS(S) 15 mA V IN = 6.5 V, IO = 0 mA 45 VIN = 6.5 V, IO = 500 mA Quiescent Current Change Δ IBIAS 10 mA 8.5 V ≤ VIN ≤ 22 V, IO = 500 mA Output Noise Voltage Vn 130 µVrms 10 Hz ≤ f ≤ 100 kHz Ripple Rejection R·R 52 57 dB f = 120 Hz, 8.5 V ≤ VIN ≤ 18.5 V Dropout Voltage VDIF 0.5 1.0 V I O = 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Short Circuit Current IOshort 0.6 A V IN = 22 V Peak Output Current IOpeak 0.75 1.0 1.63 A V IN = 11 V Temperature Coefficient of Δ VO /ΔT 0.4 mV/˚C I O = 5 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Output Voltage µPC24M08A (V IN = 13 V, IO = 350 mA, TJ = 25 ˚C, Unless otherwise specified) PARAMETER SYMBOL MIN. TYP. MAX. UNIT TEST CONDITIONS Output Voltage VO 7.85 8.0 8.15 V 7.75 8.25

9 V ≤ VIN ≤ 23 V, 5 mA ≤ IO ≤ 350 mA,

0 ˚C ≤ TJ ≤ 125 ˚C 7.75 8.25 5 mA ≤ IO ≤ 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Line Regulation REG IN 8 80 mV 9.5 V ≤ VIN ≤ 23 V Load Regulation REG L 5 40 mV 5 mA ≤ IO ≤ 500 mA Quiescent Current IBIAS 2.3 3.2 mA I O = 0 73 0 I O = 500 mA Start-up Current IBIAS(S) 15 mA V IN = 7.5 V, IO = 0 mA 45 VIN = 7.5 V, IO = 500 mA Quiescent Current Change Δ IBIAS 10 mA 9.5 V ≤ VIN ≤ 23 V, IO = 500 mA Output Noise Voltage Vn 150 µVrms 10 Hz ≤ f ≤ 100 kHz Ripple Rejection R·R 51 56 dB f = 120 Hz, 9.5 V ≤ VIN ≤ 19.5 V Dropout Voltage VDIF 0.5 1.0 V I O = 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Short Circuit Current IOshort 0.5 A V IN = 23 V Peak Output Current IOpeak 0.74 1.0 1.62 A V IN = 13 V Temperature Coefficient of Δ VO /ΔT 0.8 mV/˚C I O = 5 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Output Voltage

µPC24M00A Series µPC24M09A (V IN = 14 V, IO = 350 mA, TJ = 25 ˚C, Unless otherwise specified) PARAMETER SYMBOL MIN. TYP. MAX. UNIT TEST CONDITIONS Output Voltage VO 8.82 9.0 9.18 V 8.73 9.27 10 V ≤ VIN ≤ 24 V, 5 mA ≤ IO ≤ 350 mA, 0 ˚C ≤ TJ ≤ 125 ˚C 8.73 9.27 5 mA ≤ IO ≤ 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Line Regulation REG IN 9 90 mV 10.5 V ≤ VIN ≤ 24 V Load Regulation REG L 5 45 mV 5 mA ≤ IO ≤ 500 mA Quiescent Current IBIAS 2.4 3.2 mA I O = 0 73 0 I O = 500 mA Start-up Current IBIAS(S) 15 mA V IN = 8.5 V, IO = 0 mA 45 VIN = 8.5 V, IO = 500 mA Quiescent Current Change Δ IBIAS 10 mA 10.5 V ≤ VIN ≤ 24 V, IO = 500 mA Output Noise Voltage Vn 170 µVrms 10 Hz ≤ f ≤ 100 kHz Ripple Rejection R·R 50 55 dB f = 120 Hz, 10.5 V ≤ VIN ≤ 20.5 V Dropout Voltage VDIF 0.5 1.0 V I O = 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Short Circuit Current IOshort 0.5 A V IN = 24 V Peak Output Current IOpeak 0.74 1.0 1.62 A V IN = 14 V Temperature Coefficient of Δ VO /ΔT 1.0 mV/˚C I O = 5 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Output Voltage µPC24M10A (V IN = 15 V, IO = 350 mA, TJ = 25 ˚C, Unless otherwise specified) PARAMETER SYMBOL MIN. TYP. MAX. UNIT TEST CONDITIONS Output Voltage VO 9.8 10 10.2 V 9.7 10.3

