SMBJ SERIES Surface Mount Transient Voltage Suppressor Voltage Range 5.0 to 170 Volts 600 Watts Peak Power
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1 SMBJ SERIES Surface Mount Transient Voltage Suppressor Voltage Range 5. to 17 Volts 6 Watts Peak Power Features SMB/DO-214AA For surface mounted application Low profile package Built-in strain relief Glass passivated junction Excellent clamping capability Fast response time: Typically less than 1.ps from volt to BV min. Typical I R less than 1μA above V High temperature soldering guaranteed: 26 O C / seconds at terminals Plastic material used carries Underwriters Laboratory Flammability Classification 94V- 6 watts peak pulse power capability with a x us waveform by.1% duty cycle Mechanical Data Case: Molded plastic Terminals: Solder plated Polarity: Indicated by cathode bandexcept bipolar Standard packaging: 12mm tape (EIA STD RS-481) Weight:.93gram Maximum Ratings and Electrical Characteristics Rating at 25 ambient temperature unless otherwise specified. Dimensions in inches and (millimeters) Type Number Symbol Value Units Peak Power Dissipation at T A=25 O C, Tp=1ms(Note 1) P PK Minimum 6 Watts Steady State Power Dissipation Pd 3 Watts Peak Forward Surge Current, 8.3 ms Single Half Sine-wave Superimposed on Rated Load (JEDEC method) (Note 2, 3) - Unidirectional Only Maximum Instantaneous Forward Voltage at 5.A for Unidirectional Only (Note 4) Typical Thermal Resistance (Note 5).82(2.8).76(1.93).3(2.61).78(1.99).56(1.41).35(.9).187(4.75).167(4.25).28(5.28).2(5.8).8(.2).4(.).12(.31).6(.15).147(3.73).137(3.48).12(.31).6(.15) I FSM Amps V F 3.5 / 5. Volts Rθ JC O C/W Rθ JA 55 Operating and Storage Temperature Range T J, T STG -65 to + 15 O C Notes: 1. Non-repetitive Current Pulse Per Fig. 3 and Derated above T A=25 O C Per Fig Mounted on.4 x.4" ( x mm) Copper Pads to Each Terminal ms Single Half Sine-wave or Equivalent Square Wave, Duty Cycle=4 Pulses Per Minute Maximum. 4. V F =3.5V on SMBJ5. thru SMBJ9 Devices and V F =5.V on SMBJ thru SMBJ17 Devices. 5. Measured on P.C.B. with.27 x.27 (7.mm x 7.mm) Copper Pad Areas. Devices for Bipolar Applications 1. For Bidrectional Use C or CA Suffix fortypes SMBJ5. through Types SMBJ Electrical Characteristics Apply in Both Directions
2 RATINGS AND CHARACTERISTIC CURVES (SMBJ SERIES) FIG.1- PEAK PULSE POWER RATING CURVE FIG.2- PULSE DERATING CURVE Pppm, PEAK PULSE POWER, KW " sq 5.mm COPPER PAD AREAS.1.1 s 1. s s s 1.ms ms td. PULSE WIDTH, sec. NON-REPETITIVE PULSE WAVEFORM SHOWN in FIG. 3 T A=25 C PEAK PULSE POWER (Pppm) or CURRENT (lpp) DERATING IN PERCENTAGE, % TA, AMBIENT TEMPERATURE. O C lppm, PEAK PULSE CURRENT % IRSM 15 5 FIG.3- PULSE WAVEFORM PULSE WIDTH (td) is DEFINED tr= sec. AS THE POINT WHERE THE PEAK CURRENT DECAYS to 5% of lppm PEAK VALUE lppm HALF VALUE- lpp 2 td t, TIME, ms / sec. WAVEFORM AS DEFINED BY R.E.A. PEAK FORWARD SURGE CURRENT. (A) 2 FIG.4- MAXIMUM NON-REPETITIVE FORWARD SURGE CURRENT 8.3ms Single Half Sine Wave JEDEC Method UNIDIRECTIONAL ONLY 1 NUMBER OF CYCLES AT 6Hz FIG.5- TYPICAL JUNCTION CAPACITANCE Cj, JUNCTION CAPACITANCE, pf 6, 1, VR MEASURED AT STAND-OFF VOLTAGE,VWM Tj=25 C f=1.mhz Vsig=5mVp-p MEASURED AT ZERO BIAS VWM, REVERSE STAND-OFF VOLTAGE. (V)
