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  product structure silicon monolithic integrated circuit this product h as no designed protection against radioactive rays 1 / 26 tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co ., ltd. all rights reserved. 17. nov .2014 rev.00 1 www.rohm.com tsz22111 ? 14 ? 001 36v i high - performance i and high - reliability withstand voltage stepping motor driver bd63 7 30efv general description bd63 7 30efv is a low - power motor driver that drives load by pwm current. rated power supply voltage of the device is 36v, and rated output current is 3.0 a. the input interface are interchangeable between clk - in drive mode and the parallel - in drive mode, and excitation mode is corresponding to full step , half step (2 types) , and quarter step modes via a built - in dac. in terms of current decay, the fast decay/slow decay ratio may be set without any limitation, and all available modes may be controlled in the most appropriate way. in addition , the power supply may be driven by one single system, which simplifies the design. features rated output current of 3.0a dc low on - resistance dmos output clk -in drive mode parallel -in drive mode pwm constant current control (other oscillation) buil t - in spike noise cancel function (external noise filter is unnecessary) full - step , half - step (two types ) , and quarter - step functionality dynamic excitation mode switch current decay mode switch ( linear ly variable fast/slow decay ratio ) normal rotation & reverse rotation switching function power save function built - in logic input pull - down resistor power - on reset function thermal shutdown circuit (tsd) over - current protection circuit ( ocp ) under voltage lock out circuit (uvlo) over volt age lock out circuit (ovlo) ghost supply prevention (protects against malfunction when power supply is disconnected) electrostatic discharge: 4kv (hbm specification) adjacent pins short protection micro miniature , ultra - thin and high heat - radiation (exposed metal type) package application ppc , multi - function printer, laser beam printer, and ink - jet printer monitoring camera and web camera sewing machin e photo printer, fax , scanner and mini printer toy and robot key specification range of power supply voltage: rated output current (continuous): rated output current (peak value): range of operating temperature: output on - resistance (total of upper and lo wer resistors): 19 to 28 [v] 3 .0 [a] 3 . 5 [a] - 25 to +85 [c] 0. 40 [] (typ) package w(typ) x d(typ)x h(max) typical application circuit figure 1. bd63 7 30efv application circuit diagram htssop - b 54 18 .50mm x 9.5 0mm x 1.00mm cr mth vcc1 out1b out1a rnf1 vcc2 out2a gnd out2b rnf2 rnf1s rnf2s vref ps test1 test2 mode0/phase2 mode1/i0 2 enable/i12 clk/phase1 cw/i01 test/i11 select
2 / 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 pin configuration block diagram figure 2. terminals c on fig uration diagram 1 vcc 2 1 2 2 1 b 2 rnf vcc mode 1 out out 2 s b b b s 1 1 a a a 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 54 53 52 51 50 49 48 47 46 45 44 43 42 41 40 39 38 37 36 35 34 33 32 31 30 29 28 out a out nc rnf rnf 2 rnf 2 n c nc nc nc nc out out gnd out out nc nc nc nc nc 1 rnf rnf nc 1 1 2 2 nc test mode 0 cw_ccw ps nc clk nc select enable nc test 2 test 1 nc vref mth nc cr nc gnd gnd nc vcc vcc 1 figure 3. bd63 7 30efv block diagram select mode0/phase2 mode1/i02 enable/i12 predriver vcc1 blank time pwm control translator 2bit dac tsd uvlo regulator reset cr mth ps clk/phase1 vref out1b out1a rnf1 vcc2 out2a gnd out2b rnf2 control logic mix decay control ocp osc rnf1s rnf2s ovlo rnf1s rnf2s test1 test2 cw/i01 test/i11
3 / 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 pin descriptions pin no. pin name function pin no. pin name function pin no. pin name function 1 out2a h bridge output terminal 19 nc no connec tion 37 test1 terminal for enabling test mode (test 1 =gnd) 2 out2a h bridge output terminal 20 nc no connection 38 test2 terminal for enabling test mode (test 2 =gnd) 3 nc no connection 21 nc no connection 39 nc no connection 4 rnf2 connection terminal of resistor for output current detection 22 rnf1s input terminal of current limit comparator 40 select input mode select terminal 5 rnf2 connection terminal of resistor for output current detection 23 rnf1 connecting terminal of resistor for output current detection 41 ps power save terminal 6 rnf2s input terminal of current limit comparator 24 rnf1 connecting terminal of resistor for output current detection 42 cw_ccw / i01 motor rotating direction setting terminal / vref division ratio setting terminal 7 nc no connection 25 nc no connection 43 test / i11 terminal for enabling test mode ( test=gnd ) / vref division r atio setting terminal 8 nc no connection 26 out1a h bridge output terminal 44 enable / i12 terminal for enabling output / vref division ratio setting terminal 9 nc no connection 27 out1a h bridge output t erminal 45 mode1 / i02 motor excitation mode setting terminal / vref division ratio setting terminal 10 nc no connection 28 vcc1 power supply terminal 46 mode0 / phase2 motor excitation mode setting terminal / phase selection terminal 11 nc no connection 29 vcc1 power supply terminal 47 clk / phase1 clock input terminal for advancing the electrical angle / phase selection terminal 12 out2b h bridge output terminal 30 nc no connection 48 vref output current value setting terminal 13 out 2b h bridge output terminal 31 gnd ground terminal 49 mth current decay mode setting terminal 14 gnd ground terminal 32 gnd ground terminal 50 nc no connection 15 out1b h bridge output terminal 33 nc no connection 51 cr connecting terminal of cr for sett ing chopping frequency 16 out1b h bridge output terminal 34 nc no connection 52 nc no connection 17 nc no connection 35 nc no connection 53 vcc2 power supply terminal 18 nc no connection 36 nc no connection 54 vcc2 power supply terminal
4 / 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 absolute maximum ratings (ta=25 c ) parameter symbol rated value unit sup ply voltage v cc1,2 - 0.2 to +36.0 v power dissipation pd 2.0 (note 1) w 6.2 (note 2) w input voltage for control pin v in - 0.2 to +5.5 v rnf maximum voltage v rnf 0.7 v maximum output current (dc ) i out 3.0 (note 3) a/ phase maximum output current (peak ) (note 4) i outpeak 3.5 (note 3) a/ phase operating temperature range topr -25 to +85 c storage temperature range ts t g -55 to +150 c (note 1) 70mm 70mm 1.6mm glass epoxy board. derate by 16.0mw/ c when operating above ta=25 c . (n ote 2) 4 - layer recommended board. derate by 49.5mw/ c when operating above ta=25 c . (note 3) not exceeding pd, aso , or tjmax=150 c . (note 4) 4 pulse width tw 1ms, duty 20%. caution: operating the ic over its absolute maximum ratings may damage the ic. the damage can either be a short circuit between pins or an open circuit between pins and the internal circuitry. therefore, it is important to consider circ uit protection measures, such as adding a fuse, in case the ic is operated over its absolute maximum ratings. recommended operating conditions (ta= - 25 to +85 c ) parameter symbol rated value unit supply voltage v cc1,2 19 to 28 v maximum output curr ent (dc) i out 2.7 (note 5) a/ phase (note 5) not exceeding pd , aso or tj=150 c