11 V ≤ VIN ≤ 25 V, 5 mA ≤ IO ≤ 350 mA,

0 ˚C ≤ TJ ≤ 125 ˚C 9.7 10.3 5 mA ≤ IO ≤ 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Line Regulation REG IN 10 100 mV 11.5 V ≤ VIN ≤ 25 V Load Regulation REG L 6 50 mV 5 mA ≤ IO ≤ 500 mA Quiescent Current IBIAS 2.4 3.2 mA I O = 0 73 0 I O = 500 mA Start-up Current IBIAS(S) 15 mA V IN = 9.5 V, IO = 0 mA 45 VIN = 9.5 V, IO = 500 mA Quiescent Current Change Δ IBIAS 10 mA 11.5 V ≤ VIN ≤ 25 V, IO = 500 mA Output Noise Voltage Vn 190 µVrms 10 Hz ≤ f ≤ 100 kHz Ripple Rejection R·R 49 54 dB f = 120 Hz, 11.5 V ≤ VIN ≤ 21.5 V Dropout Voltage VDIF 0.5 1.0 V I O = 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Short Circuit Current IOshort 0.4 A V IN = 25 V Peak Output Current IOpeak 0.74 1.0 1.62 A V IN = 15 V Temperature Coefficient of Δ VO /ΔT 1.6 mV/˚C I O = 5 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Output Voltage

µPC24M00A Series µPC24M12A (V IN = 18 V, IO = 350 mA, TJ = 25 ˚C, Unless otherwise specified) PARAMETER SYMBOL MIN. TYP. MAX. UNIT TEST CONDITIONS Output Voltage VO 11.75 12 12.25 V 11.65 12.35 13 V ≤ VIN ≤ 27 V, 5 mA ≤ IO ≤ 350 mA, 0 ˚C ≤ TJ ≤ 125 ˚C 11.65 12.35 5 mA ≤ IO ≤ 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Line Regulation REG IN 12 120 mV 14 V ≤ VIN ≤ 27 V Load Regulation REG L 7 60 mV 5 mA ≤ IO ≤ 500 mA Quiescent Current IBIAS 2.4 3.2 mA I O = 0 83 0 I O = 500 mA Start-up Current IBIAS(S) 15 mA V IN = 11.5 V, IO = 0 mA 45 VIN = 11.5 V, IO = 500 mA Quiescent Current Change Δ IBIAS 10 mA 14 V ≤ VIN ≤ 27 V, IO = 500 mA Output Noise Voltage Vn 230 µVrms 10 Hz ≤ f ≤ 100 kHz Ripple Rejection R·R 47 52 dB f = 120 Hz, 14 V ≤ VIN ≤ 24 V Dropout Voltage VDIF 0.5 1.0 V I O = 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Short Circuit Current IOshort 0.4 A V IN = 27 V Peak Output Current IOpeak 0.73 1.0 1.61 A V IN = 18 V Temperature Coefficient of Δ VO /ΔT 0.7 mV/˚C I O = 5 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Output Voltage µPC24M15A (V IN = 22 V, IO = 350 mA, TJ = 25 ˚C, Unless otherwise specified) PARAMETER SYMBOL MIN. TYP. MAX. UNIT TEST CONDITIONS Output Voltage VO 14.7 15 15.3 V 14.55 15.45 16 V ≤ VIN ≤ 27 V, 5 mA ≤ IO ≤ 350 mA, 0 ˚C ≤ TJ ≤ 125 ˚C 14.55 15.45 5 mA ≤ IO ≤ 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Line Regulation REG IN 15 150 mV 17 V ≤ VIN ≤ 27 V Load Regulation REG L 9 75 mV 5 mA ≤ IO ≤ 500 mA Quiescent Current IBIAS 2.5 3.2 mA I O = 0 83 0 I O = 500 mA Start-up Current IBIAS(S) 15 mA V IN = 14.5 V, IO = 0 mA 45 VIN = 14.5 V, IO = 500 mA Quiescent Current Change Δ IBIAS 10 mA 17 V ≤ VIN ≤ 27 V, IO = 500 mA Output Noise Voltage Vn 290 µVrms 10 Hz ≤ f ≤ 100 kHz Ripple Rejection R·R 46 51 dB f = 120 Hz, 17 V ≤ VIN ≤ 27 V Dropout Voltage VDIF 0.5 1.0 V I O = 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Short Circuit Current IOshort 0.4 A V IN = 27 V Peak Output Current IOpeak 0.72 1.0 1.6 A V IN = 22 V Temperature Coefficient of Δ VO /ΔT 1.6 mV/˚C I O = 5 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Output Voltage

µPC24M00A Series µPC24M18A (V IN = 25 V, IO = 350 mA, TJ = 25 ˚C, Unless otherwise specified) PARAMETER SYMBOL MIN. TYP. MAX. UNIT TEST CONDITIONS Output Voltage VO 17.64 18 18.36 V 17.46 18.54 19 V ≤ VIN ≤ 28 V, 5 mA ≤ IO ≤ 350 mA, 0 ˚C ≤ TJ ≤ 125 ˚C 17.46 18.54 5 mA ≤ IO ≤ 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Line Regulation REG IN 18 180 mV 20 V ≤ VIN ≤ 28 V Load Regulation REG L 11 90 mV 5 mA ≤ IO ≤ 500 mA Quiescent Current IBIAS 2.5 3.2 mA I O = 0 83 0 I O = 500 mA Start-up Current IBIAS(S) 15 mA V IN = 17.5 V, IO = 0 mA 45 VIN = 17.5 V, IO = 500 mA Quiescent Current Change Δ IBIAS 10 mA 20 V ≤ VIN ≤ 28 V, IO = 500 mA Output Noise Voltage Vn 350 µVrms 10 Hz ≤ f ≤ 100 kHz Ripple Rejection R·R 44 49 dB f = 120 Hz, 20 V ≤ VIN ≤ 28 V Dropout Voltage VDIF 0.5 1.0 V I O = 500 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Short Circuit Current IOshort 0.4 A V IN = 28 V Peak Output Current IOpeak 0.72 1.0 1.6 A V IN = 25 V Temperature Coefficient of Δ VO /ΔT 2.2 mV/˚C I O = 5 mA, 0 ˚C ≤ TJ ≤ 125 ˚C Output Voltage

