SMCGLCE6.5 MICROSEMI | Alldatasheet
Document overview
- Manufacturer or author: Provided By ALLDATASHEET.COM(FREE DATASHEET DOWNLOAD SITE)
- PDF pages: 4
Technical content
1500 WATT LOW CAPACITANCE
WWW.Microsemi .COM SCOTTSDALEDIVISION SMCGLCE6.5 thru SMCGLCE170A, e3 SMCJLCE6.5 thru SMCJLCE170A, e3 SMCG DESCRIPTION APPEARANCE This surface mount Transient Voltage Suppressor (TVS) product family includes a rectifier diode element in series and opposite direction to achieve low capacitance below 100 pF. They are also available as RoHS Compliant with an e3 suffix. The low TVS capacitance may be used for protecting higher frequency applications in inductive switching environments or electrical systemsinvolving secondary lightning effects per IEC61000-4-5 as well as RTCA/DO-160D or ARINC 429 for airborne avionics. They also protect from ESD and EFT per IEC61000-4-2 and IEC61000-4-4. If bipolar transient capability is required, two of these low capacitance TVS devices may be used in parallel and opposite directions (anti-parallel) for complete ac protection (Figure 6). IMPORTANT: For the most current data, consult MICROSEMI’s website: http://www.microsemi.com FEATURES APPLICATIONS / BENEFITS Available in standoff voltage range of 6.5 to 200 V Low capacitance of 100 pF or less Molding compound flammability rating: UL94V-O Two different terminations available in C-bend (modified J- Bend with DO-214AB) or Gull-wing (DO-215AB) Options for screening in accordance with MIL-PRF-19500 for JAN, JANTX, JANTXV, and JANS are available by adding MQ, MX, MV, or MSP prefixes respectively to part numbers Optional 100% screening for avionics grade is available by adding MA prefix to part number for 100% temperature cycle –55ºC to 125ºC (10X) as well as surge (3X) and 24 hours HTRB with post test VBR & IR RoHS Compliant devices available by adding an “e3” suffix
1500 Watts of Peak Pulse Power at 10/1000
s Protection for aircraft fast data rate lines per select level waveforms in RTCA/DO-160D & ARINC 429 Low capacitance for high speed data line interfaces IEC61000-4-2 ESD 15 kV (air), 8 kV (contact) IEC61000-4-5 (Lightning) as further detailed in LCE6.5 thru LCE170A data sheet T1/E1 Line Cards Base Stations WAN Interfaces XDSL Interfaces CSU/DSU Equipment MAXIMUM RATINGS MECHANICAL AND PACKAGING
1500 Watts of Peak Pulse Power dissipation at 25 oC with
repetition rate of 0.01% or less* Clamping Factor: 1.4 @ Full Rated power 1.30 @ 50% Rated power t clamping (0 volts to V(BR) min): Less than 5x10-9 seconds Operating and Storage temperatures: -65 to +150 oC Steady State power dissipation: 5.0W @ T L = 50oC THERMAL RESISTANCE: 20 oC/W (typical junction to lead (tab) at mounting plane * When pulse testing, do not pulse in opposite direction (see “Schematic Applications ” section herein and Figures 5 & 6 for further protection in both directions) CASE: