CM2540-9EPD3AHG BEL | Alldatasheet

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  • PDF pages: 31

Technical content

Features

  • Extremly wide operating input voltage ranges from 8 to 385 VDC and 85 to 264 VAC, 47 to 440 Hz
  • RoHS lead-free-solder and lead-solder-exempted products available
  • Class I equipment
  • Input over- and undervoltage lockout
  • 1, 2, or 3 individually isolated outputs up to 72 V
  • Outputs: SELV, no load, overload, short-circuit proof, rectangular current limiting characteristic
  • Adjustable output voltages with remote on/off
  • Immunity according to IEC/EN 61000-4-2, -3, -4, -5, -6
  • Emissions according to EN 55011/55022
  • According to EN 45545 and NF-F-16 (Version V107 or later)
  • All PCBs boards coated by protective lacquer
  • Very high reliability
  • Battery charger models available Safety-approved to the latest edition of IEC/EN 60950-1 and UL/CSA 60950-1 Table of Contents 168 6.6"39 1.54" 8TE 111 4.37"

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 2 of 31 M Series

50 W DC-DC and AC-DC Converters

© 2019 Bel Power Solutions & Protection

Description

The M Series of DC-DC and AC-DC converters represents a broad and flexible range of power supplies for use in advanced in - dustrial electronic systems. Features include high efficiency, reliability, low output voltage noise and excellent dynamic response to load/line changes due to individual regulation of each output. The converter inputs are protected against surges and transients occurring at the source lines. An input over- and undervoltage lockout circuit disables the outputs, if the input voltage is outside the specified range. An inrush current limitation prevents circuit breakers and fuses from tripping at switch-on. All outputs are open- and short-circuit proof, and are protected against overvoltages by means of built-in suppressor diodes. The outputs can be inhibited by a logic signal applied to the connector (pin 2). If the inhibit function is not used, pin 2 should be con - nected to pin 23 to enable the outputs. LED indicators display the status of the converter and allow visual monitoring of the system at any time. Full input to output, input to case, output to case, and output to output isolation is provided. The case design allows operation at nominal load up to 71 °C in a free-air ambient temperature. If forced cooling is provided, the ambient temperature may exceed 71 °C but the case temperature should remain below 95 °C under all conditions. A temperature sensor generates an inhibit signal, which disables the outputs, when the case temperature TC exceeds the limit. The outputs automatically recover, when the temperature drops below the limit. Various options are available to adapt the converters to individual applications. The converters may either be plugged into a 19” rack system according to IEC 60927-3 or be mounted onto a chassis or a plate. Model Selection Non-standard input/output configurations or special custom adaptions are available on request. Table 1 provides an overview of the basic input and output configurations. More than 1000 different model types have been manufactured with diff erent input/output configurations and customized specialties. Please consult the company for additional model types. Table 1a: Standard models AM, BM, FM Output 1 Output 2 Output 3 Operating Input Voltage Range and Efficiency 1 Options Vo nom [VDC] Io nom [A] Vo nom [VDC] Io nom [A] Vo nom [VDC] Io nom [A] Vi min – Vi max 8 - 35 VDC η min [%] Vi min – Vi max 14 - 70 VDC η min [%] Vi min – Vi max 20 - 100 VDC η min [%] 5.1 8.0 4.0 3.4 2.0 1.0 AM1001-9RG AM1301-9RG AM1501-9RG AM1601-9RG AM1901-9RG BM1001-9RG BM1301-9RG BM1501-9RG BM1601-9RG BM1901-9RG FM1001-9RG FM1301-9RG FM1501-9RG FM1601-9RG FM1901-9RG -7, P, D0 - D9, V0 - V3², F, A, K, H, non-G 5.1 5.1 4.0 4.0 2.0 1.7 1.0 5.1 4.0 1.0 2.0 1.7 1.0 AM2001-9G AM2060-9G AM2320-9G AM2540-9G AM2660-9G BM2001-9G BM2060-9G BM2320-9G BM2540-9G BM2660-9G FM2320-9G FM2540-9G -7, P, D0 - D9, A, K, H, non-G 5.1 5.1 5.1 5.0 5.0 5.0 0.7 0.6 0.35 0.7 0.6 0.35 AM3020-9G AM3040-9G AM3060-9G BM3020-9G BM3040-9G BM3060-9G FM3020-9G FM3040-9G -7, P, D0 - D9, A, K, H, non-G 2 Option V0, V2, V3 available only for output 1 = 5.1 V (excludes option D) NFND: Not for new designs. Preferred for new designs

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 3 of 31 M Series © 2019 Bel Power Solutions & Protection Table 1b: Models CM, DM, LM Output 1 Output 2 Output 3 Operating Input Voltage Range and Efficiency 1 Options Vo nom [VDC] Io nom [A] Vo nom [VDC] Io nom [A] Vo nom [VDC] Io nom [A] Vi min – Vi max 28 - 140 VDC η min [%] Vi min – Vi max 44 - 220 VDC η min [%] Vi min – Vi max 88 - 372 VDC 85 - 264 VAC 3 η min [%] 5.1 8.0 4.0 3.4 2.0 1.0 CM1001-9RG CM1301-9RG CM1501-9RG CM1601-9RG CM1901-9RG DM1001-9RG DM1301-9RG DM1501-9RG DM1601-9RG DM1901-9RG LM1001-9RG LM1301-9RG LM1501-9RG LM1601-9RG LM1901-9RG -7, E 4, P, D0 - D9, V0 - V3², A, K, H, non-G 5.1 5.1 4.0 4.0 2.0 1.7 1.0 5.1 4.0 1.0 2.0 1.7 1.0 CM2001-9G CM2060-9G CM2320-9G CM2540-9G CM2660-9G DM2001-9G DM2060-9G DM2320-9G DM2540-9G DM2660-9G LM2001-9G LM2060-9G LM2320-9G LM2540-9G LM2660-9G -7, E 4, P, D0 - D9, A, K, H, non-G 5.1 5.1 5.1 5.0 5.0 5.0 0.7 0.6 0.35 0.7 0.6 0.35 CM3020-9G CM3040-9G CM3060-9G DM3020-9G DM3040-9G DM3060-9G LM3020-9G LM3040-9G LM3060-9G -7, E 4, P, D0 - D9, A, K, H, non-G Table 1c: EM and battery charger models Output 1 Output 2 Output 3 Operating Input Voltage Range & Efficiency1 Options Vo nom [VDC] Io nom [A] Vo safe [VDC] Vo max [VDC] Vo nom [VDC] Io nom [A] Vo nom [VDC] Io nom [A] Vi min – Vi max 67 - 385 VDC ηmin [%] Vi min – Vi max 88 - 372 VDC 85 - 264 VAC 3 ηmin [%] Same Vo nom and Io nom as DM models Same as DM models Same as DM models Same as DM models EM1xxx-9RG EM2xxx-9RG EM3xxx-9RG -7, E, D, A, non-G 3.6 1.8 1.2 0.9 0.72 12.84 25.68 38.52 51.36 64.20 14.15 – 14.60 28.30 – 29.15 42.45 – 43.72 56.60 – 58.30 70.75 – 72.87 LM1781-9RD5G LM1782-9RD5G LM1783-9RD5G LM1784-9RD5G LM1785-9RD5G -7, E, A, non-G 2 Option V0, V2, V3 available only for output 1 = 5.1 V (excludes option D) 3 Operating frequency range: 47 – 440 Hz; see Safety and Installation Instructions for >60 Hz !