µPC24M00A Series TYPICAL CHARACTERISTICS Pd - TA 1.92 100 150 TA – Ambient Temperature – ˚C Pd – Power Dissipation – W With Infinite Heatsink Without Heatsink 85 ˚C Δ VO - TJ ( PC24M05A) +100 +50 –100 100 150 TJ – Junction Temperature – ˚C Δ VO – Output Voltage Deviation – mV µ VIN = 9 V IO = 5 mA V IN – Input Voltage – V VO – Output Voltage – V IO = 0 mA 350 mA 500 mA VO - VIN ( PC24M05A) µ VIN – Input Voltage – V IBIAS – Quiescent Current – mA IBIAS(IBIAS(S)) - VIN ( PC24M05A) µ TJ = 25 ˚C IO = 350 mA IO = 0 IO = 500 mA

µPC24M00A Series TYPICAL CHARACTERISTICS IOpeak - (VIN - VO ) 1.5 1.0 0.5 (VIN - VO ) – Input Output Differential – V IOpeak – Peak Output Current – A TJ – Junction Temperature – ˚C VDIF – Dropout Voltage – V 150 100 IO = 500 mA 0.4 0.8 0.6 0.2 VDIF - TJ f – Frequency – Hz R·R – Ripple Rejection – dB 100 100 k 10 k TJ = 25 ˚C IO = 350 mA R·R - f ( PC24M05A) µ 1 k TJ = –20 ˚C 25 ˚C 125 ˚C

µPC24M00A Series PACKAGE DIMENSIONS (Unit: mm) µPC24M00AHF Series 3PIN PLASTIC SIP (MP-45G)

µPC24M00A Series RECOMMENDED SOLDERING CONDITIONS The following conditions (see table below) must be met when soldering this product. Please consult with our sales offices in case other soldering process is used, or in case soldering is done under different conditions. TYPES OF THROUGH HOLE MOUNT DEVICE µPC24M00AHF Series Soldering Process Soldering Conditions Symbol Wave soldering Solder temperature: 260 ˚C or below. Flow Time: 10 seconds or below. REFERENCE Document Name Document No. NEC semiconductor device reliability/quality control system IEI-1212 Quality grade on NEC semiconductor devices IEI-1209 Semiconductor device mounting technology manual IEI-1207 Semiconductor device package manual IEI-1213 Guide to quality assurance for semiconductor devices MEI-1202 Semiconductor selection guide MF-1134

µPC24M00A Series [MEMO]

µPC24M00A Series No part of this document may be copied or reproduced in any form or by any means without the prior written consent of NEC Corporation. NEC Corporation assumes no responsibility for any errors which may appear in this document. NEC Corporation does not assume any liability for infringement of patents, copyrights or other intellectual property rights of third parties by or arising from use of a device described herein or any other liability arising from use of such device. No license, either express, implied or otherwise, is granted under any patents, copyrights or other intellectual property rights of NEC Corporation or others. While NEC Corporation has been making continuous effort to enhance the reliability of its semiconductor devices, the possibility of defects cannot be eliminated entirely. To minimize risks of damage or injury to persons or property arising from a defect in an NEC semiconductor device, customer must incorporate sufficient safety measures in its design, such as redundancy, fire-containment, and anti-failure features. NEC devices are classified into the following three quality grades: “Standard“, “Special“, and “Specific“. The Specific quality grade applies only to devices developed based on a customer designated “quality assurance program“ for a specific application. The recommended applications of a device depend on its quality grade, as indicated below. Customers must check the quality grade of each device before using it in a particular application. Standard: Computers, office equipment, communications equipment, test and measurement equipment, audio and visual equipment, home electronic appliances, machine tools, personal electronic equipment and industrial robots Special: Transportation equipment (automobiles, trains, ships, etc.), traffic control systems, anti-disaster systems, anti-crime systems, safety equipment and medical equipment (not specifically designed for life support) Specific: Aircrafts, aerospace equipment, submersible repeaters, nuclear reactor control systems, life support systems or medical equipment for life support, etc. The quality grade of NEC devices in “Standard“ unless otherwise specified in NEC's Data Sheets or Data Books. If customers intend to use NEC devices for applications other than those specified for Standard quality grade, they should contact NEC Sales Representative in advance. Anti-radioactive design is not implemented in this product. M4 94.11