5 / 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 electrical characteristics ( unless otherwise specified ta=25c , v cc1,2 =24v ) parameter symbol specification unit conditions minimum standard maximum [ whole ] circ uit current at standby i ccst - 0.8 2.0 ma ps=l circuit current i cc - 2.0 5.0 ma ps=h, v ref =3v [ control input ] (clk, mode0) h - level input voltage v in1h 2.8 - - v l - level input voltage v in1l - - 0.6 v input hysteresis voltage v in1hys - 0.85 - v h -l evel input current i in1h 35 50 100 a v in1 =5v l - level input current i in1l -10 0 - a v in1 =0v [ control input ] (cw, mode1, enable, test, ps, select) h - level input voltage v in2h 2.0 - - v l - level input voltage v in2l - - 0.8 v h - level input current i in2 h 35 50 100 a v in2 =5v l - level input current i in2l -10 0 - a v in2 =0v [ output (out1a, out1b, out2a, out2b)] output on - resistance r on - 0.40 0.52 i out = 2.5 a (sum of upper and lower) output leak current i leak - - 10 a [ current control ] rnfxs inpu t current i rnfs - 2.0 - 0.1 - a rnfxs=0v rnfx input current i rnf -40 -20 - a rnfx=0v vref input current i vref - 2.0 - 0.1 - a v ref =0v vref input voltage range v vref 0 - 3.0 v mth input current i mth - 2.0 - 0.1 - a mth=0v mth input voltage range v mth 0 - 3.5 v minimum on time (blank time) t onmin 0.3 0.9 1.5 s c=1000pf, r=39k comparator threshold v cth 0.57 0.60 0.63 v v ref =3v
6 / 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 application information function explanation select terminal / input mode switching terminal this is the terminal to set the input mode. select input mode l clk - in drive h parallel in drive input mode in the case of clk - in drive (select=l) clk/clock input terminal for advancing electrical angle the electrical angle advances by one for each clk input and only reflected at clk?s rising e dge. motor misstep will occur if noise is picked up at the clk terminal, so please design the pattern in such a way that there is no noise being introduced . mode0,mode1 / motor excitation mode setting terminal set the motor excitation mode please refer to the p.1 3 , 1 4 for the timing chart & motor torque vector of various excitation modes. unrelated to clk, change in setting is reflected insta ntly (refer to p.1 6 ). cw_terminal / motor rotating direction setting set the motor?s rotating direction. change in setting is reflected at the clk rising edge immediately after the change in setting (refer to p.1 5 ) cw rotating direction l clockwise (ch2? s current is outputted with a phase lag of 90 in regard to ch1?s current) h counter clockwise(ch2?s current is outputted with a phase lead of 90 in regard to ch1?s current) enable terminal / output enable terminal turn s on or off all output t ransistors (motor output is open). when enable=l, input to clk is blocked, and p hase advance operation of internal translator circuit is stopped. however, during excitation mode (mode0, mode1) switch when enable=l, setting enable = lh reset s the ic and the new excitation mode will be applied (see p.1 6 ). enable motor output l open (electrical angle retained ) h active ps/ power save terminal setting ps=l will cause the circuit to e nter standby state and make motor output open. in standby state, translator circuit , and electrical angle are initialized. please take note that there is a delay of 40s (max) before returning from standby state to normal state then the motor output becomes active (refer to p.1 2 ). ps status l standby state (reset) h active the initial electrical angle of each excitation mode after reset is as follows (ref er to p.1 3 , 1 4 ). excitation mode initial electrical angle full step 45 halfstep a 45 halfstep b 45 quarter step 45 test , test1, test2 terminal / terminal for inspection this terminal is used for delivery i nspection on ic, and shall be grounded before use. in addition, malfunctions may be caused by application without grounding. mode0 m ode1 excitation mode l l full step h l half step a l h half step b h h quarter step
7 / 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 input mode in the case of parallel - in drive (select=h) ps/ power save terminal setting ps=l will cause the circuit to enter stan dby state and make motor output open. in standby state, translator circuit, and electrical angle are initialized. please take note that there is a delay of 40s (max) before returning from standby state to normal state then the motor output becomes active (refer to p.12). ps status l standby state (reset) h active phase1,phase2 / phase selection terminal phase1 phase2 out1a out1b out2a out2b l l l h l h h l h l l h l h l h h l h h h l h l i01,i02,i11,i12 / vref division ratio setti ng terminal (i0x, i1x)=(h, h): motor output s are open. vcc1,vcc2 / power supply terminal since the motor?s drive curre nt is passing through it, please wire the power supply in such a way that the wire is thick and short , and has low impedance. vcc voltage may suffer from great fluctuation, so it is necessary to connect a byp ass capacitor of about 100 f to 470 f as close to the terminal as possible and adjust in such a way that the vcc voltage is stable. please increase the capacitance if needed especially when a large current is required or those motors that have great back electromotive force are used. in addition, for the purpose of reducing the power supply?s impedance in wide frequency bandwidth, parallel connection of multi - layered ceramic capacitor of 0.01 f to 0.1 f is recommended. extreme c are must be observed to make sure that the vcc voltage does not exceed the voltage rating even for a moment. vcc1 & vcc2 are shorted internally , so please be sure to short vcc1 & vcc2 externally when operating . it might cause malfunction or destruction if not short ed externally because of the concentration of current in a certain route . moreover , in t he power supply terminal, there is built - in clamp component for preventing an electrostatic destruction. if a steep pulse or surge voltage of more than that of maximum absolute rating is present , this clamp component operates and as a resu lt there is the danger of destruction, so please be sure that the maximum absolute rating is not to be exceeded. it is effective to mount a zener diode of about the maximum absolute rating. in addition , the diode for preventing an electrost atic destruction is inserted between vcc terminal and gnd terminal, as a result there is the danger of ic destruction if a voltage of reverse polarity is applied between vcc terminal and gnd terminal, so please be careful. gnd / ground terminal in o rder to reduce the noise caused by switching current , and to stabilize the internal reference voltage of ic, please wire in such a way that the wiring impedance from this terminal is made as low as possible to achieve the lowest electrical potential no mat ter what operating state it may be. moreover, please design patterns not to have any common impedance with other gnd patterns. i0x i1x output current level (%) l l 100 h l 67 l h 33 h h 0
