UPC7900A 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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The recommended applications for each Renesas Electronics product depends on the product’s quality grade, as indicated below. You must check the quality grade of each Renesas Electronics product before using it in a particular application. You may not use any Renesas Electronics product for any application categorized as “Specific” without the prior written consent of Renesas Electronics. Further, you may not use any Renesas Electronics product for any application for which it is not intended without the prior written consent of Renesas Electronics. Renesas Electronics shall not be in any way liable for any damages or losses incurred by you or third parties arising from the use of any Renesas Electronics product for an application categorized as “Specific” or for which the product is not intended where you have failed to obtain the prior written consent of Renesas Electronics. The quality grade of each Renesas Electronics product is “Standard” unless otherwise expressly specified in a Renesas Electronics data sheets or data books, etc. “Standard”: Computers; office equipment; co mmunications equipment; test and measurement equipment; audio and visual equipment; home electronic appliances; machine tools; personal electronic equipment; and industrial robots. “High Quality”: Transportation equi pment (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”: Aircraft; aerospace equipment; submersible repeaters; nuclear reactor control systems; medical equipment or systems for life support (e.g. artificial life support devices or systems), surgical implantations, or healthcare intervention (e.g. excision, etc.), and any other applications or purposes that pose a direct threat to human life. 8. You should use the Renesas Electronics pr oducts described in this document within the range specified by Renesas Electronics, especially with respect to the maximum rating, operating supply voltage range, movement power voltage range, heat radiation characteristics, installation and other product characteristics. Renesas Electronics shall have no liability for malfunctions or damages arising out of the use of Renesas Electronics products beyond such specified ranges. 9. Although Renesas Electronics endeavors to improve the quality and reliability of its products, semiconductor products have specific characteristics such as the occurrence of failure at a certain rate and malfunctions under certain use conditions. Further, Renesas Electronics products are not subject to radiation resistance design. Please be sure to implement safety measures to guard them against the possibility of physical injury, and injury or damage caused by fire in the event of the failure of a Renesas Electronics product, such as safety design for hardware and software including but not limited to redundancy, fire control and malfunction prevention, appropriate treatment for aging degradation or any other appropriate measures. Because the evaluation of microcomputer software alone is very difficult, please evaluate the safety of the final products or system manufactured by you. 10. Please contact a Renesa s Electronics sales office for details as to environmental matters such as the environmental compatibility of each Renesas Electronics product. Please use Renesas Electronics products in compliance with all applicable laws and regulations that regulate the inclusion or use of controlled substances, including without limitation, the EU RoHS Directive. Renesas Electronics assumes no liability for damages or losses occurring as a result of your noncompliance with applicable laws and regulations. 11. This document may not be reproduced or duplicated, in any form, in whole or in part, without prior written consent of Renesas Electronics. 12. Please contact a Renesa s Electronics sales office if you have any questions regarding the information contained in this document or Renesas Electronics products, or if you have any other inquiries. (Note 1) “Renesas Electronics” as used in this document means Renesas Electronics Corporation and also includes its majority- owned subsidiaries. (Note 2) “Renesas Electronics product(s)” means any product developed or manufactured by or for Renesas Electronics.
© 1994 DATA SHEET BIPOLAR ANALOG INTEGRATED CIRCUIT
DESCRIPTION
µPC7900A series are monolithic three terminal negative regulators which employ internally current limiting, thermal shut down, output transistor safe operating area protection make them essentially indestructible. They are intended as fixed voltage regulators in a wide range of application including local on card regulation for elimination of distribution problems associated wide single point regulation.
FEATURES
- Wide operation temperature range. TA: –30 ˚C to +85 ˚C
- Good load regulation. 7 mV TYP. (250 mA ≤ IO ≤ 750 mA): µPC7905AHF
- Low noise.