4 Option E only available for CM and LM models (not for DM)

5 Vo nom for EM models

6 Setting voltage with open R-input (battery chargers)

NFND: Not for new designs. Preferred for new designs

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 4 of 31 M Series © 2019 Bel Power Solutions & Protection Part Number Description customer-specific .... -0, -5, -6, -8 Auxiliary functions and options: C M 2 5 40 -9 E P D3 A H G

1 Option D excludes option V and vice versa

2 Feature R is fitted to single-output models only. Option P excludes option R (and vice versa).

3 Only for FM1000

4 Models with 220 mm case length. Just add 6000 to the standard model number, e.g., DM3020-9AG → DM9020-9AG. Note: The sequence of options must follow the order above. The part number description is descriptive only; it is not intended for creating part numbers. Example: CM2540-9EPD3AHG: DC-DC converter, operating input voltage range 28 – 140 VDC, providing output 1 with 15 V/1.7 A and output 2 with 15 V /1.7 A; temperature range –40 to +71 °C, inrush current limitation, equipped with potentiometers, undervoltage monitor D3, test sockets, tested with higher voltage output to case, RoHS-compliant for all 6 substances. Product Marking Basic type designation, applicable approval marks, CE mark, warnings, pin designation, patents and company logo, identification of LEDs, test sockets, and potentiometer. Specific type designation, input voltage range, nominal output voltages and currents, degree of protection, batch no., serial no., and data code including production site, modification status (version), and date of production.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 5 of 31 M Series © 2019 Bel Power Solutions & Protection Functional Description The input voltage is fed via an input fuse, an input filter, a bridge rectifier, and an inrush current limiter to the input capacitor. This capacitor sources a single-transistor forward converter. Each output is powered by a separate secondary winding of the main transformer. The resultant voltages are rectified and their ripple smoothed by a power choke and an output filter. The main control circuit senses the main output voltage Vo1 and generates, with respect to the maximum admissible output currents, the control signal for the primary switching transistor. This signal is transferred to the primary side by a coupling transformer. The auxiliary output voltages Vo2 and Vo3 are individually regulated by means of secondary switching transistors. Each aux iliary output’s current is sensed using a current transformer. If one of the outputs is driven into current limit, the other outputs will reduce their output voltages as well, because all output currents are controlled by the same main control circuit. 1 Transient suppressor diode in AM, BM, CM, FM models. 2 Bridge rectifier in LM, series diode in EM models. 3 Inrush current limiter (NTC) in CM, DM, EM, LM models (option E: refer to the description of option E). 4 Single-output models with feature R.

5 LM-models

approx. 70 kHz CY CY CZ CZ Vi+ Vi– i D, V R G 03009a Fig. 1 Block diagram, triple-output models

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 6 of 31 M Series © 2019 Bel Power Solutions & Protection Electrical Input Data General conditions: - TA = 25 °C, unless TC is specified. - Connector pins 2 and 23 interconnected, R input not connected; with option P: Vo = Vo nom Table 2a: Input data Model AM BM FM CM Unit Characteristics Conditions min typ max min typ max min typ max min typ max Vi Operating input voltage Io = 0 – Io nom TC min – TC max 8 35 14 70 20 100 28 154 7 VDC Vi nom Nominal input voltage 15 30 50 60 Ii Input current Vi nom, Io nom 2 4.0 2.0 1.2 1.0 A Pi 0 No-load input power: – single-output models – double-output models – triple-output models Vi nom Io1, 2, 3 = 0 1.5 1.5 1.5 1.5 W Pi inh Idle input power Inhibited Vi nom 1 1.5 1 1.5 1 1.5 1 1.5 Iinr p

6 Peak inrush current Vi = Vi max

RS = 0 Ω 3 TC = 25 °C 400 500 400 170 4 tinr r Rise time 60 50 40 60 tinr h Time to half-value 170 100 60 280 Ri Input resistance TC = 25 °C 87.5 140 250 824 4 mΩ Ci Input capacitance 2600 4000 670 1100 370 600 370 600 µF Vi abs Input voltage limits without any damage 0 40 0 80 0 120 0 160 VDC Table 2b: Input data Model DM EM LM Unit Characteristics Conditions min typ max min typ max min typ max Vi Operating input voltage Io = 0 – Io nom TC min – TC max - - 85 264 VDC44 220 67 385 88 372 Vi nom Nominal input voltage 110 220 310 Ii Input current Vi nom, Io nom 2 0.55 0.275 0.2 A Pi 0 No-load input power: – single-output models – double-output models – triple-output models Vi nom Io1, 2, 3 = 0 1.5 1.5 1.5 W Pi inh Idle input power Inhibited Vi nom 1 1.5 1 1.5 1 1.5 Iinr p RS = 0 Ω 3 TC = 25 °C 110 4 160 4 60 4 tinr r Rise time 40 40 300 tinr h Time to half-value 250 240 900 Ri Input resistance TC = 25 °C 2000 4 2400 4 6200 4 mΩ Ci Input capacitance 140 270 140 270 140 270 µF Vi abs Input voltage limits without any damage 0 400 5 - 400 400 - 400 400 VDC - - - - 0 284 1 In AC powered mode (LM models): Nominal input voltage range: 100 – 240 VAC, operating input frequency range: 47 – 440 Hz 2 With multiple-output models, the same condition for each output applies. 3 R S = source resistance. 4 Value for initial switch-on cycle. 5 1 s max., duty cycle 1% max. 6 Iinr p = Vi /(Rs + Ri); see Inrush Current. 7 140 V continuously. CM models with version V106 or greater (or with suffix /131) withstand 154 V for 2 s.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 7 of 31 M Series © 2019 Bel Power Solutions & Protection Input Fuse A fuse holder containing a slow-blow type fuse (size: 5 × 20 mm) is mounted in the back plate of the converter. The fuse protects the converter against severe defects. It may not fully protect it at input voltages exceeding 200 VDC. In applications, where the converters operate at DC source voltages above 200 VDC, an external fuse or a circuit breaker at system level should be installed. The fuse and a VDR form together with the input filter an effective protection against high input transients. Note: For applications, where the fuse should not be accessible; see Option F. Table 3: Fuse types (slow-blow) Series Schurter type Part number AM1000 – 3000 SPT 10 A / 250 V 0001.2514 BM1000 – 3000 SPT 8 A / 250 V 0001.2513 FM1000 – 3000 SPT 5 A / 250 V 0001.2511 CM1000 – 3000 SPT 3.15 A / 250 V 0001.2509 DM1000 – 3000 EM1000 – 3000 LM1000 – 3000 SPT 2.5 A / 250 V 0001.2508 Vi min DC2 345 61 0.1 1.0 AM Ii [A] LM BM FM CM DM EM 04014a 70 350 60 300 50 250 40 200 30 150 20 100 10 50 80 400 0 0.8 2.0 1.0 2.5 1.2 3.0 1.4 3.5 1.6 4.0 0.6 1.5 0.4 1.0 0.2 0.5 AM BM CM FM EM A-EM LM Ii [A] LM DM t [ms] LM A-EM Fig. 2 Typical input current versus relative input voltage at nominal output load Fig. 3 Typical inrush current at initial switch-on. Vi max (DC) and nominal output load Inrush Current The CM, DM, EM, and LM (excluding FM) models incorporate an NTC resistor in the input line, which (during the initial switch-on cycle) limits the peak inrush current in order to prevent the connectors and external switching devices from damage. Subsequent switch-on cycles within a short interval will cause an increase of the peak inrush current due to the warming-up of the NTC resistor. Refer to Option E (only available for CM, EM, and LM. Input Under-/Overvoltage Lockout If the input voltage remains below 0.8 Vi min or exceeds approx. 1.1 Vi max, an internally generated inhibit signal disables the output(s). When checking this function the absolute maximum input voltage rating Vi abs must be carefully considered (see table Input data). Note: When Vi is between Vi min and the undervoltage lockout level, the output voltage may be below the value defined in table Output data. Reverse Polarity Reverse polarity at the input of AM, BM, CM, DM, and FM models will cause the fuse to blow. In EM and LM models a series diode will protect the converter. A series diode is not incorporated in AM, BM, CM, DM and FM types to avoid unwanted power losses.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 8 of 31 M Series © 2019 Bel Power Solutions & Protection Electrical Output Data General Conditions: – TA = 25 °C, unless TC is specified. – Connector pins 2 and 23 interconnected, R input not connected; with option P: Vo = Vo nom Table 4: Output data Output voltage 5.1 V 12 V 15 V 24 V 48 V Unit Characteristics Conditions min typ max min typ max min typ max min typ max min typ max Vo Output voltage Vi nom, Io nom V Vo p Output overvoltage protection 5 7.5 21 25 41 85 Io nom Output current Vi min – Vi max TC min – TC max see Table 1: Model Selection Io L Output current limitation see Fig. 4: Typical voltage Vo Vo versus output currents Io. Vo Output voltage noise Switching frequ. Vi nom, Io nom IEC/EN 61204 BW = 20 MHz 15 30 25 50 35 70 40 80 50 100 mVpp Total 60 120 40 80 40 80 40 80 - ∆Vo V Static line regulation Vi min – Vi nom Vi nom – Vi max Io nom mV ∆Vo l Static load regulation Vi nom Io nom – 0 2 6 25 13 50 17 60 30 80 60 150 ∆Vo lc Static cross load regulation Vi nom Io nom – 0 3 0 ±15 0 ±20 0 ±30 0 ±40 - Vo d Dynamic load regulation Voltage deviation Vi nom Io nom ↔ 1/3 Io nom IEC/EN 61204 t d Recovery time 0.6 0.6 0.5 1 2 ms Vo d c Dynamic cross load regulation Voltage deviation Vi nom Io nom ↔ 1/3 Io nom IEC/EN 61204 +10 -100 +10 -75 +10 -140 +20 -200 - mV t d c Recovery time 0.05 0.5 0.2 0.3 0.5 0.7 - ms αVo Temperature coefficient ∆Vo / ∆TC Vi min – Vi nom 0 – Io nom 1 With multiple-output models, all outputs are loaded with the nominal current. 2 Condition for specified output. With multiple-output models, other output(s) loaded with constant current Io nom. See fig. 5 Dynamic load reg- ulation. 3 Condition for non-specified output, individually tested, other output(s) loaded with constant current Io nom. See fig. 5 Dynamic load regulation. 4 Multiple-output models. 5 By suppressor diode.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 9 of 31 M Series © 2019 Bel Power Solutions & Protection Output Characteristic and Protection Each output is protected by a suppressor diode, which under worst case conditions may become a short circuit. The suppressor diodes are not designed to withstand externally applied overvoltages. Overload at any of the outputs will cause a shutdown of all outputs. A red LED indicates an overload condition at the respective output. 1.0 0.5 Vo 0.5 Vo nom Io Io nom1.0 1.2 Io nom Io1 Io2,Io3 IoL1 IoL2, IoL3 0.95 05022a Io/Io nom Vod Vod td td ∆Vo I ∆Vo I t Vo 0 t ≥10 µs≥10 µs 05010a 0.3 Fig. 4 Typical voltage Vo versus output currents Io. Fig. 5 Dynamic load regulation Vo d versus load change. Thermal Considerations and Protection If a converter is located in free, quasi-stationary air (convection cooling) at the indicated maximum ambient temperature TA max (see table Temperature specifications) and is operated at its nominal input voltage and output power, the temperature measured at the measuring point of case temperature TC (see Mechanical Data) will approach the indicated value TC max after the warm-up phase. However, the relationship between TA and TC depends heavily on the conditions of operation and integration into a system. The thermal conditions are influenced by input voltage, output current, airflow, and temperature of surrounding components and surfaces. TA max is therefore, contrary to TC max, an indicative value only. Caution: The installer must ensure that under all operating conditions TC remains within the limits stated in the table Temperature specifica- tions. Notes: Sufficient forced cooling or an additional heat sink allow TA to pass over 71 °C, if TC max is not exceeded. For -7 or -9 models at an ambient temperature TA of 85 °C with only convection cooling, the maximum permissible current for each output is approx. 50% of its nominal value; see figure 6. A temperature sensor generates an internal inhibit signal disabling the outputs, when the case temperature exceeds TC max. The outputs automatically recover, when the temperature drops below this limit. 0.2 0.4 0.6 0.8 50 60 70 80 90 100 Io /Io nom T A [°C] 1.0 Forced cooling 05031a T C max Convection cooling Fig. 6 Output current derating versus temperature