8 / 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 out1a,out1b,out2a,out2b / h bridge output terminal since the motor?s drive current is passing through it, please wire in such a w ay that the wire is thick and short, and has low impedance. it is also effective to add a schottky diode if the output has a big posit ive or negative fluctuation when large current is present (i.e. counter electromotive voltage is big ). moreover, in the output terminal, there is a built - in clamp component for preventing an electrostatic destructi on. if a steep pulse or surge voltage of more than that of maximum absolute rating is present, this clamp component operates and as a result there is the danger of destruction, so please be sure that the maximum absolute rating is not to be exceeded. rnf1,rnf2 / connecting terminal of resistor for detecting of output current please connect a resistor of 0.1 to 0.3 for current detection betwe en this terminal and gnd . i n view of the power consumption of the current - detecting resistor, please determine the resistor in such a way that w=i out 2 ? r [w] does not exceed the power dissipation of the resistor. in addition, please wire in such a way that it has low impedance and does not have impedance common with other gnd patterns because motor?s drive current passes through rnf terminal to current - detecting resistor to gnd. do not exceed the rating because t here is the possibility of circuit malfunction (i . e. rnf voltage exceeded the maximum rating of 0.7v). moreover, please be careful because if rnf terminal is shorted to gnd, large current flows without normal pwm constant current control, th en there is the possibility that ocp or tsd will operate. if rnf terminal is open, then there is the danger of malfunction as output current does not flow either, so please do not leave open. rnf1s,rnf2s / input terminal of cur rent limit comparator in this series, rnfs terminal, which is the input terminal of current limit comparator, is independently arranged in order to decrease the error of current - detecting accuracy caused by the internal wire impedance of rnf terminal. therefore, connect rnf terminal and rnfs terminal together when using pwm constant current control. in addition, because the wires from rnfs terminal is connected near the current - detecting resistor in th e case of interconnection, the lowering of current - detecting accuracy that is caused by the impedance of board pattern between rnf terminal and the current - detecting resistor can be decreased. moreover, design the pattern in such a way that there is no noise being introduced . in addition, please be careful when terminals of rnf1s & rnf2s are shorted to gnd, large current flows without normal pwm constant current control , then there is the possibility that ocp or tsd will operate. vref / output current value setting terminal this is the terminal to set the output current value. the output current value can be set by vref voltage and current - detecting resistor (rnf resistor). [ ] [ ] ( ) { } [ ] ? = rnf / ic inside ratio division 5 / v v a i current output ref out please avoid ic operation with vref terminal open because if vref terminal is open, the input is unsettled, and the vref voltage increases, and then there is the possibility of malfunctions such as the setting current increases , then a large current flow s . please do not exceed 3v because if it exceeds 3v , then there is also the danger that a large current flows in the output and so ocp or tsd will operate. moreover , please take into consideration the outflow current of 2a (max ) if configuring by voltage division when selecting the resistance value. the minimum current, which can be controlled by vref voltage, is determined by motor coil?s l & r values and minimum on time since there is a minimum on time in pwm drive. cr/ connecting terminal of cr for setting chopping frequency this is the terminal to set the chopping frequency of output. please connect the external c (470p to 1500pf) and r (10k to 200k) between this terminal and gnd. please refer to p 1 1 . please interconnect from external components to gnd in such a way that the interconnection does not have impedance in common with other gnd pa tterns. in addition, please design the pattern in such a way that it keeps steep pulses such as square wave away and that there is no noise being introduced . please mount the two components c and r if oper ating by pwm constant current control because normal pwm constant current control becomes impossible if cr terminal is open or is biased externally. mth / current decay mode - setting terminal this is the terminal to set the current decay mode. current dec ay mode can be optionally set according to input voltage. mth terminal input voltage[v] current decay mode 0 to 0.3 slow decay 0.4 to 1.0 mix decay 1.5 to 3.5 fast decay please connect to gnd if utilizing slow decay mode. please avoid ic operation with mth terminal open because if mth terminal is open, the input is unsettled, and then there is the danger that pwm operation becomes unstable. moreover , please take into consideration the outflow current of 2a (max ) if conf iguring by voltage division when selecting the resistance value. nc terminal this terminal is unconnected electrically with ic internal circuit.
9 / 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 thermal shutdown (tsd) this ic has a built - in thermal shutdown circuit for thermal protection. wh en the ic?s chip temperature rises above 175 c (typ), the motor output becomes open. also, when the temperature decreases less than 150 c (typ), it automatically returns to normal operation. however, even when tsd is in operation and he at is continuously added externally , heat overdrive can lead to destruction. over - current protection (ocp) this ic has a built in over - current protection circuit as a provision against destruction when the motor outputs are shorted to each other , or vcc - motor output or motor output - gnd is shorted. this circuit latches the motor output to open condition when the regulated threshold current flows for 4s (typ). it resumes normal operation by re -a pplying main power supply or a reset of the ps terminal. the over - current protection circuit only aim s to prevent the destruction of the ic from irregular situations such as motor output shorts, and is not meant to be used as protection or security fo r the set. therefore, sets should not be designed to take into account this circuit?s function . after ocp operation , if irregular situations continue and the resume on normal operation by power reactivation or a reset of the ps termina l is carried out repeatedly, then ocp operates repeatedly and the ic may generate heat or otherwise deteriorate. when the l value of the wiring is great due to the wiring being long, after the over - current has flowed and the output terminal voltage jumps up , the absolute maximum values may be exceeded and as a result, there is a possibility of destruction. also, when current is over the output current rating and under the ocp detection current , the ic can heat up to over tjmax=150 c and can deteriorate, so current which exceeds the output rating should not be applied. under voltage lock out (uvlo) this ic has a built - in under voltage lock out function to prevent false operation such as ic output during power supply under voltage. when the ap plied voltage to the vcc terminal goes under 15v (typ), the motor output is set to open. this protection circuit has a 1v (typ) hysteresis to prevent false operation cause by noise . please be aware that this circuit does not operate du ring power save mode. also, the electrical angle is reset when the uvlo circuit operates during clk - in drive mode. over voltage lock out (ovlo) this ic has a built - in over voltage lock out function to protect the ic output and the motor during power suppl y over voltage. when the applied voltage to the vcc terminal goes over 32v (typ), the motor output is set to open. this protection circuit has a 1v (typ) hysteresis and a 4s (typ) mask time to prevent false operation cause by noise . a lthough this over voltage locked out circuit is built - in, there is a possibility of destruction if the absolute maximum value for power supply voltage is exceeded . please be aware that this circu it does not operate during power save mode. ghost supply prevention (protects against malfunction when power supply is disconnected) if a signal from logic input (e.g. mth, vref) is supplied when there is no power supplied to this ic, there is a f unction which prevents the false operation via the electrostatic discharge protection diode from these input terminals to vcc or to another ic?s power supply.
