PES2200-12-080XA BEL | Alldatasheet

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Technical content

The PES2200 -12-080xA is a 22 00 Watt AC to DC, power -factor- corrected (PFC) power supply that converts standard AC power into a main output of +12 VDC for powering intermediate bus architectures (IBA) in high performance and reliability servers, routers, and network switches. The PE S2200-12-080xA utilizes full digital control architecture for greater efficiency, control, and functionality. This power supply meets international safety standards and displays the CE-Mark for the European Low Voltage Directive (LVD).

  • High Efficiency, meet 80 plus “Platinum” efficiency requirement
  • Auto-selected input voltage ranges: 90-140 VAC, 180-264 VAC
  • AC input with active power factor correction
  • 2200 W continuous output power capability
  • Always-on 12 VSB / 3.5 A standby output
  • Hot-plug capable
  • Parallel operation with active current sharing
  • Full digital controls for improved performance
  • High power density design: 59 W/in3
  • Small form factor: 80 x 40 x 195 mm (3.15 x 1.57 x 7.68 in)
  • Power Management Bus communication interface for control, programming and monitoring
  • Status LED with fault signaling
  • Networking Switches
  • Servers & Routers
  • Telecommunications

2 PES2200-12-080xA

3 Contact factory for availability of Specific code

management controllers. It is protected with an active OR-ing device for maximum reliability. I2C bus. The I2C bus allows full monitoring of the supply, including input and output voltage, current, power, and inside temperatures. power demand and supply temperature and can be overridden through the I2C bus. Figure 1. PES2200-12-080xA Block Diagram cause permanent damage to the supply.

+86 755 298 85888 Europe, Middle East +353 61 225 977 North America +1 408 785 5200 © 2021 Bel Power Solutions BCD.01005_A General Condition: TA = 0… 50 °C, unless otherwise noted. PARAMETER DESCRIPTION / CONDITION MIN NOM MAX UNIT Vi nom AC Nominal Input Voltage Rated Voltage High Line (Vi nom HL) 200 230 240 VAC Rated Voltage Low Line (Vi nom LL) 100 115 127 VAC Vi nom DC DC Nominal Input Voltage Rated HVDC 240 VDC Vi DC DC Input Voltage range Normal operating (Vi min to Vi max ) 180 300 VDC Vi Input Voltage Ranges Normal operating (Vi min HL to Vi max HL), High Line 180 264 VAC Normal operating (Vi min LL to Vi max LL), Low Line 90 140 VAC Ii max Maximum Input Current VIN = 90 VAC, I1 = 96 A, ISB = 3.5 A 15 ARMS VIN = 180 VAC, I1 = 183 A, ISB = 3.5 A 14 ARMS Ii inrush Inrush Current Limitation Vi min to Vi max, TNTC = 25°C, 5 ms 50 Ap fi Input Frequency 47 50/60 63 Hz PF Power Factor Vi = 230 VAC, 50 Hz and 60 Hz, Vi = 115 VAC,60 Hz 10% Load 0.8 W/VA 20% Load 0.9 W/VA 50% Load 0.9 W/VA 100% Load 0.95 W/VA Vi on Turn-on Input Voltage1 Ramping up 85 90 VAC Vi off Turn-off Input Voltage1 Ramping down 80 85 VAC η Efficiency2 VIN = 230 VAC, 10% load 82 % VIN = 230 VAC, 20% load 90 94 % VIN = 230 VAC, 50% load 94 95 % VIN = 230 VAC, 100% load 91 93 % TV1 holdup Hold-up Time V1 VIN = 230 VAC, I1 = 183 A, ISB = 3.5 A 11 ms VIN = 115 VAC, I1 = 96 A, ISB = 3.5 A 11 ms TVSB holdup Hold-up Time VSB 12 VSB, full load 70 ms 1 The Front-End is provided with a typical hysteresis of 5 VAC during turn-on and turn-off within the ranges. PSU will restart once input voltage within the Vi on. 2 Efficiency measured without fan power per EPA server guidelines.

4.1 INPUT FUSE

Time-lag 20 A input fuse (5.4 x 22.5 mm) in series with the L -line inside the power supply protects against severe defects. The fuse is not accessible from the outside and is therefore not a serviceable part.

4.2 INRUSH CURRENT

The AC-DC power supply exhibits an X capacitance of only 5.9 µF, resulting in a low and short peak current, when the supply is connected to the mains. The internal bulk capacitor will be charged through a PTC which will limit the inrush current. NOTE: Do not repeat plug-in / out operations within a short time, or else the internal in -rush current limiting device (NTC) may not sufficiently cool down.

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4.3 INPUT UNDER-VOLTAGE

input voltage returns within the normal operating range, the supply will return to normal operation again.

4.4 POWER FACTOR CORRECTION

show a trapezoidal waveform.

4.5 EFFICIENCY

temperature regardless of the ambient temperature and load conditions. Figure 2. Efficiency vs. Load (ratio metric loading) Figure 3. Power factor vs. Load Figure 4. Inrush current, Vin = 230Vac, 90°

100 VAC /50 Hz in Amps

Table 1. Harmonic Limits for Class A Equipment

  • Comment: for 95% sag condition, the load is 80%.