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 10 of 31 M Series © 2019 Bel Power Solutions & Protection Parallel and Series Connection Main outputs of equal nominal voltage can be connected in parallel. It is important to assure that the main output of a multiple-out- put converter is forced to supply a minimum current of 0. 1 A to enable correct operation of its own auxiliary outputs. In parallel operation, one or more of the main outputs may operate continuously in current limitation, causing an increase of the case temperature TC. Consequently, a reduction of the max. ambient temperature by 10 K is recommended. Main or auxiliary outputs can be connected in series with any other output of the same or another converter. In series connection, the maximum output current is limited by the lowest current limit. Output ripple and regulation values are added. Connection wiring should be kept as short as possible. If output terminals are connected together in order to establish multi-voltage configurations, e.g., +5.1 V, ±12 V etc., the com - mon-ground connecting point should be as close as possible to the connectors of the converter in order to avoid excessive output ripple voltages. Note: Auxiliary outputs should never be connected in parallel! Output Current Allocation for Special Models Output currents differing from those given for standard models (see Model Selection) can be provided on request. A maximum output power of 50 W should be considered, if an ambient temperature range of – 40 to 71 °C is required. The maximum permis- sible output currents are indicated in the table below. If the output voltages are different from standard values, the relevant output currents have to be adapted accordingly. With reduced maximum ambient temperature or with forced cooling, the total output power may exceed 50 W. Customized config- urations always need to be checked by a feasibility study first. Please ask the Company for more information. Table 5: Current allocation with special models Output voltage all types Vo1/2/3 nom [V] Output 1 all types Io1 max [A] Output 2 AM – LM2000 Io2 max [A] Output 2 AM – LM3000 Io2 max [A] Output 3 AM – LM3000 Io3 max [A] Temperature TA [°C] TC [°C] 5.1 8.0 4.0 3.4 2.0 4.0 2.0 1.7 1.0 1.8 (2.5 1) 1.5 1.2 0.7 1.5 1.2 1.0 0.5 – 40 to 71 – 25 to 95 2 5.1 10.0 5.0 4.0 2.5 4.5 2.5 2.0 1.3 2.1 (2.8 1) 1.7 1.5 0.9 1.8 1.5 1.3 0.7 – 25 to 60 – 25 to 90 5.1 11.0 6.0 4.6 3.0 5.0 3.0 2.3 1.5 2.4 (3.0 1) 2.0 1.7 1.0 2.0 1.7 1.5 0.8 – 25 to 50 – 25 to 85 1 Special high-current components required. 2 Vi min has to be increased.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 11 of 31 M Series © 2019 Bel Power Solutions & Protection Hold-up Time and Output Response When the input voltage is switched off, the output voltage will remain high for a certain hold-up time th (see fig. 7) before the output voltage falls below 0.95 Vo nom. To achieve the hold-up times indicated in fig. 8, AM, BM, CM, DM, and FM models require an exter- nal series diode in the input line. This is necessary to prevent the discharge of the input capacitor through the source impedance or other circuits connected to the same source. EM and LM models have a built-in series diode. In AM, BM, CM, DM, and FM models, no series diode is built-in, since it would generate additional power losses inside the converter. Note: For hold-up time with option V, refer to Option V. The behavior of the outputs is similar with either the input voltage applied or the inhibit switched low. No output voltage overshoot occurs, when the converter is turned on or off. 0 tr tf t Inhibit Vo/Vo nom 0.1 0.95 thVi 05025a 2 345 61 0.1 1000 Vi min DC th [ms] 100 LM EM CM/DM AM/BM/FM 05024a Fig. 7 Output response times versus Vi or inhibit control Fig. 8 Typical hold-up time th versus input voltage at Io nom Table 6: Output response time tr and tf (see fig. 7). Values not applicable for models equipped with option E. Type of converter tr at Po = 0 and tf at Po = Po nom tr and tf at Po = 3/4 Po nom tr and Po = Po nom Unit typ max typ max typ max AM – LM1001-9R AM – LM1301-9R AM – LM1501-9R AM – LM1601-9R AM – LM1901-9R 130 100 200 165 330 ms AM – LM2320-9 AM – LM2540-9 100 AM – LM3020-9 AM – LM3040-9 110 170 120 145 100 290 200 Conditions: R input not connected. For multiple-output models the figures indicated in the table relate to the output, which reacts slowest. All outputs are resistively loaded. Variation of the input voltage within Vi min – Vi max does not influence the values considerably.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 12 of 31 M Series © 2019 Bel Power Solutions & Protection Auxiliary Functions Inhibit The outputs of the converters may be enabled or disabled by means of a logic signal (TTL, CMOS, etc.) applied between the inhibit input i and the negative pin of output 1 (Vo1–). In systems with several converters, this feature can be used, for example, to control the activation sequence of the converters. If the inhibit function is not required, connect the inhibit pin 2 to pin 23 to enable the outputs (active low logic, fail safe). The response times are specified in table 6. Vi+ Vi– Vo– i Vo+ Iinh V inh 06031a 1.6 0.8 –0.8 –50 V inh [V] Iinh [mA] –30 0–10 10 30 50 2.0 1.2 0.4 –0.4 V inh = 0.8 V V o = on V o = off V inh = 2.4 V 06032a Fig. 9 Definition of Vinh and Iinh. Fig. 9 Definition of Vinh and Iinh. Table 7: Inhibit data Characteristics Conditions min typ max Unit Vinh Inhibit input voltage to keep output voltage Vo = on Vi min – Vi max TC min – TC max - 50 0.8 V Vo = off 2.4 50 Iinh Inhibit current Vinh = 0 - 60 - 100 - 220 µA R-Control for Output Voltage Adjustment As a standard feature, single-output models without option P offer an adjustable output voltage identified by letter R in the type designation. Note: With open R input, Vo = Vo nom. The output voltage Vo can either be adjusted by an external voltage (Vext) or by an external resistor (Rext1 or Rext2). The adjustment range is approximative 0 – 110% of Vo nom. For output voltages Vo > Vo nom, the minimum input voltage Vi min specified in Electrical Input Data increases proportionally to Vo/Vo nom. R Vo+ Vo– Vext 4 kΩVref = 2.5 V Control logic Rext1 Rext2 JM075 G L N Fig. 11 Output voltage adjustment