10/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 pwm constant current control current control operation when the output transistor is turned on, the output current increases , and as a result increases the voltage at the current sense resistor. once the voltage at the rnf pin reaches the voltage value set by the internal 2 - bit dac, and the vref input voltage, the current limit comparator engages and enters cur rent decay mode. the output is then turned off for a period of time determined by the rc time constant connected to the cr pin. the process repeats itself constantly for pwm operation. noise - masking function i n order to avoid misdetection of output current due to rnf spikes that may occur when the output turns on, the ic employs an automatic current detection - masking period (t onmin ), during which current detection is disabled immediately after the output transistor is turned on. this allows for const ant - current drive without the need for an external filter. this noise - masking period defines the minimum on - time for the motor output transistor. cr timer the cr filter connected to the cr pin is repeatedly charged and discharged between the vcr h and vcr l levels. the output of the internal comparator is masked while charging from vcr l to vcr h in order to cancel noise. as mentioned above, this operation defines the minimum on - time of the motor output transistor. the cr terminal begins discharging once the voltage reaches vcr h . when the output current reaches the current limit during this period (i.e. rnf voltage reaches the decay trigger voltage), then the ic enters decay mode. the cr continues to discharge during this period until it reaches vcr l ; at this point the ic output is switched back on. the current output , and cr pin begin charging simultaneously. the cr charge time (t onmin ) and discharge time (t discharge ) are set by external components, according to the following formulas. the sum of t onmin and t discharge yields the chopping period, t chop . [ ] ( ) ( ) ( ) [ ] 0 . 1 / 4 . 0 " / ' ? ? ? + ? vcr vcr in r r r r c s t onmin ( ) r ' r / r v vcr + ? = where: v is the internal regulator voltage 5v(typ) r' is the cr terminal internal impedance 5k (typ) [ ] ( ) [ ] 4 . 0 / 1 + ? ? in r c s t discharge :see the right graph. [ ] discharge onmin chop t t s t + figure 4. timing chart of cr voltage, rnf voltage , and output current attach a resistor of at least 10 k to the cr terminal (10 k to 200 k is recommended) as lower values may keep the rc from reaching the vcrh voltage level. a capacitor in the range of 470 pf to 1500 pf is recommended. as the capacitance is increased, the noise - masking period (t onmin ) als o increases, and there is a risk that the output current may exceed the current limit threshold due to the internal l and r components of the output motor coil. also, ensure that the chopping period (t chop ) is not set longer than necessary doing so wil l increase the output ripple, in effect decreasing the average output current , and yielding lower output rotation efficiency. the optimal value should reduce the motor drive noise while keeping distortion of the output current waveform to a minimum . chopping period t chop cr voltage rnf voltage output current spike noise current limit value gnd minimum o n time vcrh(1.0v typ ) vcrl(0.4v gnd 0ma cur rent limit value discharge time 0.00 0.05 0.10 0.15 0.20 0.25 0.30 0 500 1000 1500 2000 c[pf] [v]
11 / 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 current decay mode the ic allows for a mixed decay mode in which the ratio of fast and slow decay can be optionally set. the following diagrams show the operating state of each transistor and the regenerative current path during attenuation for each de cay mode: figure 5. route of regenerated curre nt during current decay the merits of each decay mode are as follows: slow decay during current attenuation, the voltage between motor coils is small and the regeneration current decreases slowly decreasing the output current ripple. this is favorable fo r keeping motor torque high. however, due to fall - off of current control characteristics in the low - current region, or reverse emf of the output motors exhibited when using high - pulse- rate half - step or quarter - step modes, the output current increase s, distorting the output current waveform , and increasing motor vibration. thus, this decay mode is most suited to full - step modes, or low - pulse- rate half - step or quarter - step modes. fast decay fast decay decreases the regeneration current more quick ly than slow decay, greatly reducing distortion of the output current waveform. however, fast decay yields a larger output current ripple, in effect decreases the overall average current running through the motor. this creates two problem s: first, the motor torque decreases . i ncreasing the current limit value can help eliminate this problem, but the rated output current must be taken into consideration ; second, the power loss within the motor increases and thereby produces more heat. if neither of these problems is of concern, then fast decay can be used for high - pulse rate half - or quarter - step drive. additionally, this ic allows for a mixed decay mode that can help improve problems that arise from using fast or slow decay mode . in this mode, the ic switches automatically between slow and fast decay, improving the current control characteristics without increasing the output current ripple. mixed decay mode operates by splitting the decay period into two section s, the first x% (t 1 - t 2 ) operates the ic in slow decay mode, and the remainder (t 2 -t 3 ) operates in fast decay mode. however, if the output current (i.e. the voltage on the rnf pin) does not reach the set current limit during the first x% (t 1 -t 2 ) decay period, the ic operates in fast decay mode only. mth voltage [v] current decay mode 0 to 0.3 slow decay 0.4 to 1.0 mix decay 1.5 to 3.5 fast decay figure 6. relation between cr terminal voltage, mth voltage, and output current during mixed decay on off o ff on m on off o ff fast decay slow decay on off o ff on m on on o ff off output on time current decay time gnd current limit v alue cr voltage output current 0a 1.0v 0.4v slow deca y fast decay chopping period t chop mth voltage t 1 t 2 t 3