ORDERING INFORMATION
Part Number Output Voltage Package µPC7905AHF –5 V MP-45G (ISOLATED TO-220) µPC7908AHF –8 V MP-45G (ISOLATED TO-220) µPC7912AHF –12 V MP-45G (ISOLATED TO-220) µPC7915AHF –15 V MP-45G (ISOLATED TO-220) µPC7918AHF –18 V MP-45G (ISOLATED TO-220) µPC7924AHF –24 V MP-45G (ISOLATED TO-220) Document No. G10640EJ3V0DS00 (3rd edition) (Previous No. IC-3486) Date Published March 1997 N Printed in Japan µPC7900A Series The information in this document is subject to change without notice. THREE TERMINAL NEGATIVE VOLTAGE REGULATOR
µPC7900A Series EQUIVALENT CIRCUIT R4 R15 Q12 Q13 Q14 R1 R2 R16 Q4Q7 R10 R3 R18 Q11 R9 R21 R22 Q15 Q10 Q17 Q27 Q22 R20 R19 R23 R24 Q29 Q20 R30 C4 R32 Q21 R31 Q19 R29 R28 Q16 Q23 Q28 Q18 R27 R25 R26 Q24 R11R17 OUTPUTQ25 R14 R12 Q26 INPUT R13 CONNECTION DIAGRAM GND INPUT OUTPUT Marking TYPICAL CONNECTION INPUT C IN D 1 OUTPUT C OUTD 2 PC7900Aµ C IN : More than 2.2 µF C OUT : More than 0.33 µF D 1 : Needed for VIN > VO D 2 : Needed for VO > GND
µPC7900A Series ABSOLUTE MAXIMUM REATINGS (T A = 25 ˚C) Parameter Symbol Rating Unit Input Voltage VIN –35/–40 Note 1 V Internal Power Dissipation PT 15 Note 2 W Operating Ambient Temperature Range TA –30 to +85 ˚C Operating Junction Temperature Range TJ –30 to +150 ˚C Storage Temperature Range Tstg –55 to +150 ˚C Thermal Resistance (junction to case) R th(J-C) 5.0 ˚C/W Thermal Resistance (junction to ambient) R th(J-A) 65 ˚C/W Note 1. µPC7905A, 08A, 12A, 15A, 18A: –35 V, µPC7924A: –40 V 2. Internally limited RECOMMENDED OPERATING CONDITIONS Parameter Symbol Part Number MIN. TYP. MAX. Unit Input Voltage VIN µPC7905AHF –7 –10 –25 V µPC7908AHF –10.5 –14 –25 µPC7912AHF –14.5 –19 –30 µPC7915AHF –17.5 –23 –30 µPC7918AHF –21 –27 –33 µPC7924AHF –27 –33 –38 Output Current IO All 0.005 1 A Operating Ambient T A All –30 +85 ˚C Temperature Operating Junction T J All –30 +125 ˚C Temperature Range
µPC7900A Series ELECTRICAL CHARACTERISTICS (T A = 25 ˚C) µPC7905A (VIN = –10 V, Io = 500 mA, 0 ˚C ≤ TJ ≤ +125 ˚C) Parameter Symbol Conditions MIN. TYP. MAX. Unit Output Voltage VO TJ = 25 ˚C –4.8 –5.0 –5.2 V –7 V ≤ VIN ≤ –20 V, 5 mA ≤ IO ≤ 1 A, –4.75 –5.25 PT ≤ 15 W Line Regulation REG IN TJ = 25 ˚C, –7 V ≤ VIN ≤ –25 V 25 100 mV TJ = 25 ˚C, –8 V ≤ VIN ≤ –12 V 3 50 Load Regulation REG L TJ = 25 ˚C, 5 mA ≤ IO ≤ 1.5 A 30 100 mV TJ = 25 ˚C, 250 mA ≤ IO ≤ 750 mA 7 50 Quiescent Current IBIAS TJ = 25 ˚C 3.6 6.0 mA Quiescent Current Change ΔIBIAS –7 V ≤ VIN ≤ –25 V 1.3 mA 5 mA ≤ IO ≤ 1 A 0.5 Output Noize Voltage V n TJ = 25 ˚C, 10 Hz ≤ f ≤ 100 kHz 77 µVr.m.s Ripple Rejection R•R T J = 25 ˚C, f = 120 Hz, –8 V ≤ VIN ≤ –18 V, 56 63 dB IO = 500 mA Dropout Voltage VDIF TJ = 25 ˚C, IO = 1A 1.2 V Peak Output Current I Opeak TJ = 25 ˚C 1.6 2.2 2.8 A Temperature Coefficient | Δ VO /ΔT| I O = 5 mA 0.36 mV/˚C of Output Voltage µPC7908A (VIN = –14 V, IO = 500 mA, 0 ˚C ≤ TJ ≤ +125 ˚C) Parameter Symbol Conditions MIN. TYP. MAX. Unit Output Voltage VO TJ = 25 ˚C –7.7 –8.0 –8.3 V PT ≤ 15 W Line Regulation REG IN TJ = 25 ˚C, –10.5 V ≤ VIN ≤ –25 V 33 150 mV TJ = 25 ˚C, –11 V ≤ VIN ≤ –17 V 14 75 Load Regulation REG L TJ = 25 ˚C, 5 mA ≤ IO ≤ 1.5 A 40 160 mV TJ = 25 ˚C, 250 mA ≤ IO ≤ 750 mA 14 80 Quiescent Current IBIAS TJ = 25 ˚C 3.9 6.0 mA Quiescent Current Change ΔIBIAS –10.5 V ≤ VIN ≤ –25 V 1.0 mA 5 mA ≤ IO ≤ 1 A 0.5 Output Noize Voltage V n TJ = 25 ˚C, 10 Hz ≤ f ≤ 100 kHz 130 µVr.m.s Ripple Rejection R•R T J = 25 ˚C, –11.5 V ≤ VIN ≤ –21.5 V, 52 58 dB f = 120 Hz, IO = 500 mA Dropout Voltage VDIF TJ = 25 ˚C, IO = 1 A 1.2 V Peak Output Current I Opeak TJ = 25 ˚C 1.6 2.2 2.8 A Temperature Coefficient | Δ VO /ΔT| I O = 5 mA 0.32 mV/˚C of Output Voltage
µPC7900A Series µPC7912A (VIN = –19 V, IO = 500 mA, 0 ˚C ≤ TJ ≤ +125 ˚C) Parameter Symbol Conditions MIN. TYP. MAX. Unit Output Voltage VO TJ = 25 ˚C –11.5 –12 –12.5 V PT ≤ 15 W Line Regulation REG IN TJ = 25 ˚C, –14.5 V ≤ VIN ≤ –30 V 60 200 mV TJ = 25 ˚C, –16 V ≤ VIN ≤ –22 V 25 100 Load Regulation REG L TJ = 25 ˚C, 5 mA ≤ IO ≤ 1.5 A 70 220 mV TJ = 25 ˚C, 250 mA ≤ IO ≤ 750 mA 20 110 Quiescent Current IBIAS TJ = 25 ˚C 4.1 6.2 mA Quiescent Current Change ΔIBIAS –14.5 V ≤ VIN ≤ –30 V 1.0 mA 5 mA ≤ IO ≤ 1A 0.5 Output Noize Voltage V n TJ = 25 ˚C, 10 Hz ≤ f ≤ 100 kHz 140 µVr.m.s Ripple Rejection R•R TJ = 25 ˚C, f = 120 Hz, –15 V ≤ VIN ≤ –25 V, 49 56 dB IO = 500 mA Dropout Voltage VDIF TJ = 25 ˚C, IO = 1A 1.2 V Peak Output Current I Opeak TJ = 25 ˚C 1.6 2.2 2.8 A Temperature Coefficient | Δ VO /ΔT| I O = 5 mA 0.04 mV/˚C of Output Voltage µPC7915A (VIN = –23 V, IO = 500 mA, 0 ˚C ≤ TJ ≤ +125 ˚C) Parameter Symbol Conditions MIN. TYP. MAX. Unit Output Voltage VO TJ = 25 ˚C –14.4 –15 –15.6 V –17.5 V ≤ VIN ≤ –30 V, 5 mA ≤ IO ≤ 1 A, –14.25 –15.75 PT ≤ 15 W Line Regulation REG IN TJ = 25 ˚C, –17.5 V ≤ VIN ≤ –30 V 60 200 mV TJ = 