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 13 of 31 M Series © 2019 Bel Power Solutions & Protection a) Adjustment by means of an external resistor Rext. Depending upon the value of the required output voltage, the resistor shall be connected: either: Between the R and G pin to achieve an output voltage adjustment range of Vo ≈ 0 to 100 % of Vo nom. Vo or: Between the R pin and Vo+ to achieve an output voltage range of Vo ≈ 100 to 110% of Vo nom. ( Vo – 2.5 V)

2.5 V • (Vo/Vo nom – 1)

Caution: To prevent damage, Rext2 should never be less than 47 kΩ. Note: R inputs of n converters with paralleled outputs may be paralleled too, but if only one external resistor is used, its value should be Rext1/n or Rext2/ n respectively. b) Adjustment by means of an external control voltage Vext between G and R pin. The control voltage range is 0 to 2.75 V and allows for adjustment in the range of Vo ≈ 0 to 110% of Vo nom. Vo • 2.5 V Caution: The external control voltage should be in the range 0 to +3 V to prevent the converter from damage. Table 8a: Rext1 for Vo < Vo nom (Conditions: Vi nom, Io nom, rounded up to resistor values E 96, Rext2 is not fitted.) Vo nom = 5.1 V Vo nom = 12 V Vo nom = 15 V Vo nom = 24 V Vo nom = 48 V Vo [V] R ext2 [kΩ] Vo [V] R ext2 [kΩ] Vo [V] R ext2 [kΩ] Vo [V] R ext2 [kΩ] Vo [V] R ext2 [kΩ] 0.5 1.0 1.5 2.0 2.5 3.0 3.5 4.0 4.5 5.0 0.432 0.976 1.65 2.61 3.83 5.76 8.66 14.7 30.1 200 0.806 1.33 2.87 4.02 5.62 8.06 12.1 44.2 0.619 1.47 2.67 4.53 6.04 8.06 16.2 26.1 56.2 0.806 1.33 2.87 4.02 5.62 8.06 12.1 44.2 0.806 1.33 2.87 4.02 5.62 8.06 12.1 44.2 Table 8b: R2 for Vo > Vo nom (Conditions: Vi nom, Io nom, rounded up to resistor values E 96, Rext1 is not fitted.) Vo nom = 5.1 V Vo nom = 12 V Vo nom = 15 V Vo nom = 24 V Vo nom = 48 V Vo [V] R ext2 [kΩ] Vo [V] R ext2 [kΩ] Vo [V] R ext2 [kΩ] Vo [V] R ext2 [kΩ] Vo [V] R ext2 [kΩ] 5.15 5.20 5.25 5.30 5.35 5.40 5.45 5.50 464 215 147 110 90.9 78.7 68.1 61.9 12.1 12.2 12.3 12.4 12.5 12.6 12.7 12.8 13.0 13.2 1780 909 619 464 383 316 274 249 200 169 15.2 15.4 15.6 15.8 16.0 16.2 16.4 16.5 1470 750 511 383 332 274 237 226 24.25 24.50 24.75 25.00 25.25 25.50 25.75 26.00 26.25 26.40 3160 1620 1100 825 715 590 511 453 402 383 48.5 49.0 49.5 50.0 50.5 51.0 51.5 52.0 52.5 52.8 6810 3480 2370 1780 1470 1270 1100 953 845 806

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 14 of 31 M Series © 2019 Bel Power Solutions & Protection Display Status of LEDs Vo1 > 0.95 to 0.98 Vo1 adj Vi max Vi ovVi minVi uv Vi Vi abs OK i Vo1 > 0.95 to 0.98 Vo1 adj Io nom IoL Io OK Io L Vo1 < 0.95 to 0.98 Vo1 adj TC i TC max TPTC threshold Vi inh i Vinh threshold Io L no DELffo DEL LED Status undefined 06002a LEDs “ OK”, “i ” and “Io L” status versus input voltage Conditions: Io ≤ Io nom, TC ≤ TC max, Vinh ≤ 0.8 V Vi uv = undervoltage lock-out, Vi ov = overvoltage lock-out LEDs “OK” and “Io L” status versus output current Conditions: Vi min – Vi max, TC ≤ TC max, Vinh ≤ 0.8 V LED “i ” versus case temperature Conditions: Vi min – Vi max , Io ≤ Io nom, Vinh ≤ 0.8 V LED “i ” versus Vinh Conditions: Vi min – Vi max, Io ≤ Io nom, TC ≤ TC max Fig. 12 LED indicators

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 15 of 31 M Series © 2019 Bel Power Solutions & Protection Electromagnetic Compatibility (EMC) A suppressor diode or a metal oxide VDR (depending upon converter model) together with an input fuse and an input filter form an effective protection against high input transient voltages, which typically occur in most installations, but especially in battery-driven mobile applications. The M Series has been successfully tested to the following specifications: Electromagnetic Immunity Table 9: Immunity type tests Phenomenon Standard Level Coupling mode 1 Value applied Waveform Source imped. Test procedure In oper. Perf. crit.2 Supply related surge RIA 12 3 A 4 +i/–i 3.5 • VBatt 2/20/2 ms 0.2 Ω 1 positive surge yes A B 1.5 • VBatt 0.1/1/0.1 s Direct transients C +i/–i, –i/c

960 Vp 10/100 μs

5 Ω 5 pos. & 5 neg. impulses yes A D 3 1800 Vp 5/50 μs E 3600 Vp 0.5/5 μs 100 Ω F 4800 Vp 0.1/1 μs G 8400 Vp 0.05/0.1 μs Indirect couples transients H –o/c, +o/–o, –o/–i

1800 Vp 5/50 μs

J 3600 Vp 0.5/5 μs K 4800 Vp 0.1/1 μs L 8400 Vp 0.05/0.1 μs A 11 Electrostatic discharge (to case) IEC/EN 61000-4-2 4 5 contact discharge ±8000 Vp 1/50 ns 330 Ω 150 pF 10 pos. & 10 neg. discharges yes A air discharge ±15000 Vp Electromagnetic field IEC/EN 61000-4-3 x 6 antenna

20 V/m AM 80% / 1 kHz

80 – 1000 MHz yes A 11 Electromagnetic field, pulse modulated ENV 50204 4 7 10 V/m 50% duty cycle,