12/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 translator circuit this ic has a built -in translator circuit that can drive stepper motor in clk - in mode. the operation of the translator circuit in clk - in mode is described below. r eset operation the translator circuit is initialized by power on , reset function , or ps terminal. initializing operation when power supply is turned on if power supply is turned on at ps=l (please use this sequence as a general rule) when power supply is turned on, the power on reset function operates and initialized, but as long as it is ps=l, the motor output is in open state. after power supply is turned on and changing of ps=l h, the motor output becomes active , and the excitation is started at the initial electrical angle. at the time of ps=l h, there is a delay of 40s (max) until the motor output becomes active . if power supply is turned on at ps=h when power supply is turned on, the power on function in ic operates, and initialized before the motor output becomes active , and the excitation is started at the initial electrical angle. initializing operation during motor operation please input the reset signal to ps terminal when the translator circuit is initialized during motor operation . (refer to p.1 5 ) but at the time of ps=l h, there is a delay of 40s (max) until the motor output become s active , so please be careful. control input timing please input signals as shown below since the translator circuit operates at the rising edge of a clk signal. if the timing is not followed , then there is the possibility that the translator circuit will not operate as expected. in addition, at the time of ps=l h, there is a delay of 40s (max) until the motor output becomes active , so within this delay interval there is no phase advance operation even if clk is inputted. a:ps minimum input pulse width ?????? 20s b:ps rising edge to clk rising edge input possible maximum delay time ?????? 40s c:clk minimum period ?????? 4s d:clk minimum input h pulse width ?????? 2s e:clk minimum input l pulse width ?????? 2s f:mode0,mode1,cw set - up time ??? ??? 1s g:mode0,mode1,cw hold time ?????? 1s reset is released active motor output open motor output on d ps clk out1a out1b delay d ps clk mode0 f g f g mode1 cw a d e b c
13/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 full step (mode0=l, mode1=l, cw=l, enable=h) half step a (mode0=h, mode1=l, cw=l, enable=h) 1 7 5 100% 67% 33% 8 4 6 2 out1a out2b out2a out1b 8clk = electrical angle 360 100% 67% 33% - 33% - 67% - 100% 100% 67% 33% - 33% - 67% -100% 1 4 3 2 100% 67% 33% out2b out1b out2a out1a 4clk = electrical angle 360 iout(ch1) iout(ch2) out2b ps clk out1a out1b out2a 100% 67% 33% - 33% - 67% - 100% 100% 67% 33% - 33% - 67% -100% 3 iout(ch1) iout(ch2) out2b ps clk out1a out1b out2a
14/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 half step b(mode0=l, mode1=h, cw=l, enable=h) quarter step(mode0=h, mode1=h, cw=l, enable=h) 1 7 5 3 100% 67% 33% 8 4 6 2 out1a out2b out2a out1b 8clk = electrical angle 360 100% 67% 33% - 33% - 67% - 100% 100% 67% 33% - 33% - 67% -100% out1a 1 13 9 5 100% 67% 33% 2 7 11 1 3 14 12 10 4 6 15 2 16 8 out1b out2a out2b 16clk = electrical angle 360 100% 67% 33% - 33% - 67% - 100% 100% 67% 33% - 33% - 67% -100% iout(ch1) iout(ch2) out2b ps clk out1a out1b out2a ? ? ? ? ? ? iout(ch1) iout(ch2) out2b ps clk out1a out1b out2a
15/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 reset timing chart (quarter step, mode0=h, mode1=h, cw=l , enable=h) if the terminal ps is set to l, the reset operation is done regardless of other input signals then resets the translator circuit while motor is w orking. at this time, ic internal circuit enters standby mode, and makes the motor output open. cw switch timing chart (full step, mode0=l, mode1=l, enable=h) the switching of cw is reflected at the rising edge of the clk . however, depending on the state of the motor output at the switch , the motor cannot follow even if the control on driver side corresponds and the re are possibilities of step - out or misstep in motor . so please consider the sequence of the switch sufficiently . cw ccw cw iout(ch2) out2b ps clk out1a out1b out2a iout(ch1) 100% -100% 100% - 100% 100% 67% 33% - 33% - 67% -100% 100% 67% 33% - 33% - 67% - 100% reset iout(ch1) iout(ch2) out2b ps clk out1a out1b out2a
16/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 enable switch timing chart (full step, mode0=l, mode1=l, enable=h) the switching of enable signal is reflected regardless of other input signals. when enable=l, the motor output becomes open and the electrical angle won?t advance because the trans lator circuit stops, and clk input is cancelled . therefore, the previous state will resume after enable=lh . excitation mode (mode0, mode1) can be switched within enable=l inte rval. when excitation mode is switched within enable=l interval, restoring of the excitation mode is done after enable=lh . restoring in the state prior to input of enable=l switchi ng of motor excitation mode t he switching of the excitation mode can be done regardless of the clk signal at the same time as changing of the signal mode0 and mode1 . the following built - in function can prevent motor out -of - step caused by di screpancies of torque vector of transitional excitations during switch between excitation modes. however, due to operation state of motor during switch, motor may not act following control on ic side of controller, and thereby lead to out -of - step or miss s tep. therefore, switch sequence shall be evaluated sufficiently before any decision. cautions of bidirectional switch of cw and excitation modes (mode0,mode1) as shown in the figure below, the area between the end of reset discharge (ps=lh) and beginning of the first clk signal input is defined as interval a, while the area post the end of the first clk signal input is defined as interval b. interval a => for cw, no limitation is applied on switch of excitation mode. interval b => in clk1 period, or withi n enable=l interval, cw and excitation mode can?t be switched together. violation of this restriction may lead to false step (with one extra leading phase) or out -of - step. therefore, in case that cw and excitation mode s are switched simultaneously, ps term inal must be input with reset signal . then start to operate in interval a before carrying out such bidirectional switch. output off & translator stop enable iout(ch1) iout(ch2) out2b ps clk out1a out1b out2a 100% -100% 100% -100% interval a interval b ps clk
17/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 parallel - in drive mode it is possible to drive stepping motor with full step, half step, and quarter step by inputting the following motor control signals using parallel - in drive mode. examples of control sequence and torque vector controlled by 2 logic signals of phase1 & phase2 controlled by 4 logic signals of phase1 , phase2 , i01 ( i11), and i02 ( i12) half step a 2 8 6 4 100% 67% 33% 1 5 7 3 out1a out2b out2a out1b 100% 67% 33% - 33% - 67% - 100% 100% 67 % 33% - 33% - 67% - 100% 100% 67% 33% - 33% - 67% - 100% 100% 67% 33% - 33% - 67% - 100% i01 i02 i11 phase1 phase2 i12 iout(ch1) iout(ch2) i11 i01 i02 phase1 phase2 i12 iout(ch2) iout(ch1) 4 3 2 100% 67% 33% out2b out1b out2a out1a 1 full step
18/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 controlled by 6 logic signals of phase1 , phase2 , i01 , i11, i02 , and i12 controlled by 6 logic signals of phase1 , phase2 , i01 , i11 , i02 , and i12 half step b quarter step 2 8 6 4 100% 67% 33% 1 5 7 3 out1a out2b out2a out1b out1a 3 15 11 7 100% 67% 33% 2 9 13 5 16 14 12 6 8 1 4 2 10 out1b out2a out2b 100% 67% 33% - 33% - 67% - 100% 100% 67% 33% - 33% - 67% -100% 100% 67% 33% - 33% - 67% - 100% 100% 67% 33% - 33% - 67% - 100% iout(ch2) iout(ch1) i02 i12 i01 i11 phase1 phase2 i01 i11 phase1 phase2 iout(ch2) iout(ch1) i02 i12 ? ? ? ? ? ?