Molded, surface mountable TERMINALS: Gull-wing or C-bend (modified J- bend) tin-lead or RoHS compliant annealed matte-tin plating solderable per MIL-STD-750, method 2026 POLARITY: Cathode indicated by band MARKING: Part number without prefix (e.g. LCE6.5A, LCE6.5Ae3, LCE33, LCE33Ae3, etc. TAPE & REEL option: Standard per EIA-481-B with 16 mm tape, 750 per 7 inch reel or 2500 per 13 inch reel (add “TR” suffix to part number) ELECTRICAL CHARACTERISTICS @ 25oC Breakdown Voltage VBR @ I(BR) Volts MICROSEMI Part Number Gull-Wing “G” Bend Lead MICROSEMI Part Number Modified “J” Bend Lead Reverse Stand-Off Voltage VWM Volts MIN MAX mA Maximum Reverse Leakage @VWM ID A Maximum Clamping Voltage @IPP VC Volts Maximum Peak Pulse Current IPP @10/1000 Amps Maximum Capacitance @ 0 Volts, f = 1 MHz pF VWIB Microsemi Scottsdale Division Page 1 B Working Inverse Blocking Voltage Volts IIB Inverse Blocking Leakage Current mA VPIB Peak Inverse Blocking Voltage Volts SMCGLCE6.5 SMCGLCE6.5A SMCGLCE7.0 SMCGLCE7.0A SMCJLCE6.5 SMCJLCE6.5A SMCJLCE7.0 SMCJLCE7.0A 6.5 6.5 7.0 7.0 7.22 7.22 7.78 7.78 8.82 7.98 9.51 8.60 1000 1000 500 500 12.3 11.2 13.3 12.0 100 100 100 100 100 100 100 100 SMCGLCE7.5 SMCGLCE7.5A SMCGLCE8.0 SMCGLCE8.0A SMCJLCE7.5 SMCJLCE7.5A SMCJLCE8.0 SMCJLCE8.0A 7.5 7.5 8.0 8.0 8.33 8.33 8.89 8.89 10.2 9.21 10.9 9.83 250 250 100 100 14.3 12.9 15.0 13.6 100 100 100 100 100 100 100 100 100 100 100 100 SMCGLCE8.5 SMCGLCE8.5A SMCGLCE9.0 SMCGLCE9.0A SMCJLCE8.5 SMCJLCE8.5A SMCJLCE9.0 SMCJLCE9.0A 8.5 8.5 9.0 9.0 9.44 9.44 10.0 10.0 11.5 10.4 12.2 11.1 15.9 14.4 16.9 15.4 100 100 100 100 100 100 100 100 100 LCE/SMCJLCE Copyright 2005 6-06-2005 REV D 8700 E. Thomas Rd. PO Box 1390, Scottsdale, AZ 85252 USA, (480) 941-6300, Fax: (480) 947-1503
WWW.Microsemi .COM SCOTTSDALEDIVISION SMCGLCE6.5 thru SMCGLCE170A, e3 SMCJLCE6.5 thru SMCJLCE170A, e3 SMCG Breakdown Voltage VBR @ I(BR) Volts MICROSEMI Part Number Gull-Wing “G” Bend Lead MICROSEMI Part Number Modified “J” Bend Lead Reverse Stand-Off Voltage VWM Volts MIN MAX mA Maximum Reverse Leakage @VWM ID A Maximum Clamping Voltage @IPP VC Volts Maximum Peak Pulse Current IPP @10/1000 Amps Maximum Capacitance @ 0 Volts pF VWIB B Working Inverse Blocking Voltage Volts IIB Inverse Blocking Leakage Current mA VPIB Peak Inverse Blocking Voltage Volts SMCGLCE10 SMCGLCE10A SMCGLCE11 SMCGLCE11A SMCJLCE10 SMCJLCE10A SMCJLCE11 SMCJLCE11A 11.1 11.1 12.2 12.2 13.6 12.3 14.9 13.5 18.8 17.0 20.1 18.2 100 100 100 100 100 100 100 100 SMCGLCE12 SMCGLCE12A SMCGLCE13 SMCGLCE13A SMCJLCE12 SMCJLCE12A SMCJLCE13 SMCJLCE13A 13.3 13.3 14.4 14.4 16.3 14.7 17.6 15.9 22.0 19.9 23.8 21.5 100 100 100 100 100 100 100 100 SMCGLCE14 SMCGLCE14A SMCGLCE15 SMCGLCE15A SMCJLCE14 SMCJLCE14A SMCJLCE15 SMCJLCE15A 15.6 15.6 16.7 16.7 19.1 17.2 20.4 18.5 25.8 23.2 26.9 24.4 100 100 100 100 100 100 100 100 SMCGLCE16 SMCGLCE16A SMCGLCE17 SMCGLCE17A