200 Hz repetition

900 ±5 MHz yes A Electrical fast transients / burst IEC/EN 61000-4-4 3 8 capacitive, o/c ±2000 Vp bursts of 5/50 ns; 2.5 / 5 kHz over 15 ms; burst period: 300 ms 50 Ω 60 s positive 60 s negative transients per coupling mode yes A 11 3 8 direct, i/c, +i/–i ±2000 Vp A 11 4 ±4000 Vp B Surges IEC/EN 61000-4-5 3 9 i/c 2000 Vp 1.2 / 50 µs 12 Ω 5 pos. & 5 neg. surges per coupling mode yes A +i/–i 1000 Vp 2 Ω Conducted disturbances IEC/EN 61000-4-6 3 10 i, o, signal wires 10 VAC (140 dBµV) AM 80% / 1 kHz 150 Ω 0.15 – 80 MHz yes A Power frequency magnetic field IEC/EN 61000-4-8 3 11 - 300 A/m 60 s in all 3 axes yes A 1 i = input, o = output, c = case 2 A = normal operation, no deviation from specs.; B = normal operation, temporary loss of function or deviation from specs possible 3 RIA 12 covers or exceeds IEC 60571-1 and EN 50155:1995. Surge D corresponds to EN 50155:2001, waveform A; surge G corres ponds to EN 50155:2001, waveform B. 4 Only met with EM (110 V battery) and extended input range models (customer-specific) of BM (24 V battery) and CM (48 V battery). Stand- ard DK models (72 V battery) are not damaged, but overvoltage lockout will occur during the surge. 5 Exceeds EN 50121-3-2:2015 table 6.3 and EN 50121-4:2006 table 1.4. 6 Corresponds to EN 50121-3-2:2015 table 6.1 and exceeds EN 50121-4:2006 table 1.1. Valid for version V104 or higher. 7 Compliance with digital mobile phones. 8 Corresponds to EN 50121-3-2:2015 table 5.2 and EN 50121-4:2006 table 2.2. 9 Covers or exceeds EN 50121-3-2:2015 table 4.3 and EN 50121-4:2006 table 2.3. 10 Corresponds to EN 50121-3-2:2015 table 5.1 and EN 50121-4:2006 table 3.1 (radio frequency common mode). 11 Perf. criterion B for triple-output models. 12 Corresponds to EN 50121-4:2006 table 1.3 for AC systems

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 16 of 31 M Series © 2019 Bel Power Solutions & Protection Electromagnetic Emissions PMM 8000 PLUS: Peak, conducted Vi+, QP + AV, 2011-08-02, 10:48 h CM1601-9ER, U i =60 V, U o=24 V I o= 2 A dBµV 0.2 0.5 1 2 5 10 20 MHz JM131 EN 55022 A (qp) EN 55022 A (av) PMM 8000 PLUS: Peak, conducted Vi+, QP + AV, 2011-08-02, 10:48 h CM1601-9ER, U i =60 V, U o=24 V I o= 2 A dBµV 0.2 0.5 1 2 5 10 20 MHz JM132 EN 55022 A (qp) EN 55022 A (av) Fig. 13a Typ. conducted disturbances at the input (quasi-peak and average) of CM1601-9ER according to IEC/EN 55011/22, measured at Vi = 60 VDC and Io nom. Fig. 13b Typ. conducted disturbances at the input (quasi-peak and average) of LM1601-9R according to IEC/EN 55011/22, measured at Vi = 230 VAC and Io nom. 30 50 100 200 500 1000 MHz dBµV/m TÜV-Divina, ESVS 30:R&S, BBA 9106/UHALP 9107:Schwarzb., QP, 2011-08-03 Testdistance 10 m, CM1601-9ER, U i = 60 VDC, U o=24 V I o= 2 A JM130 EN 55011 A <25 dbµV/m 30 50 100 200 500 1000 MHz dBµV/m TÜV-Divina, ESVS 30:R&S, BBA 9106/UHALP 9107:Schwarzb., QP, 2011-08-02 Testdistance 10 m, LM1601-9R, U i =230 VAC, U o=24 V I o= 2 A JM129 EN 55011 A <25 dbµV/m Fig. 14a Typical radiated emissions of CM1601-9ER according to IEC/EN 55011/22, normalized to a distance of 10 m, meas- ured at Vi = 60 VDC and Io nom. Fig. 14b Typical radiated emissions of LM1601-9R according to IEC/ EN 55011/22, normalized to a distance of 10 m, measured at Vi = 230 VAC and Io nom.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 17 of 31 M Series © 2019 Bel Power Solutions & Protection Immunity to Environmental Conditions Table 10: Mechanical and climatic stress Test method Standard Test Conditions Status Db Damp heat test, cyclic EN 50155:2007, clause 12.2.5 IEC/EN 60068-2-30 Temperature: 55 °C and 25 °C Converter not operatingCycles (respiration effect): 2 Duration: 2x 24 h Bd Dry heat test, steady state EN 50155:2007, clause 12.2.4 IEC/EN 60068-2-2 Temperature: 70 °C Converter operatingDuration: 6 h Ad Cooling test, steady state EN 50155:2007, clause 12.2.3 IEC/EN 60068-2-1 Temperature, duration: - 40 °C, 2 h Converter not operatingPerformance test: +25 °C Kb Salt mist, cyclic sodium chloride (NaCl) solution IEC/EN 60068-2-52 Concentration: 5% (30 °C) Converter not operating Duration: 2 h per cycle Storage: 40 °C, 93% rel. humidity Storage duration: 22 h per cycle, 3 cycles Fc Vibration (sinusoidal) IEC/EN 60068-2-6 MIL-STD-810D section 514.3 Acceleration amplitude: 0.35 mm (10 – 60 Hz) 5 gn = 49 m/s2 (60 - 2000 Hz) Converter operating Frequency (1 Oct/min): 10 – 2000 Hz Test duration: 7.5 h (2.5 h in each axis) Fda Random vibration wide band Reproducibility high IEC 60068-2-35 DIN 40046 part 23 Acceleration spectral density: 0.05 gn 2/Hz Converter operating Frequency band: 20 – 500 Hz Acceleration magnitude: 4.9 gn rms Test duration: 3 h (1 h in each axis) Eb Bump (half-sinusoidal) IEC/EN 60068-2-29 MIL-STD-810D section 516.3 Acceleration amplitude: 40 gn = 392 m/s2 Converter operatingBump duration: 6 ms Number of bumps: 6000 (1000 in each direction) Ea Shock (half-sinusoidal) IEC/EN 60068-2-27 MIL-STD-810D section 516.3 Acceleration amplitude: 100 gn = 981 m/s2 Converter operating Bump duration: 6 ms Number of bumps: 18 (3 in each direction) - Shock EN 50155:2007 clause 12.2.11, EN 61373 sect. 10, class B, body mounted 1 Acceleration amplitude: 5.1 gn Converter operatingBump duration: 30 ms Number of bumps: 18 (3 in each direction) - Simulated long life testing at increased random vibration levels EN 50155:2007 clause 12.2.11, EN 61373 sect. 8 and 9, class B, body mounted 1 Acceleration spectral density: 0.02 gn 2/Hz Converter operating Frequency band: 5 – 150 Hz Acceleration magnitude: 0.8 gn rms Test duration: 15 h (5 h in each axis)

1 Body mounted = chassis of a railway coach

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 18 of 31 M Series © 2019 Bel Power Solutions & Protection Temperatures Table 11: Temperature specifications, valid for an air pressure of 800 – 1200 hPa (800 – 1200 mbar) Model -7 (option) -9 (standard) Unit Characteristics Conditions min max min max TA Ambient temperature Converter operating - 25 71 - 40 71 °CTC Case temperature - 25 95 - 40 95 TS Storage temperature Not operating - 40 85 - 55 85 Reliability Table 12: MTBF Ratings at specified Converter model Ground be- nign Ground fixed Ground mobile Device hours 2 Unit case temperature 40 °C 40 °C 70 °C 50 °C MTBF 1 AM – LM1000 AM – LM2000 AM – LM3000 320 000 225 000 225 000 130 000 105 000 80 000 40 000 32 000 28 000 35 000 28 000 25 000 880 000 720 000 740 000 h