19/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 power dissipation please ensure that the ic?s chip temperature tj is not over 150 c , while considering the ic?s power consumption (w), package power dissipation (pd) , and ambient temperature (ta). when tj=150 c is exceeded the functions of the semiconductor do not operate as expected, and problems such as parasitism and leaks occur. constant use under these circumstances leads to deterioration and eventually destruction of the ic. tjmax 150c must be strictly obeyed u nder all circumstances. thermal consideration the ic?s power consumption can be estimated roughly with power supply voltage (v cc ), circuit current (i cc ), output on - resistance (r onh , r onl ), and motor output current value (i out ). the calculation method during full step drive, slow decay mode is shown below : [ ] [ ] [ ] a i v v w v the of power consumed cc cc cc ? = [ ] [ ] [ ] ( ) [ ] [ ] ( ) [ ] [ ] ( ) decay current during duty on ch a i r on output during duty on ch a i r r w dmos output the of power consumed out onl out onl onh _ 1 2 2 2 2 2 ? ? ? ? ? + ? ? ? ? + ? = when on duty: t on varies depending on the l and r values of the motor coil and the current set value. p lease confirm by actual measurement, or make an approximate calculation. t chop is the chopping period, which depends on the external cr. see p. 10 for details. ic number upper pchdmos on - resistance r onh [ ] (typ) lower nchdmos on - resistance r onl [ ] (typ) bd63 7 30efv 0.27 0.13 consumed power of total ic w_total [w] = + [ ] [ ] [ ] w total _ w w / c ja c ta tj e temperatur junction ? + = however, the thermal resistance value ja [ c /w] differs greatly depending on circuit board conditions. refer to the derating curve on p.2 1 . also, we are takin g measurements of thermal resistance value ja of actual boards in use. please feel free to contact our sales department . the calculated values above are only theoretical. for actual thermal design, please perform sufficient thermal evalua tion for the application board used, and create the thermal design with enough margin to not exceed tjmax=150 c . although unnecessary with normal use, if the ic is to be used under strict heat conditions, please consider inse rting an external schottky diode between the motor output terminal and gnd to abate heat from the ic. temperature monitoring in case of clk - in drive , t here is a way to approximately measure the chip temperature by using the electrostatic discharge protection diode of test pin . for parallel - in drive, the logic terminal (i0x or i1x) can be used when at l state. temper ature monitoring using this method is only for evaluation and experimenting purposes , and must not be used in actual usage conditions. ? measure the terminal voltage when a current of i diode =50a passes from the test or i0 x or i1x terminal to the gnd without supplying vcc to the ic. this measurement is the v f voltage of the internal diode. ? measure the temperature characteristics of this terminal voltage. v f has a linear negative temperature factor against te mperature. with these results of temperature characteristics, chip temperature may be calibrated from the test or i0x or i1x terminal voltage. ? supply vcc, monitor the test or i0x or i1x terminal voltage while running the motor, and the c hip temperature can be approximated from the results of (2). figure 7 .model diagram for measuring chip temperature - vf[mv] 25 150 chip temperature tj [ ] test or i0x or i1x internal circuit vf internal circuit i diode vcc ??????? ??????? ( ) chop on t / t duty on pwm =
20/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 example for appl ication circuit figure 8. bd63 7 30efv block diagram and application circuit diagram 0.2 0.2 resistor for current detection setting range is 0.1 to 0.3 . refer to p. 8 for detail. 39k 1000pf set the chopping frequency. setting range is c:470pf to 1500pf r:10k to 200k refer to p. 8 , 10 for detail. bypass capacitor. setting range is 100f to 470f(electrolytic) 0.01f to 0.1 f(multilayer ceramic etc.) refer to p. 7 for detail. be sure to short vcc1 & vcc2. resistor for current detection setting range is 0.1 to 0.3 . refer to p. 8 for detail. predriver vcc1 blank time pwm control 2bit dac tsd uvlo r egulator reset cr mth ps vref out1b out1a rnf1 vcc2 out2a gnd out2b rnf2 control logic mix decay control ocp osc rnf1s rnf2s ovlo rnf1s rnf2s 0.1 f 100 f set the output current. input by voltage division. refer to p. 8 for detail. set the current decay mode. slow decay ? connect to gnd. mix decay ? input by voltage division. refer to p. 8 , 11 for detail. logic input terminal see p 6 , 7 for detail. power save termin al refer to p. 6 , 7 for detail. test1 test2 mode0/phase2 mode1/i02 enable/i12 clk/phase1 cw/i01 test/i11 select translator
21/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 i/o equivalent circuit 10k 100k circuitry vcc cw mode1 enable ps,select vref mth 5k vreg (internal regulator) 215k 100k circuitry vcc clk mode0 10k vc c circuitry rnf1, rnf2 out1b out2b out1a out2a rnf1s rnf2s 5k cr 5k 5k 5k circuitry
22/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 operational notes 1. reverse connection of power supply connecting the power supply in reverse polarity can damage the ic. take precautions against reverse polarity when connecting the power supply, such as mounting an external diode between the power supp ly and the ic?s power supply terminals. 2. power supply lines design the pcb layout pattern to provide low impedance supply lines. separate the ground and supply lines of the digital and analog blocks to prevent noise in the ground and supply lines of the di gital block from affecting the analog block. furthermore, connect a capacitor to ground at all power supply pins. consider the effect of temperature and aging on the capacitance value when using electrolytic capacitors. 3. ground voltage ensure that no pins are at a voltage below that of the ground pin at any time, even during transient condition. 4. ground wiring pattern when using both small - signal and large- current ground traces, the two ground traces should be routed separately but connected to a single gr ound at the reference point of the application board to avoid fluctuations in the small - signal ground caused by large currents. also ensure that the ground traces of external components do not cause variations on the ground voltage. the ground lines must b e as short and thick as possible to reduce line impedance. 5. thermal consideration should by any chance the power dissipation rating be exceeded, the rise in temperature of the chip may result in deterioration of the properties of the chip. the absolute max imum rating of the pd stated in this specification is when the ic is mounted on a 70mm x 70mm x 1.6mm glass epoxy board. in case of exceeding this absolute maximum rating, increase the board size and copper area to prevent exceeding the pd rating. 6. recomme nded operating conditions these conditions represent a range within which the expected characteristics of the ic can be approximately obtained. the electrical characteristics are guaranteed under the conditions of each parameter. 7. inrush current when power is first supplied to the ic, it is possible that the internal logic may be unstable and inrush current may flow instantaneously due to the internal powering sequence and delays, especially if the ic has more than one power supply. therefore, give special consideration to power coupling capacitance, power wiring, width of ground wiring, and routing of connections. 8. operation under strong electromagnetic field operating the ic in the presence of a strong electromagnetic field may cause the ic to malfunction. 9. testing on application boards when testing the ic on an application board, connecting a capacitor directly to a low - impedance output pin may subject the ic to stress. always discharge capacitors completely after each process or step. the ic?s power suppl y should always be turned off completely before connecting or removing it from the test setup during the inspection process. to prevent damage from static discharge, ground the ic during assembly and use similar precautions during transport and storage. 10. i nter - pin short and mounting errors ensure that the direction and position are correct when mounting the ic on the pcb. incorrect mounting may result in damaging the ic. avoid nearby pins being shorted to each other especially to ground, power supply and ou tput pin. inter - pin shorts could be due to many reasons such as metal particles, water droplets (in very humid environment) and unintentional solder bridge deposited in between pins during assembly to name a few. 11. unused input terminals input terminals of an ic are often connected to the gate of a mos transistor. the gate has extremely high impedance and extremely low capacitance. if left unconnected, the electric field from the outside can easily charge it. the small charge acquired in this way is enough t o produce a significant effect on the conduction through the transistor and cause unexpected operation of the ic. so unless otherwise specified, unused input terminals should be connected to the power supply or ground line.
