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  1/4 rev. b structure silicon monolithic integrated circuit product series strobe charge control ic type ?1nux functions 1. built-in low vth dmos 45v 2. adjustable transformer primary- side peak current by radj pin 3. standby mode switching with the start pin. 4. includes charge complete s ignal output (full) pin. includes charge voltage detectio n (vc) pin (can be set external ly). 5. built-in thermal shutdown circuit (tsd). built-in under voltage looked out (uvlo). 6. built-in transformer secondary-side open, short protection . 7. son 10pin package vsono10x 3020(3.0mm2.0mm0.6mm) absolute maximum ratings(ta=25) reduced by 12.32 mw/c over ta = 25c. (when mounted on 74.2 mm ? 74.2 mm ? 1.6 mm, glass epoxy) recommended operating ranges parameter symbol limit unit vcc pin vcc -0.3 to 7 v sw pin vsw 45 v vc pin vc -0.3 to 7 v start pin start -0.3 t o7 v full pin full -0.3 t o7 v igbt_in pin igbt_in -0.3 to 7 v operating temperature topr ?35 to 85 storage temperature range tstg ?55 to 150 junction temperature tjmax 150 power dissipation pd 1540 mw parameter symbol limit unit vcc power supply input voltage range vcc 2.5 to 5.5 v vc pin input voltage range vc -0.3 to vcc v start pin input voltage range vstart 0 to vcc v igbt_in pin input voltage range vigbt_in 0 to vcc v full pin input voltage range vfull 0 to 5.5 v
2/4 rev. b electrical characteristics (ta =25vcc=v(start)=3.3 v, v(igbt _in)=0v) parameter symbol limit unit conditions min. typ. max. [overall device] vcc circuit current icc D 1.5 3 ma circuit current standby opera tion istb D D 1 a start=0v [standby control start pin] start pin high voltage vsth 2 D D v start pin low voltage vstl D D 0.6 v input bias current istart 12 24 36 a start=3.3v [transformer primary -side driver block] sw pin leak current iswl D D 1 a sw=45v sw pin peak current ipeak 0.4 0.5 0.6 a radj=100k sw saturation voltage vsat 0.2 0.4 v isw=0.5a radj adjustable range radj 33 100 k [charging control block] max on time tonmax 20 40 100 s max off time toffmax 10 20 50 s [transformer secondary-side detection block] vc pin input current ivc D D 1 avc=vcc full charge detection voltage vfullth 0.9875 1 1.0125 v full pin on resistor rfulll 0.5 1 2 k vc=vcc,full=0.5v full pin leak current ifulll 1 a full=3.3v [protection circuit block] uvlo detect voltage vuvloth 1.95 2.1 2.25 v vcc detection uvlo hysteresis vuvlohys 120 200 280 mv [igbt driver block] output short high current ioso 90 140 200 ma igbt_in=3.3v,start=0v ,igbt_out=0v output short low current iosi 30 60 90 ma igbt_in=3.3v, start=0v ,igbt_out=3.3v igbt_in input high voltage range1 vigbth 2 v start=0v igbt_in input high voltage range vigbtl 0.6 v start=0v igbt_in sink current iigbt_in 12 24 36 a start=0v igbt_in response time rise tres_rise1 1 2 s igbt_inigbt_out response time(rise) start=0v igbt_in response time fall tres_fall1 120 200 ns igbt_inigbt_out response time(fall) start=0v igbt_in response time rise tres_rise2 15 80 ns igbt_inigbt_out response time(rise) start=3.3v igbt_in response time fall tres_fall2 120 200 ns igbt_inigbt_out response time(fall) start=3.3v this product is not designed for normal operation within a rad ioactive environment
3/4 rev. b 0.40.1 0.640.1 0.6max (0.12) +0.03 0.02 -0.02 2.00.1 block diagram fig.1 block diagram package (unit:mm) pin no. pin no. pin name function 1 pgnd power gnd 2 igbt_out igbt driver output 3 gnd ground pin 4 vc secondaryCside voltage detection pin 5 vcc vcc supply pin 6 start standby pin 7 igbt_in nput terminal of trigger signal for starting output of igbt driver 8 radj primary-side current control pin 9 full full charge detection flag pin 10 sw switching pin fig. 2 marking specification b d 4 2 2 1 n u lot no.