1 Calculated in accordance with MIL-HDBK-217E

2 Statistical values, based on an average of 4300 working hours per year in general field use over 3 years

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 19 of 31 M Series © 2019 Bel Power Solutions & Protection Mechanical Data Dimensions in mm. European Projection 111.2 ±0.8 (3 U) 88(11.6) 168.5 127 173.7 ±0.5 100 ±0.6 1.6 6TE Male connector H11 according to DIN 41612 38.7 95 ±0.5 Measuring point for case temperatureTC M 3; depth = 4 mm (chassis mount) 159.4 Mounting plane of connector H11 5.08 10.16 15.24 20.32 25.40 30.48 2TE 7.09 17.25 28.6 34 15 Mounting holes for connector retention clips 12.17 103 3.27 20.5 12.1 94.5 ±0.1 31.5 ±0.1 ø 3.5 ø 4.0 IoL (LED red) Test sockets (option A) Potentiometer(s) (option P) Inhibit i (LED red) OK (LED green) Potentiometer (option D or V) Front plate Main face Rear face Back plate 22.30 09012c Caution! Gets hot! OK i 1 2 3 IoL Fig. 15 Case M02, weight 770 g (approx.). Case aluminum, black finish and self cooling. Note: Long case, elongated by 60 mm for 220 mm rack depth, is available on request.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 20 of 31 M Series © 2019 Bel Power Solutions & Protection Safety and Installation Instructions Connector Pin Allocation Pin no. 26 (protective earth) is a leading pin, ensuring that it makes contact with the female connector first. Table 13: Pin allocation Electrical determination AM - LM1000 AM - LM2000 AM - LM3000 Pin Ident Pin Ident Pin Ident Inhibit Safe data or ACFAIL 5 5 i D or V 5 5 i D or V 5 5 i D or V Output voltage (positive) Output voltage (negative) Vo+ Vo- n.c. n.c. Vo3+ Vo3- Voltage adjust Adjust return R 1 G 1 Output voltage (positive) Output voltage (negative) Vo2+ Vo2- Vo2+ Vo2- Output voltage (positive) Output voltage (negative) Vo+ Vo- Vo1+ Vo1- Vo1+ Vo1- Protective earth PE 2 26 26 26 DC input voltage 3 DC input voltage Vi+ Vi- Vi+ Vi- Vi+ Vi- AC input voltage 4 AC input voltage 32 29 26 23 20 17 14 11 8 5 2 10015aCaution! Gets hot! Fig. 16 View of male H11 connector.

1 Not connected if option P is fitted

2 Leading pin

3 AM, BM, CM, DM, EM, and FM models

4 LM models

5 Not connected if option neither option D or V is fitted

All M Series converters are components, intended exclusively for inclusion within other equipment by professional installers. Installation must strictly follow the national safety regulations in compliance with the enclosure, mounting, creepage, clearance, casualty, markings and segregation requirements of the end-use application. Connection to the system shall be made via the female connector H11 . Other installation methods may not meet the safety requirements. The converters are provided with the leading pin 26 ( ), which is reliably connected with the case. For safety reasons, it is essential to connect pin 26 with the protective earth of the supply system. An input fuse is connected in the line to pin 32 (Vi– or L ~). Since this fuse is designed to protect the converter in case of an overcurrent and does not necessarily cover all customer needs, an external fuse suitable for the application and in compliance with the local requirements may be necessary in the wiring to one or both input pins (no. 29 and/or no. 32), particularly if the phase or neutral line cannot be assigned to the corresponding terminals (LM models operated with AC). Important: Whenever the inhibit function is not in use, pin 2 (i) should be connected to pin 23 (Vo–) to enable the output(s). Caution: Do not open the converters, or warranty will be invalidated. Make sure that there is sufficient air flow possible for convection cooling. This should be verified by measuring the case temperature TC, when the converter is installed and operated in the end-use application. The maximum specified case temperature TC max shall not be exceeded. See also Thermal Considerations. Operation of LM Models at Greater than 63 Hz In such a case, the converters may exceed the leakage current of 3.5 mA imposed in the safety standards. A warning marking is required in the end-use product.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 21 of 31 M Series © 2019 Bel Power Solutions & Protection Protection Degree and Cleaning Liquids Condition: Female connector fitted to the converter. IP 40: All models, except those with options P or A, and except those with option D/V with potentiometer. IP 30: All models fitted with options A or option D/V without potentiometer. IP 20: All models fitted with option P or with option D/V with potentiometer. In order to avoid possible damage, any penetration of liquids (e.g., cleaning fluids) has to be avoided. Railway Applications The M Series converters have been designed observing the railway standards EN 50155 and EN 50121. All boards are coated with a protection lacquer. Standards and Approvals The converters correspond to class I equipment and have been approved according to the standards IEC/EN 60950-1 and UL/ CSA 60950-1 2nd Ed. The converters have been evaluated for:

  • Class I equipment
  • Building in
  • Basic insulation between input and case and double or reinforced insulation between input and output, based on the input voltage of 250 VAC or 400 VDC
  • Functional insulation between output(s) and case
  • Functional insulation between the outputs
  • Pollution degree 2 environment
  • Overvoltage category II
  • Altitude up to 2000 m The converters are subject to manufacturing surveillance in accordance with the above mentioned standards and with ISO 9001:2015. Isolation The electric strength test is performed in the factory as routine test in accordance with EN 50514 and IEC/EN 60950. The company will not honor any warranty claims resulting from incorrectly executed electric strength field tests. Table 14: Isolation Characteristics Input to Case + Output(s) Output(s) to Case (standard) Output(s) to Case (option H) Output to Output Unit Electric strength test Factory test >1 s 2.8 1 1.4 2.8 0.3 kVDC AC test voltage equivalent to factory test 2.0 1 1.0 2.0 0.2 kVAC Insulation resistance at 500 VDC >300 >300 >300 >100 2 MΩ Creepage distances ≥ 3.2 3 --- --- --- mm 1 According to IEC/EN 60950, sub-assemblies connecting input to output are pre-tested with 5.6 kVDC or 4 kVAC.

2 Tested at 300 VDC

3 Input to outputs: ≥6. 4 mm

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 22 of 31 M Series © 2019 Bel Power Solutions & Protection Safety of Operator-Accessible Output Circuits If the output circuit of a DC-DC converter is operator-accessible, it shall be an SELV circuit according to the IEC/EN 60950 safety standards. Since the M Series converters provide double or reinforced insulation between input and output based upon a rated primary input voltage of 250 VAC or 400 VDC, only functional insulation is needed between the AC mains and the input of the converter. Only voltage adaption and rectification to the specified input voltage range of a DC/DC converter is needed. Table 15 shows a possible installation configuration, com pliance with which causes the output circuit of the DC-DC converter to be an SELV circuit according to IEC/EN 60950 up to a configured output voltage (sum of nominal voltages if in series or +/– con- figuration) of 48 V. However, it is the sole responsibility of the installer to assure the compliance with the relevant and applicable safety regulations. AC-DC front end DC-DC con- verter Mains Battery SELV Earth connection 10018a Max. 250 VAC or

400 VDC

Max. 250 VAC or Fig. 17 Schematic safety concept Table 15: Safety concept leading to an SELV output circuit Conditions Front end DC-DC converter Result Nominal supply voltage Minimum required grade of insulation, to be provided by the AC-DC front end, including mains supplied battery charger Maximum rated DC output voltage from the front end Minimum required safety status of the front end output circuit Equip- ment Measures to achieve the specified safety status of the output circuit Safety status of the DC-DC converter output circuit Mains 250 VAC Operational (i.e. there is no need for electrical isolation between the mains supply voltage and the DC-DC converter input voltage)