SMCJLCE16 SMCJLCE16A SMCJLCE17 SMCJLCE17A 17.8 17.8 18.9 18.9 21.8 19.7 23.1 20.9 28.8 26.0 30.5 27.6 100 100 100 100 100 100 100 100 SMCGLCE18 SMCGLCE18A SMCGLCE20 SMCGLCE20A SMCJLCE18 SMCJLCE18A SMCJLCE20 SMCJLCE20A 20.0 20.0 22.2 22.2 24.4 22.1 27.1 24.5 32.2 29.2 35.8 32.4 100 100 100 100 100 100 100 100 SMCGLCE22 SMCGLCE22A SMCGLCE24 SMCGLCE24A SMCJLCE22 SMCJLCE22A SMCJLCE24 SMCJLCE24A 24.4 24.4 26.7 26.7 29.8 26.9 32.6 29.5 39.4 35.5 43.0 38.9 100 100 100 100 100 100 100 100 SMCGLCE26 SMCGLCE26A SMCGLCE28 SMCGLCE28A SMCJLCE26 SMCJLCE26A SMCJLCE28 SMCJLCE28A 28.9 28.9 31.1 31.1 353 31.9 38.0 34.4 46.6 42.1 50.1 45.5 100 100 100 100 100 100 100 100 SMCGLCE30 SMCGLCE30A SMCGLCE33 SMCGLCE33A SMCJLCE30 SMCJLCE30A SMCJLCE33 SMCJLCE33A 33.3 33.3 36.7 36.7 40.7 36.8 44.9 40.6 53.5 48.4 59.0 53.3 25.4 28.1 100 100 100 100 100 100 100 100 SMCGLCE36 SMCGLCE36A SMCGLCE40 SMCGLCE40A SMCJLCE36 SMCJLCE36A SMCJLCE40 SMCJLCE40A 40.0 40.0 44.4 44.4 48.9 44.2 54.3 49.1 64.3 58.1 71.4 64.5 23.3 25.8 21.0 23.3 100 100 100 100 100 100 100 100 SMCGLCE43 SMCGLCE43A SMCGLCE45 SMCGLCE45A SMCJLCE43 SMCJLCE43A SMCJLCE45 SMCJLCE45A 47.8 47.8 50.0 50.0 58.4 52.8 61.1 55.3 76.7 69.4 80.3 72.7 19.5 21.6 18.7 20.6 100 100 100 100 150 150 150 150 200 200 200 200 SMCGLCE48 SMCGLCE48A SMCGLCE51 SMCGLCE51A SMCJLCE48 SMCJLCE48A SMCJLCE51 SMCJLCE51A 53.3 53.3 56.7 56.7 65.1 58.9 69.3 62.7 85.5 77.4 91.1 82.4 17.5 19.4 16.5 18.2 100 100 100 100 150 150 150 150 200 200 200 200 SMCGLCE54 SMCGLCE54A SMCGLCE58 SMCGLCE58A SMCJLCE54 SMCJLCE54A SMCJLCE58 SMCJLCE58A 60.0 60.0 64.4 64.4 73.3 66.3 78.7 71.2 96.3 87.1 103 93.6 15.6 17.2 14.6 16.0 100 100 100 100 150 150 150 150 200 200 200 200 SMCGLCE60 SMCGLCE60A SMCGLCE64 SMCGLCE64A SMCJLCE60 SMCJLCE60A SMCJLCE64 SMCJLCE64A 66.7 66.7 71.1 71.1 81.5 73.7 86.9 78.6 107 96.8 114 103 14.0 15.5 13.2 14.6 150 150 150 150 200 200 200 200 SMCGLCE70 SMCGLCE70A SMCGLCE75 SMCGLCE75A SMCJLCE70 SMCJLCE70A SMCJLCE75 SMCJLCE75A 77.8 77.8 83.3 83.3 95.1 85.0 102 92.1 125 113 134 121 12.0 13.3 11.2 12.4 150 150 150 150 200 200 200 200 SMCGLCE80 SMCGLCE80A SMCGLCE90 SMCGLCE90A SMCJLCE80 SMCJLCE80A SMCJLCE90 SMCJLCE90A 88.7 88.7 100 100 108 98.0 122 111 142 129 160 146 10.6 11.6 9.4 10.3 150 150 300 300 200 200 200 200 SMCGLCE100 SMCGLCE100A SMCGLCE110 SMCGLCE110A SMCJLCE100 SMCJLCE100A SMCJLCE110 SMCJLCE110A 100 100 110 110 111 111 122 122 136 123 149 135 179 162 196 178 8.4 9.3 7.7 8.4 300 300 300 300 200 200 400 400 SMCGLCE120 SMCGLCE120A SMCGLCE130 SMCGLCE130A SMCJLCE120 SMCJLCE120A SMCJLCE130 SMCJLCE130A 120 120 130 130 133 133 144 144 163 147 176 159 214 193 231 209 7.0 7.8 6.5 7.2 300 300 300 300 400 400 400 400 SMCGLCE150 SMCGLCE150A SMCGLCE160 SMCGLCE160A SMCJLCE150 SMCJLCE150A SMCJLCE160 SMCJLCE160A 150 150 160 160 167 167 178 178 204 185 218 197 268 243 287 259 5.6 6.2 5.2 5.8 300 300 300 300 400 400 400 400 SMCGLCE170 SMCGLCE170A SMCJLCE170 SMCJLCE170A 170 170 189 189 231 209 304 275 4.9 5.4 300 300 400 400 LCE/SMCJLCE NOTE 1: TVS are normally selected according to the reverse “Stand Off Voltage” (VWM) which should be equal to or greater than the dc or continuous peak operating voltage level. Microsemi Scottsdale Division Page 2Copyright 2005 6-06-2005 REV D 8700 E. Thomas Rd. PO Box 1390, Scottsdale, AZ 85252 USA, (480) 941-6300, Fax: (480) 947-1503