23/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 operational notes ? continued 12. regarding input pins of the ic this monolithic ic contains p+ isolation and p substrate layers between adjacent elements in order to keep them isolated. p - n junctions are formed at the intersection of the p layers with the n layers of other elements, crea ting a parasitic diode or transistor. for example (refer to figure below): when gnd > pin a and gnd > pin b, the p - n junction operates as a parasitic diode. when gnd > pin b, the p - n junction operates as a parasitic transistor. parasitic diodes inevi tably occur in the structure of the ic. the operation of parasitic diodes can result in mutual interference among circuits, operational faults, or physical damage. therefore, conditions that cause these diodes to operate, such as applying a voltage lower t han the gnd voltage to an input pin (and thus to the p substrate) should be avoided. figure 10 . example of monolithic ic structure 13. area of safe operation (aso) operate the ic such that the output voltage, output current, and power dissipation are all w ithin the area of safe operation (aso). 14. thermal shutdown circuit(tsd) this ic has a built - in thermal shutdown circuit that prevents heat damage to the ic. normal operation should always be within the ic?s power dissipation rating. if however the rating i s exceeded for a continued period, the junction temperature (tj) will rise which will activate the tsd circuit that will turn off all output pins. when the tj falls below th e tsd threshold, the circuits are automatically restored to normal operation. note that the tsd circuit operates in a situation that exceeds the absolute maximum ratings and therefore, under no circumstances, should the tsd circuit be used in a set design or for any purpose other than protecting the ic from heat damage. 15. over - current pro tection circuit (ocp) this ic has a built - in overcurrent protection circuit that activates when the output is accidentally shorted. however, it is strongly advised not to subject the ic to prolonged shorting of the output.
24/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 power dissipation htssop - b54 is designed with heat - remission metal on the back side of ic to perform heat dissipation trea tment using through hole from backside. it is possible to increase power dissipation considerably by ensuring sufficient heat - releasing area on both top and back sides such as copper foil. pleas e not e that the power dissipation described below may not be a ssured with out being shorted . the back metal is shorted with the backside of the ic chip that is a gnd potential. there is a possibility for malfunction if it is shorted with any potential other than gnd, which should be avoided. the back metal should be s oldered onto the gnd to short. please be careful that this package is designed to be used after performing heat dissipation treatment on the back metal, and to improve heat dissipation efficiency. ambient temperature ta [ ] p o w e r d i ssi p a t i o n p d [ w ] 1.0 100 125 0 2 . 0 w 25 50 75 150 2 . 5 w 2.0 3.0 4 . 5 w 6 . 2 w 4.0 5.0 6 .0 7 .0 1 2 3 4 measurement machine th156 ( kuwano electric ) measurement condition rohm board board size 70mm*70mm*1.6mm (with through holes on the board) the exposed metal of the backside is connected to the board with solder board ?1 - layer board (copper foil on the ba ck 0mm*0mm) board ?2 - layer board (copper foil on the back 15mm*15mm) board ?2 - layer board (copper foil on the back 70mm*70mm) board ?4 - layer board (copper foil on the back 70mm*70mm) board ? ja=62.5 c /w board ? ja=50.0 c/w board ? ja=27.8 c/w board ? ja = 20.2 c/w fig ure 9. htssop - b54 derating curve ambient temperature : ta [c] power dissipation : pd [w]
25/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 ordering information b d 6 3 7 3 0 e f v - e 2 rohm model package type efv : htssop - b54 packing, forming specification e2 : reel - wound e mbossed taping marking diagram htssop - b54 (top view) bd63 7 30efv part number marking lot number 1pin mark
26/ 26 b d63 7 30efv tsz02201 - 0p2p0b700 360 - 1 - 2 ? 20 14 rohm co., ltd. all rights reserved. 17.nov.2014 rev.001 www.r ohm.com tsz22111 ? 15 ? 001 physical dimension, tape and reel information package name htssop - b54
notice - ge rev.00 3 ? 20 13 rohm c o., ltd. all rights reserved. notice precaution on using rohm products 1. our p roducts are designed and manufactured for application in ordinary electronic equipment s ( such as av equipment, oa equipment, telecommunication equipment, home electronic appliances, amusement equipment, etc.). if you intend to use our products in devices requiring extremely high reliability ( such as medical equipment ( n ote 1 ) , transport equipment, traffic equipment, aircraft/spacecraft, nuclear power controllers, fuel controllers, car equipment including car a ccessories, safety devices, etc.) and whose malfunction or failure may cause loss of human life , bodily injury or serious damage to property ( specific applications ) , please consult with the rohm sales representative in advance. unless otherwise agreed in writing by rohm in advance, rohm shall not be in any way responsible or liable for any damages, expenses or losses incurred by you or third parties arising from the use of any rohm s products for specific applications. ( n ote1) m edical e quipment c lassifica tion of the s pecific applications japan usa eu china class 2 . rohm designs and manufactures its products subject to strict quality control system. however, semiconductor products can fail or malfunction at a cert ain rate. please be sure to implement, at your own responsibilities, adequate safety measures including but not limited to fail - safe design against the physical injury, damage to any property, which a failure or malfunction of our products may cause. the f ollowing are examples of safety measures: [a] installation of protection circuits or other protective devices to improve system safety [b] installation of redundant circuits to reduce the impact of single or multiple circuit failure 3 . our p roducts are de signed and manufactured for use under standard conditions and not under any special or extraordinary environments or conditions, as exemplified below . accordingly, rohm shall not be in any way responsible or liable for any damages, expenses or losses arisi ng from the use of any rohms p roduct s under any special or extraordinary environments or conditions . if you intend to use our products under any special or extraordinary environments or conditions (as exemplified below), your independent v erification and confirmation of product performance, reliability, etc, prior to use, must be necessary : [a] use of our products in any types of liquid, including water, oils, chemicals, and organic solvents [b] use of our products outdoors or in places where the p roducts are exposed to direct sunlight or dust [c] use of our products in places where the p roducts are exposed to sea wind or corrosive gases, including cl 2 , h 2 s, nh 3 , so 2 , and no 2 [d] use of our products in places where the p roducts are exposed to static electr icity or electromagnetic waves [e] use of our products in proximity to heat - producing components, plastic cords, or other flammable items [f] s ealing or coating our p roducts with resin or other coating materials [g] use of our products without cleaning res idue of flux (even if you use no - clean type fluxes, cleaning residue of flux is recommended); or washing our products by using water or water - soluble cleaning agents for cleaning residue after soldering [h] use of the p roducts in places subject to dew cond ensation 4 . the p roducts are not subject to radiation - proof design . 