400 VDC 1

(The rated voltage between any input pin and earth can be up to 250 VAC or 400 VDC) Primary circuit A-LM Double or reinforced insulation, based on 250 VAC and 400 VDC (provided by the DC-DC converter) and earthed case 2 SELV circuit 1 The front end output voltage should match the specified operating input voltage range of the DC-DC converter. 2 The earth connection has to be provided by the installer according to the safety standard IEC/EN 60950.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 23 of 31 M Series © 2019 Bel Power Solutions & Protection Description of Options Table 16: Survey of options Option Function of option Characteristics - 7 Former standard operational ambient temperature range TA = – 25 to 71 °C A Test sockets at front panel for check of output voltage Vo internally measured at the connector terminals E Electronic inrush current limitation circuitry Active inrush current limitation, only for CM, EM, LM models P 1 Potentiometer for fine adjustment of output voltage Adjustment range ±5% of Vo nom, excludes R input F Input fuse built-in Fuse not externally accessible, only for FM1000 H Enhanced output to case electric strength test voltage See table Isolation D 2 Input and/or output undervoltage monitoring circuitry Safe data signal output (D0 – D9) V 2 3 Input and/or output undervoltage monitoring circuitry ACFAIL signal according to VME specifications (V0, V2, V3) K Coding strip at the connector Ensuring correct population of DIN-racks G RoHS RoHS-compatible for all six substances 1 Models equipped with option P do not provide the R function; pins 14 and 17 are not connected. 2 Option D excludes option V and vice versa. 3 Only available if main output voltage Vo1 = 5.1 V -7 Former Standard Temperature Range Option -7 stays for the operational ambient temperature range from –25 to 71 °C, which may be preferred by some customers for reasons of documentation or approvals. A Test Sockets Test sockets (pin Ø = 2 mm, distance d = 5.08 mm) are located at the front of the converter. The output voltage is sensed at the connector pins inside of the converter. Outputs 2 and 3 of triple-output models are not sensed. P Potentiometer Built-in multi-turn potentiometers provide an output voltage adjustment range of minimum ± 5% of Vo nom and are accessible through holes in the front cover. Compensation of voltage drop across connector and wiring becomes easily achievable. For output volt - ages Vo > Vo nom, the minimum input voltage according to Electrical Input Data increases proportionally to Vo/Vo nom. Triple-output models allow only the adjustment of Vo1. Note: Potentiometers are not recommended for mobile applications. E Electronic Inrush Current Limitation Available for CM, EM and LM models. The standard version of the models CM, DM, EM and LM include a passive inrush current limitation with an NTC resistor. For applications requiring an improved inrush current limitation, an active electronic circuit as shown in fig.18 has been developed. Typical inrush current waveforms of units equipped with this option are shown below. CM models meet the CEPT/ETSI standards for 48 V supply voltage according to ETS 300132-2, if fitted with option E combined with option D6 (input voltage monitoring). Option D6, externally adjustable via poten tiometer, is necessary to disable the converter at input voltages below the actual service ranges, avoiding an excessive input current when the input voltage is raised slowly ac- cording to ETS 300132-2. Option D6 threshold level Vt i + Vh i (refer to description of option D) should be adjusted to 36 – 40.5 V for 48 V nominal supply voltage (for 60 V systems, threshold should be set to 44 – 50 V). The D output (pin 5) should be connected to the inhibit (pin 2). For applications, where potentiometers are not allowed, refer to option D9. Table 18: Inrush current characteristics with option E Characteristics CM at Vi = 110 VDC EM, LM at Vi = 110 VDC EM, LM at Vi = 372 VDC Unit typ max typ max typ max Iinr p Peak inrush current 6.5 8 2.2 4 7.3 10 A tinr Inrush current duration 22 30 10 20 20 40 ms

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 24 of 31 M Series © 2019 Bel Power Solutions & Protection Input filter Control logic Converter FET CiRIRS Rectifier (LM models) 11018a 0 10 20 30 40 t [ms] Ii [A] tinr Normal operation: FET fully conducting Ii = Po/(Vi • η ) 11019a tinr CM at 110 VDC EM, LM at 372 VDC EM, LM at 110 VDC Fig. 18 Option E block diagram Fig. 19 Typical inrush current waveforms of CM, EM, and LM converters with option E Precautions: In order to avoid overload of the series resistor RI, the on/off switching cycle should be limited to 12 s, if switched on/off continu - ously. There should not be more than 10 start-up cycles within 20 s at a case temperature of 25 °C. If CM models are driven by input voltages below 35 VDC or LM models below 100 VAC, the maximum case temperature should be derated by 10 °C, or the total output power should be derated by 20%. EM and LM models driven by DC input voltages do not need to be derated within the full specified input voltage range. F Fuse Not Accessible Standard M converters have a fuseholder containing a 5 × 20 mm fuse, which is externally accessible and located in the back plate near to the connector. Some applications require an inaccessible fuse. Option F provides a fuse mounted directly onto the main PCB inside the case (only FM1000). The full self-protecting functions of the converter do normally not lead to a broken fuse, except as a result of inverse polarity at the input of an AM, BM, CM, DM, or FM models, or if a power component inside fails. In such cases the defective converter must be returned to the Company for repair. H Enhanced Electric Strenght Test Electric strength test output to case; see table Isolation. D Undervoltage Monitor The input and/or output undervoltage monitor operates independently of the built-in input undervoltage lock-out circuit. A logic “low” (JFET output) or “high” signal (NPN output) is generated at pin 5, when one of the monitored voltages drops below the preselected threshold level Vt. The return for this signal is Vo1– (pin 23). The D output recovers, when the monitored voltage(s) exceed(s) Vt + Vh. The threshold level Vt is either adjustable by a potentio meter accessible through a hole in the front cover, or adjusted in the factory to a fixed value specified by the customer. Option D exists in various versions D0 – D9, as shown in the Table 19. JFET output (D0 – D4): Connector pin D is internally connected via the drain-source path of a JFET (self-conducting type) to the negative potential of out- put 1. VD ≤ 0.4 V (logic low) corresponds to a monitored voltage level (Vi and/or Vo1) < Vt. The current ID through the JFET should NPN output (D5 – D9): Connector pin D is internally connected via the collector-emitter path of a NPN transistor to the negative potential of output 1. VD ≤ 0.4 V (logic low) corresponds to a monitored voltage level (Vi and/or Vo1) > Vt + Vh. The current ID through the open collector should not exceed 20 mA. The NPN output is not protected against external overvoltages. VD should not exceed 40 V.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 25 of 31 M Series © 2019 Bel Power Solutions & Protection Table 19: Undervoltage monitor functions Output type Monitoring Minimum adjustment range of threshold level Vt Typ. hysteresis Vh [% of Vt ] for Vt min – Vt max JFET NPN Vi Vo1 Vti Vto Vhi Vho D1 D5 no yes --- 3.5 V – 48 V 1 --- 2.3 – 1 V D2 D6 yes no Vi min – Vi max 1 --- 3.0 – 0.5 V --- D3 D7 yes yes Vi min – Vi max 1 0.95 – 0.98 Vo1 2 3.0 – 0.5 V “0” D4 D8 no yes --- 0.95 – 0.98 Vo1 2 --- “0” D0 D9 no yes --- 3.5 V – 48 V 3 --- 1.8 – 1 V yes no Vi min – Vi max 3, 4 --- 2.2 – 0.4 V --- yes yes Vi min – Vi max 3, 4 0.95 – 0.98 Vo1 2 2.2 – 0.4 V “0”

1 Threshold level adjustable by potentiometer (not recommended for mobile applications)

2 Fixed value between 95% and 98% of Vo1 (tracking)

3 Fixed value, resistor-adjusted according to customer’s specification ±2% at 25 °C; individual type number is determined by the company.

4 Adjusted at Io nom

Table 20: JFET output (D0 – D4) Table 21: NPN output (D5 – DD) Vi, Vo1 status D output, VD Vi or Vo1 < Vt low, L, VD ≤ 0.4 V at ID = 2.5 mA Vi and Vo1 > Vt + Vh high, H, ID ≤ 25 µA at VD = 5.25 V Vi, Vo1 status D output, VD Vi or Vo1 < Vt high, H, ID ≤ 25 µA at VD = 40 V Vi and Vo1 > Vt + Vh low, L, VD ≤ 0.4 V at ID = 20 mA Vo1+ Vo1– D VD ID Rp Input 11006 Vo1+ Vo1– D VD ID Rp Input 11007a Fig. 20 Options D0 – D4, JFET output Fig. 21 Options D5 – D9, NPN output Threshold tolerances and hysteresis: If Vi is monitored, the internal input voltage after the input filter and rectifier (EM and LM types) is measured. Consequently, this voltage differs from the voltage at the connector pins by the voltage drop ∆Vti across input filter and rectifier. The threshold level of the D0 and D9 options is adjusted in the factory at nominal output current Io nom and TA = 25 °C. The value of ∆Vti depends upon input voltage range (AM, BM, etc.), threshold level Vt, temperature, and input current. ∆Vti Vhi VD low VD VD high Vi Po = Po nom Po = 0 Po = 0 Vti Po = Po nom 11021a Fig. 22 Definition of Vti, ∆Vti, and Vhi (JFET output)

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 26 of 31 M Series © 2019 Bel Power Solutions & Protection 1 See Electrical Output Data for hold-up time.