4/4 rev. b cautions on use 1. absolute maximum ratings an excess in the absolute maximum ratings, such as supply volta ge, temperature range of operating conditions, etc., can break down the devices, thus making impossible to identify breaking mode, such as a short circuit or an open circuit. if any over rated value s will expect to exceed the absolute maximum ra tings, consider adding circuit protection devices, such as fuses. 2. gnd and pgnd potential ensure a minimum gnd and pgnd(except for sw pin and vc pin) pin potential in all operating conditions. in addition, ensure tha t no pins other than the gnd and pgnd pin carry a voltage less th an or equal to the gnd and pgnd pin, including during actual transient phenomena. dont use vc pin under absolute maximum rating. 3. thermal design use a thermal design that allows for a sufficient margin in lig ht of the power dissipation (pd) i n actual operating conditions . 4. protect circuit the ic does not incorporate buil t-in malfunction protection suc h as overcurrent protection, short detection, or thermal shutdo wn circuitry. for this reason, the ic may be damaged if it is shor ted or subjected to a load that exceeds the package power. the design of peripheral application circuits should reflect these potential risks. 5. inter-pin shorts and mounting errors use caution when positioning the ic for mounting on printed cir cuit boards. the ic may be damaged if there is any connection error or if positive and ground power supply terminals are reve rsed. the ic may also be damaged if pins are shorted together o r are shorted to other circuits power lines. 6. common impedance the power supply and ground lines must be as short and thick as possible to reduce line impedance. fluctuating voltage on the power ground line m ay damage the device. 7. ic pin input this is the monolithic ic and has p + isolation and p substrate for e lement isolation between each e lement. by the p layer and n layer of each element, a p-n ju nction is formed and various par asitic elements are configured. for example, in the case of a res istor and transistor being con nected to a pin as shown in fig.-3; p-n junction operates as a parasitic diode when gnd > (pin a) i n the case of the resistor, and when gnd > (pin b) in the case of the transistor (npn) also, a parasitic npn transistor operates by the n layer of ano ther element adjacent to the previous diode in the case of a transistor (npn) when gnd > (pin b). the parasitic element consequent ly emerges through the potentia l relationship because of ics structure. the parasitic element pulls interference out of the circuit which may be the cause of malfunction or destruction. therefore, excessive caution is required to avoid operation of the parasitic element which is c aused by applying voltage to an input pin lower than gnd (p boa rd), etc. pin ? gnd parasitic element p substrate n p n p p pin a parasitic element resistor fig.3 other adjacent elements parasitic el t transistor (npn) gnd p substrate n p n p p pin b b n e c gnd n
r1010 a www.rohm.com ? 2010 rohm co., ltd. all rights reserved. notice rohm customer support system http://www.rohm.com/contact/ thank you for your accessing to rohm product informations. more detail product informations and catalogs are available, please contact us. notes no copying or reproduction of this document, in part or in whole, is permitted without the consent of rohm co.,ltd. the content specified herein is subject to change for improvement without notice. the content specified herein is for the purpose of introducing rohm's products (hereinafter "products"). if you wish to use any such product, please be sure to refer to the specifications, which can be obtained from rohm upon request. examples of application circuits, circuit constants and any other information contained herein illustrate the standard usage and operations of the products. the peripheral conditions must be taken into account when designing circuits for mass production. great care was taken in ensuring the accuracy of the information specified in this document. however, should you incur any damage arising from any inaccuracy or misprint of such information, rohm shall bear no responsibility for such damage. the technical information specified herein is intended only to show the typical functions of and examples of application circuits for the products. rohm does not grant you, explicitly or implicitly, any license to use or exercise intellectual property or other rights held by rohm and other parties. rohm shall bear no responsibility whatsoever for any dispute arising from the use of such technical information. the products specified in this document are intended to be used with general-use electronic equipment or devices (such as audio visual equipment, office-automation equipment, commu- nication devices, electronic appliances and amusement devices). the products specified in this document are not designed to be radiation tolerant. while rohm always makes efforts to enhance the quality and reliability of its products, a product may fail or malfunction for a variety of reasons. please be sure to implement in your equipment using the products safety measures to guard against the possibility of physical injury, fire or any other damage caused in the event of the failure of any product, such as derating, redunda ncy, fire control and fail-safe designs. rohm shall bear no responsibility whatsoever for your use of any product outside of the prescribed scope or not in accordance with the instruction manual. the products are not designed or manufactured to be used with any equipment, device or system which requires an extremely high level of reliability the failure or malfunction of which may result in a direct threat to human life or create a risk of human injury (such as a medical instrument, transportation equipment, aerospac e machinery, nuclear-reactor controller, fuel- controller or other safety device). rohm shall bear no responsibility in any way for use of any of the products for the above special purposes. if a product is intended to be used for any such special purpose, please contact a rohm sales representative before purchasing. if you intend to export or ship overseas any product or technology specified herein that may be controlled under the foreign exchange and the foreign trade law, you will be required to obtain a license or permit under the law.


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