3 ELECTRICAL CHARACTERISTICS (TA=25 O C unless otherwise noted) Breakdown Voltage Stand-Off Maximum Maximum Maximum Device Device VBR Test Current Voltage Reverse Leakage Peak Surge Clamping Marking code (Volts) (Note VWM at Vwm Current IPPM Voltage at IPPM Min Max (Volts) ID (ua) (Note 2)(Amps) VC(Volts) SMBJ5. KD SMBJ5.A KE SMBJ6. KF SMBJ6.A KG SMBJ6.5 KH SMBJ6.5A KK SMBJ7. KL SMBJ7.A KM SMBJ7.5 KN SMBJ7.5A KP SMBJ8. KQ SMBJ8.A KR SMBJ8.5 KS SMBJ8.5A KT SMBJ9. KU SMBJ9.A KV SMBJ KW SMBJA KX SMBJ11 KY SMBJ11A KZ SMBJ12 LD SMBJ12A LE SMBJ13 LF SMBJ13A LG SMBJ14 LH SMBJ14A LK SMBJ15 LL SMBJ15A LM SMBJ16 LN SMBJ16A LP SMBJ17 LQ SMBJ17A LR SMBJ18 LS SMBJ18A LT SMBJ2 LU SMBJ2A LV SMBJ22 LW SMBJ22A LX SMBJ24 LY SMBJ24A LZ SMBJ26 MD SMBJ26A ME SMBJ28 MF SMBJ28A MG SMBJ3 MH SMBJ3A MK SMBJ33 ML SMBJ33A MM SMBJ36 MN SMBJ36A MP SMBJ4 MQ SMBJ4A MR SMBJ43 MS SMBJ43A MT SMBJ45 MU SMBJ45A MV SMBJ48 MW SMBJ48A MX SMBJ51 MY SMBJ51A MZ SMBJ54 ND SMBJ54A NE SMBJ58 NF SMBJ58A NG SMBJ6 NH SMBJ6A NK SMBJ64 NL SMBJ64A NM SMBJ7 NN SMBJ7A NP SMBJ75 NQ SMBJ75A NR SMBJ78 NS SMBJ78A NT SMBJ85 NU SMBJ85A NV SMBJ9 NW SMBJ9A NX SMBJ NY SMBJA NZ SMBJ1 PD SMBJ1A PE SMBJ12 PF SMBJ12A PG SMBJ13 PH SMBJ13A PK SMBJ15 PL SMBJ15A PM SMBJ16 PN SMBJ16A PP SMBJ17 PQ SMBJ17A PR Note: 1. VBR measured after IT applied for 3us, IT=square wave pulse or equivatent. 2. Surge current waveform per Figure 3 and derate per Figure All terms and symbols are consistant with ANSI/IEEE C For bidirectional use C or CA suffix for types SMBJ5. thorugh types SMBJ For bipolar types having VWM of volts(smbj8.c) and under the ID limit is doubled
4 TVS APPLICATION NOTES: Transient Voltage Suppressors may be used at various points in a circuit to provide various degrees of protection. The following is a typical linear power supply with transient voltage suppressor units placed at different points. All provide protection of the load. FIGURE 1 Transient Voltage Suppressors 1 provides maximum protection. However, the system will probably require replacement of the line fuse(f) since it provides a dominant portion of the series impedance when a surge is encountered. However, we do not recommend to use the TVS diode here, unless we can know the electric circuit impedance and the magnitude of surge rushed into the circuit. Otherwise the TVS diode is easy to be destroyed by voltage surge. Transient Voltage Suppressor 2 provides execllent protection of circuitry excluding the transformer(t). However, since the transformer is a large part of the series impedance, the chance of the line fuse opening during the surge condition is reduced. Transient Voltage Suppressor 3 provides the load with complete protection. It uses a unidirectional Transient Voltage Suppressor, which is a cost advantage. The series impedance now includes the line fuse, transformer, and bridge rectifier(b) so failure of the line fuse is further reduced. If only Transient Voltage Suppressor 3 is in use, then the bridge rectifier is unprotected and would require a higher voltage and current rating to prevent failure by transients. Any combination of these three, or any one of these applications, will prevent damage to the load. This would require varying trade-offs in power supply protection versus maintenance(changing the time fuse). An additional method is to utilize the Transient Voltage Suppressor units as a controlled avalanche bridge. This reduces the parts count and incorporates the protection within the bridge rectifier. FIGURE 2 RECOMMENDED PAD SIZES The pad dimensions should be."(.25mm) longer than the contact size, in the lead axis. This allows a solder fillet to form, see figure below. Contact factory for soldering methods
5 This datasheet has been download from: Datasheets for electronics components.
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