2 With output voltage monitoring the hold-up time th = 0

3 The D signal remains high, if the D output is

connected to an external source. 4 tlow min = 40 – 200 ms, typically 80 ms 0.95 Vi [V DC] t t t tlow min 4 tlow min 4 thigh min th Vti + Vhi Vti Input voltage failure Switch-on cycle Input voltage sag Switch-on cycle and subsequent input voltage failure VD high VD low VD JFET NPN t Vo1 Vo1 nom VD high VD low VD tlow min 4th VD high VD low VD JFET NPN Vo1 VD high VD low VD tlow min Vto Output voltage failure ID high ID low ID t ID high ID low ID t t t t 3 3 33 Vo1 nom Vto +Vho Input voltage monitoring Output voltage monitoring 11008a Fig. 23 Relationship between Vi, Vo, VD, Vo/Vo nom versus time

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 27 of 31 M Series © 2019 Bel Power Solutions & Protection V ACFAIL signal (VME) Available for converters with Vo1 = 5.1 V. This option defines an undervoltage monitoring circuit for the input or the input and main output voltage equivalent to option D and generates the ACFAIL signal (V signal), which conforms to the VME standard. The low state level of the ACFAIL signal is specified at a sink current of IV = 48 mA to VV ≤ 0.6 V (open-collector output). The pull-up resistor feeding the open-collector output should be placed on the VME backplane. After the ACFAIL signal has gone low, the VME standard requires a hold-up time th of at least 4 ms before the 5.1 V output drops to 4.875 V, when the 5.1 V output is fully loaded. This hold-up time t h is provided by the internal input capacitance. Consequently the working input voltage and the threshold level Vti should be adequately above the minimum input voltage Vi min of the converter, so that enough energy is remaining in the input capacitance. If the input voltage is below the required level, an external hold-up capacitor (Ci ext) should be added. Formula for threshold level for desired value of th: 2 • Po • (th + 0.3 ms) • 100 Ci min • η Formula for additional external input capacitor 2 • Po • (th + 0.3 ms) • 100 η • (Vti 2 – Vi min 2 ) where as: Ci min = internal input capacitance [mF], according to table below Ci ext = external input capacitance [mF] Po = output power [W] η = efficiency [%] t h = hold-up time [ms] Vi min = minimum input voltage [V] 1 Vti = threshold level [V] Notes: The threshold level Vti of option V2 and V3 is adjusted in the factory to a value according to the table below. A decoup ling diode should be connected in series with the input of AM, BM, CM, DM, and FM converters to avoid the input capacitance discharging through other loads connected to the same source voltage. If LM models are powered by AC, an external input capacitor cannot be applied unless an additional rectifier is provided. Table 20: Available internal input capacitance and factory potentiometer setting of Ut i with resulting hold-up time Types AM BM CM DM EM FM LM Unit Vt i 9.5 19.5 39 61 104 39 120 VDC Option V operates independently of the built-in input under voltage lockout circuit. A logic “low” signal is generated at pin 5 as soon as one of the monitored voltages drops below the pre selected threshold level Vt. The return for this signal is Vo1– (pin 23). The V output recovers, when the monitored voltage exceeds Vt + Vh. The threshold level Vt is either adjustable by a potentio meter, accessible through a hole in the front cover, or adjusted in the factory to a determined customer-specific value. Versions V0, V2 and V3 are available as shown below. Table 21: Undervoltage monitor functions V output (VME compatible) Monitoring Minimum adjustment range of threshold level Vt Typical hysteresis Uh [% of Vt ] for Vt min – Vt max Vi Vo1 Vti Vto Vhi Vho V2 yes no Vi min – Vi max 1 --- 3.0 – 0.5 V --- V3 yes yes Vi min – Vi max 1 0.95 – 0.98 Vo1 2 3.0 – 0.5 V “0” V0 yes no Vi min – Vi max 3, 4 --- 2.2 – 0.4 V --- yes yes Vi min – Vi max 3, 4 0.95 – 0.98 Vo1 2 2.2 – 0.4 V “0” 1 Threshold level adjustable by potentiometer (not recommended for mobile applications). 2 Fixed value between 95% and 98% of Vo1 (tracking), output undervoltage monitoring is not a requirement of VME standard. 3 Adjusted at Io nom. 4 Fixed value, resistor-adjusted (±2%) acc. to customer’s specifications; individual type designation is determined by the company.

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 28 of 31 M Series © 2019 Bel Power Solutions & Protection V output (V0, V2, V3): Connector pin V is internally connected to the open collector of a NPN transistor. The emitter is connected to the negative potential of output 1. VV 0.6 V (logic low) corresponds to a monitored voltage level ( Vi and/or Vo1) < Ut. The current IV through the open collector should not exceed 50 mA. The NPN output is not protected against external overvoltages. VV should not exceed 80 V. Vi, Vo1 status V output, Vv Vi or Vo1 < Vt low, L, VV ≤ 0.6 V at IV = 50 mA Vi and Vo1 > Vt + Vh high, H, IV ≤ 25 µA at VV = 5.1 V Vo1+ Vo1– V VV IV Rp Input Fig. 24 Output configuration of options V0, V2, V3 Threshold tolerances and hysteresis Vi is monitored after the input filter and rectifier (EM and LM models). Consequently, this voltage differs from the voltage at the connector pins by the voltage drop ∆Vt i across input filter and rectifier. The threshold level of option V0 is factory-adjusted at Io ∆Vti Vhi VV low VV VV high Vi Po = Po nom Po = 0 Po = 0 Vti Po = Po nom Fig. 25 Definition of Vti, ∆Vti and Vhi

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 29 of 31 M Series © 2019 Bel Power Solutions & Protection 5.1 V 4.875 V Vi [VDC] t t Vti + Vhi Vi Input voltage failure Switch-on cycle Input voltage sag Switch-on cycle and subsequent input voltage failure UV high VV low VV t Vo1 VV high VV low VV Vi Vti Output voltage failure VV high VV low VV Vti + Vhi tlow min 2 tlow min 2tlow min 2 3 3 VV high VV low VV t tlow min 2tlow min 2 3 3 th 1 2.0 V th 1 tlow min 2 5.1 V 4.875 V Vo1 2.0 V Input voltage monitoring Output voltage monitoring 11010a t t t t

1 VME request: minimum 4 ms

2 tlow min = 40 – 200 ms, typically 80 ms 3 VV level not defined at Vo1 < 2.0 V

4 The V signal drops simultaneously with the output voltage,

if the pull-up resistor RP is connected to Vo1+. The V signal remains high, if RP is connected to an external source. Fig. 26 Relationship between Vi, Vo1, VV, IV, and Vo1/Vo nom versus time. K Coding Strip A plastic part across the connector ensures correct population of the DIN-rack. G RoHS RoHS-compatible for all six substances.For the dimensions of the cooling plates, see Mechanical Data. Option B2 is for custom- er-specific models with elongated case (for 220 mm DIN-rack depth).

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 30 of 31 M Series © 2019 Bel Power Solutions & Protection Accessories A great variety of electrical and mechanical accessories are available including: – Various mating H11 connectors including solder, fast-on, or press-fit terminals – Pair of connector retention clips HZZ01209-G – Code key system: 5 coding wedges HZZ00202-G – Various front panels for 19” rack mounting – Flexible H11 PCB board HZZ01208-G for connecting with a mother board – Universal mounting bracket UMB-LHMQ (HZZ00610-G) for chassis or DIN-rail mounting in upright position. – DIN-rail mounting brackets DMB-MHQ (HZZ00619-G) – Mounting plate M (HZZ01208) for chassis or a wall mounting, where only frontal access is given – Battery sensor [S-KSMH...] for using the converter as battery charger (different cell characteristics). For additional accessory product information, see the accessory data sheets listed with each product series or individual model at our web site. 3.81 7.62 83.82 5.08 21.3 24,5 12034 Fig. 28 Flexible H11 PCB (HZZ01208-G) Fig. 27 Different front panels Fig.29 A pair of connector retention clips (HZZ01209-G) Fig. 30 Mounting plate M (HZZ01210), connector with fast-on terminals (HZZ00101-G), secured with retention clips (HZZ01209-G) Fig. 31 Universal mounting bracket for DIN-rail mounting (HZZ00610-G)

tech.support@psbel.com belfuse.com/power-solutions BCD20018-G Rev AF , 19-Nov-2019 Page 31 of 31 M Series © 2019 Bel Power Solutions & Protection 56 (2.2")L L = 2 m (standard length) other cable lengths on request adhesive tape 26 (1.02") 9.8 (0.4") 09125a European Projection Fig. 32 DIN-rail mounting brackets DMB-MHQ (HZZ00619-G) Fig.33 Battery temperature sensor S-KSMH NUCLEAR AND MEDICAL APPLICATIONS - These products are not designed or intended for use as critical components in life support systems, equipment used in hazardous environments, or nuclear control systems. TECHNICAL REVISIONS - The appearance of products, including safety agency certifications pictured on labels, may change depending on the date manufactured. Specifications are subject to change without notice.