WWW.Microsemi .COM SCOTTSDALEDIVISION SMCGLCE6.5 thru SMCGLCE170A, e3 SMCJLCE6.5 thru SMCJLCE170A, e3 SMCG GRAPHS PPP – Peak Pulse Power – kW Test wave form parameterxs tr = 10 s tp = 1000 s tp – Pulse Time – sec FIGURE 2 PULSE WAVEFORM FIGURE 1 PEAK PULSE POWER vs. PULSE TIME T – Temperature – oC Peak Pulse Power (PPP) or Current (IPP) in percent of 25oC rating FIGURE 3 DERATING CURVE SCHEMATIC APPLICATIONS The TVS low capacitance device configuration is shown in Figure 4. As a further option for unidirectional applications, an additional low capacitance rectifier diode may be used in parallel in the same polarity direction as the TVS as shown in Figure 5. In applications where random high voltage transients occur, this will prevent reverse transients from damaging the internal low capacitance rectifier diode and also provide a low voltage conducting direction. The added rectifier diode should be of similar low capacitance and also have a higher reverse voltage rating than the TVS clamping voltage V C. The Microsemi recommended rectifier part number for the application in Figure 5 is the “SMBJLCR80” or “SMBGLCR80” depending on the terminal configuration desired. If using two (2) low capacitance TVS devices in anti-parallel for bidirectional applications, this added protective feature for both directions (including the reverse of each rectifier diode) is inherently provided in Figure 6. The unidirectional and bidirectional configurations in Figure 5 and 6 will both result in twice the capacitance of Figure 4. Microsemi Scottsdale Division Page 3Copyright 2005 6-06-2005 REV D LCE/SMCJLCE FIGURE 4 FIGURE 5 FIGURE 6 TVS with internal low Optional Unidirectional Optional Bidirectional capacitance rectifier diode configuration (TVS and configuration (two TVS separate rectifier diode) devices in anti-parallel) in parallel) 8700 E. Thomas Rd. PO Box 1390, Scottsdale, AZ 85252 USA, (480) 941-6300, Fax: (480) 947-1503
WWW.Microsemi .COM SCOTTSDALEDIVISION SMCGLCE6.5 thru SMCGLCE170A, e3 SMCJLCE6.5 thru SMCJLCE170A, e3 SMCG PACKAGE DIMENSIONS DIMENSIONS IN INCHES A B C D E F K L DIMENSIONS IN MILLIMETERS DO-214AB DO-215AB (SMCG) (SMCJ) PAD LAYOUT Microsemi Scottsdale Division Page 4Copyright 2005 6-06-2005 REV D LCE/SMCJLCE INCHESmm A .390 9.90 B .110 2.79 C .150 3.81 INCHESmm A 0.510 12.95 B 0.110 2.79 C 0.150 3.81 SMCG SMCJ 8700 E. Thomas Rd. PO Box 1390, Scottsdale, AZ 85252 USA, (480) 941-6300, Fax: (480) 947-1503