25 ˚C, –20 V ≤ VIN ≤ –26 V 30 100 Load Regulation REG L TJ = 25 ˚C, 5 mA ≤ IO ≤ 1.5 A 100 300 mV TJ = 25 ˚C, 250 mA ≤ IO ≤ 750 mA 30 150 Quiescent Current IBIAS TJ = 25 ˚C 4.2 6.2 mA Quiescent Current Change ΔIBIAS –17.5 V ≤ VIN ≤ –30 V 1.0 mA 5 mA ≤ IO ≤ 1 A 0.5 Output Noize Voltage V n TJ = 25 ˚C, 10 Hz ≤ f ≤ 100 kHz 240 µVr.m.s Ripple Rejection R•R T J = 25 ˚C, f = 120 Hz, 47 54 dB –18.5 V ≤ VIN ≤ –28.5 V, IO = 500 mA Dropout Voltage VDIF TJ = 25 ˚C, IO = 1 A 1.2 V Peak Output Current I Opeak TJ = 25 ˚C 1.6 2.2 2.8 A Temperature Coefficient | Δ VO /ΔT| I O = 5 mA 1.2 mV/˚C of Output Voltage
µPC7900A Series µPC7918A (VIN = –27 V, IO = 500 mA, 0 ˚C ≤ TJ ≤ +125 ˚C) Parameter Symbol Conditions MIN. TYP. MAX. Unit Output Voltage VO TJ = 25 ˚C –17.3 –18 –18.7 V –21 V ≤ VIN ≤ –33 V, 5 mA ≤ IO ≤ 1 A, –17.1 –18.9 PT ≤ 15 W Line Regulation REG IN TJ = 25 ˚C, –21 V ≤ VIN ≤ –33 V 60 240 mV TJ = 25 ˚C, –24 V ≤ VIN ≤ –30 V 30 120 Load Regulation REG L TJ = 25 ˚C, 5 mA ≤ IO ≤ 1.5 A 125 360 mV TJ = 25 ˚C, 250 mA ≤ IO ≤ 750 mA 47 180 Quiescent Current IBIAS TJ = 25 ˚C 4.1 6.5 mA Quiescent Current Change ΔIBIAS –21 V ≤ VIN ≤ –33 V 1.0 mA 5 mA ≤ IO ≤ 1 A 0.5 Output Noize Voltage V n TJ = 25 ˚C, 10 Hz ≤ f ≤ 100 kHz 190 µVr.m.s Ripple Rejection R•R TJ = 25 ˚C, f = 120 Hz, –22 V ≤ VIN ≤ –32 V, 45 53 dB IO = 500 mA Dropout Voltage VDIF TJ = 25 ˚C, IO = 1 A 1.2 V Peak Output Current I Opeak TJ = 25 ˚C 1.6 2.2 2.8 A Temperature Coefficient | Δ VO /ΔT| I O = 5 mA 0.24 mV/˚C of Output Voltage µPC7924A (VIN = –33 V, IO = 500 mA, 0 ˚C ≤ TJ ≤ +125 ˚C) Parameter Symbol Conditions MIN. TYP. MAX. Unit Output Voltage VO TJ = 25 ˚C –23.0 –24 –25.0 V –27 V ≤ VIN ≤ –38 V, 5 mA ≤ IO ≤ 1 A, –22.8 –25.2 PT ≤ 15 W Line Regulation REG IN TJ = 25 ˚C, –27 V ≤ VIN ≤ –38 V 70 280 mV TJ = 25 ˚C, –30 V ≤ VIN ≤ –36 V 37 140 Load Regulation REG L TJ = 25 ˚C, 5 mA ≤ IO ≤ 1.5 A 160 480 mV TJ = 25 ˚C, 250 mA ≤ IO ≤ 750 mA 60 240 Quiescent Current IBIAS TJ = 25 ˚C 4.2 6.5 mA Quiescent Current Change ΔIBIAS –27 V ≤ VIN ≤ –38 V 1.0 mA 5 mA ≤ IO ≤ 1 A 0.5 Output Noize Voltage V n TJ = 25 ˚C, 10 Hz ≤ f ≤ 100 kHz 240 µVr.m.s Ripple Rejection R•R TJ = 25 ˚C, f = 120 Hz, –28 V ≤ VIN ≤ –38 V, 43 49 dB IO = 500 mA Dropout Voltage VDIF TJ = 25 ˚C, IO = 1 A 1.2 V Peak Output Current I Opeak TJ = 25 ˚C 1.6 2.2 2.8 A Temperature Coefficient | Δ VO /ΔT| I O = 5 mA 1.1 mV/˚C of Output Voltage