5 . please verify and confirm characteristics of the final or mounted products in using the products. 6 . in particular, if a transient load (a large amount of load applied in a short pe riod of time, such as pulse . is applied, confirmation of performance characteristics after on - board mounting is strongly recommended. avoid applying power exceeding normal rated power; exceeding the power rating under steady - state loading condition may neg atively affect product performance and reliability. 7 . de - rate power dissipation (pd) depending on ambient temperature (ta). when used in sealed area, confirm the actual ambient temperature. 8 . confirm that operation temperature is within the specified range described in the product specification. 9 . rohm shall not be in any way responsible or liable for f ailure induced under deviant condition from what is defined in this document . precaution for mounting / circuit board design 1 . when a highly activ e halogenous (chlorine, bromine, etc.) flux is used, the residue of flux may negatively affect product performance and reliability. 2 . in principle, the reflow soldering method must be used on a surface - mount products, the flow soldering method must be us ed on a through hole mount products. i f the flow soldering method is preferred on a surface - mount products , please consult with the rohm representative in advance. for details , please refer to rohm mounting specification
notice - ge rev.00 3 ? 20 13 rohm c o., ltd. all rights reserved. precautions regarding application examples and external circuits 1 . if change is made to the constant of an external circuit, please allow a sufficient margin considering variations of the characteristics of the p roducts and external components, including transient characteristics, as well as static characteristics. 2 . you agree that application notes, reference designs, and associated data and information contained in this document are presented only as guidance for products use . therefore, in case you use such information, you are solel y responsible for it and you must exercise your own independent verification and judgment in the use of such information contained in this document. rohm shall not be in any way responsible or liable for any damages, expenses or losses incurred by you or third parties arising from the use of such information. precaution for electrostatic this p roduct is e lectrostatic sensitive product, which may be damaged due to e lectrostatic discharge. please take proper caution in your manufacturing process and stor age so that voltage exceeding the product s maximum rating will not be applied to p roducts. please take special care under dry condition (e.g. grounding of human body / equipment / solder iron, isolation from charged objects, setting of ionizer, friction preve ntion and temperature / humidity control). precaution for storage / transportation 1 . product performance and soldered connections may deteriorate if the p roducts are stored in the places where : [a] the p roducts are exposed to sea winds or corrosive gases , including cl2, h2s, nh3, so2, and no2 [b] the temperature or humidity exceeds those recommended by rohm [c] the products are exposed to direct sunshine or condensation [d] the products are exposed to high electrostatic 2 . even under rohm recommended sto rage condition, solderability of products out of recommended storage time period may be degraded. it is strongly recommended to confirm solderability before using p roducts of which storage time is exceeding the recommended storage time period. 3 . store / transport cartons in the correct direction, which is indicated on a carton with a symbol. otherwise bent leads may occur due to excessive stress applied when dropping of a carton. 4 . use p roducts within the specified time after opening a humidity barrie r bag. baking is required before using p roducts of which storage time is exceeding the recommended storage time period . precaution for p roduct l abel qr code printed on rohm p roduct s label is for rohm s internal use only . precaution for d isposition when d isposing p roducts please dispose them properly using a n authorized industry waste company. precaution for foreign e xchange and foreign t rade act since our products might fall under controlled goods prescribed by the applicable f oreign exchange and f oreign trade act, please consult with rohm representative in case of export. precaution regarding intellectual property rights 1 . all i nformation and data including but not limited to application example contained in this document is for reference only. rohm do es not warrant that foregoing information or data will not infringe any intellectual property rights or any other rights of a ny third party regarding such information or data. rohm shall not be in any way responsible or liable for infringement of any intel lectual property rights or other damages arising from use of such information or data. : 2 . no license, expressly or implied, is granted hereby under any intellectual property rights or other rights of rohm or any third parties with respect to the informat ion contained in this document. other precaution 1 . this document may not be reprinted or reproduced, in whole or in part, without prior written consent of rohm. 2. the products may not be disassemble d, converted, modified, reproduced or otherwise chang ed without prior written consent of rohm. 3 . i n no event shall you use in any way whatsoever the products and the related technical information contained in the products or this document for any military purposes , including but not limited to, the develop ment of mass - destruction weapons . 4 . the proper names of companies or products described in this document are trademarks or registered trademarks of rohm, its affiliated companies or third parties.
datasheet datasheet notice ? we rev.001 ? 2014 rohm co., ltd. all rights reserved. general precaution 1. before you use our pro ducts, you are requested to care fully read this document and fully understand its contents. rohm shall n ot be in an y way responsible or liabl e for fa ilure, malfunction or acci dent arising from the use of a ny rohms products against warning, caution or note contained in this document. 2. all information contained in this docume nt is current as of the issuing date and subj ec t to change without any prior notice. before purchasing or using rohms products, please confirm the la test information with a rohm sale s representative. 3. the information contained in this doc ument is provi ded on an as is basis and rohm does not warrant that all information contained in this document is accurate an d/or error-free. rohm shall not be in an y way responsible or liable for an y damages, expenses or losses incurred b y you or third parties resulting from inaccur acy or errors of or concerning such information.


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