µPC7900A Series TYPICAL CHARACTERISTICS (T A = 25 ˚C) –25 0 25 50 75 100 125 150 –25 –50 –75 –100 –125 –150 –175 –200 ΔV O - TJ ΔV O - Output Voltage Deviation - mV TJ - Junction Temperature - ˚C IO = 5 mA ΔV O = VO (TJ = 25 ˚C) – VO (TJ) µ PC7905A µ PC7912A µ PC7918A 2.0 VDIF - IO VDIF - Dropout Voltage - V IO - Output Current - A 150 PT - TA PT - Total Power Dissipation - W TA - Operating Ambient Temperature - ˚C 02 0 IOpeak - (VIN - VOUT ) IOpeak - Peak Output Current - A (VIN - VOUT ) - Input to Output Differential Voltage - V 1.75 1.5 1.25 1.0 0.75 0.5 0.25 TJ = –30 ˚C 25 ˚C 125 ˚C 4 8 12 16 2.5 1.5 TJ = –30 ˚C 25 ˚C 125 ˚C 105 100 R·R - f R·R - Ripple Rejection - dB f - Frequency - Hz µ PC7905A µ PC7918A µ PC7912A 104103102101 125100 75 50 250 Without heatsink 85 ˚C With infinite heatsink
µPC7900A Series µPC7900AHF Series 3PIN PLASTIC SIP (MP-45G) NOTE Each lead centerline is located within 0.25 mm (0.01 inch) of its true position (T.P.) at maximum material condition. ITEM MILLIMETERS INCHES P3HF-254B-2 G 0.25 0.010 A 10.4 MAX. 0.410 MAX. –0.020 V Z 1.0 MIN. 0.039 MIN. J K L 8.5 0.335 B 7.0 0.276 C 1.2 MIN. 0.047 MIN. –0.012 E 0.130±0.008 F 0.75±0.10 0.030 +0.004 –0.005 M 8.5 0.335 N Q 22.4 MAX. 0.882 MAX. –0.008 3.3±0.2 φ 2.66 MAX. 4.8 MIN. 0.105 MAX. 0.188 MIN. 0.65±0.10 0.026 φ +0.004 –0.005 M A B E I D L M K Y JH C FG Z N Q P UV
µPC7900A Series RECOMMENDED SOLDERING CONDITIONS When soldering this product, it is highly recommended to observe the conditions as shown below. If other soldering processes are used, or if the soldering is performed under different conditions, please make sure to consult with our sales offices. For more details, refer to our document “SEMICONDUCTOR DEVICE MOUNTING TECHNOLOGY MANUAL” (C10535E). TYPES OF THROUGH HOLE MOUNT DEVICE µPC7900AHF 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. C11531E Semiconductor device mounting technology manual. C10535E IC package manual. C10943X Guide to quality assurance for semiconductor devices. MEI-1202 Semiconductors selection guide. X10679E
µPC7900A Series [MEMO]
µPC7900A Series [MEMO]
µPC7900A Series [MEMO] 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, customers 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 is "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 an NEC sales representative in advance. Anti-radioactive design is not implemented in this product. M4 96.5