Table 2. AC Line Transient Performance

4.6 INPUT LINE CURRENT HARMONIC

in Appliances and General Use Equipment Class A for harmonic line current content at full rated power.

4.7 AC LINE TRANSIENT SPECIFICATION

be defined to refer to conditions when the AC line voltage rises above nominal voltage. The power supply shall meet the requirements under the following AC line sag and surge conditions.

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tech.support@psbel.com General condition: TA = 0…50 °C, Vi = 230 VAC unless otherwise noted. PARAMETER DESCRIPTION / CONDITION MIN NOM MAX UNIT Main Output V1 V1 nom Nominal Output Voltage 0.5 ∙ I1 nom, TA = 25°C 12.0 VDC V1 set Output Setpoint Accuracy -1 +1 %V1 nom dV1 load Load Regulation 0 to 100% I1 nom 240 mV dV1 line Line Regulation Vi min LL to Vi max HL 120 mV dV1 tot Total Regulation Vi min to Vi max, 0 to 100% I1 nom -5 +5 %V1 nom P1 nom Nominal Output Power Vi min HL to Vi max HL 2200 W Vi min LL to Vi max LL 1155 W I1 peak Peak Output Loading Vi min HL to Vi max HL (max 20 s) 205 ADC Vi min HL to Vi max HL (max 100 µs) 300 ADC Vi min LL to Vi max LL (max 20 s) 115 ADC I1 nom I1 nom red Output Current Vi min HL to Vi max HL 0.0 183 ADC Vi min LL to Vi max LL 0.0 96 ADC V1 pp Output Ripple Voltage3 Vi min to Vi max, 0 to 100% I1 nom, 20MHz Bandwidth 150 mVpp dI1 share Current Sharing Deviation from I1 tot / N, I1 > 20% -5 +5 % I1 nom VISHARE Current Share Bus Voltage I1 nom 8 VDC dV1 dyn Dynamic Load Regulation Test frequency between 50 Hz and 5 kHz at duty cycles from 10% to 90%, ΔI1 = 60% I1 nom, I1 = 3 A … 100% I1nom, 2000 µF capacitive loading dI1/dt = 0.25 A/µs, recovery within 1% of V1nom 11.40 12.60 VDC trec Recovery Time 2 ms tV1 rise Output Voltage Rise Time V1 = 10…90% V1 nom 1 70 ms tV1 ovr sh Output Turn-on Overshoot Vi nom HL, 0 to 100% I1 nom 0.6 V dV1 sense Remote Sense Compensation for cable drop, 0 to 100% I1 nom 0.25 V CV1 load Capacitive Loading 22 mF Standby Output VSB VSB nom Nominal Output Voltage 0.5 ∙ISB nom, TA = 25°C 12.0 VDC VSB set Output Setpoint Accuracy -1 +1 %VSBnom dVsb load Load Regulation 0 to 100% ISB nom 480 mV dVsb line Line Regulation Vi min LL to Vi max HL 120 mV dVSB tot Total Regulation Vi min to Vi max, 0 to 100% ISB nom -5 +5 %VSBnom PSB nom Nominal Output Power Vi min to Vi max 42 W ISB peak Peak Output Loading Vi min LL to Vi max HL 4 ADC ISB nom Output Current Vi min to Vi max 0.0 3.5 ADC VSB pp Output Ripple Voltage 3 Vi min to Vi max, 0 to 100% ISB nom, 20 MHz bandwidth 120 mVpp dVSB dyn Dynamic Load Regulation ΔISB = 50% ISB nom, ISB = 0 … 100% ISB nom, dISB/dt = 0.25A/µs, recovery within 1% of VSB nom 11.40 12.60 VDC trec Recovery Time 2 ms tVSB rise Output Voltage Rise Time VSB = 10…90% VSB nom, 5 10 ms tVSB ovr sh Output Turn-on Overshoot Vi nom HL, 0 to 100% ISB nom 0.6 V CVSB load Capacitive Loading 1000 µF 3 Ripple noise and dynamic load measured with a 10 µF low ESR capacitor in parallel with a 0.1 µF ceramic capacitor at the point of measurement.

5.1 OUTPUT GROUND / CHASSIS CONNECTION

planes should be connected together at the power supplies ground pins. Figure 5. Common Low Impedance Ground Plane Figure 6. Separated Power and Signal Ground

5.2 CLOSED LOOP STABILITY

The power supply shall be unconditionally stable under all line/load/transient load conditions including capacitive load ranges. be ensured at 10%, 20%, 50% and 100% loads as applicable, 0% is just for reference.

5.3 RESIDUAL VOLTAGE IMMUNITY IN STANDBY MODE

and the PSON_L signal is de-asserted.

5.4 COMMON MODE NOISE

The common mode noise on any output shall not exceed 350 mV pk-pk over the frequency band of 10 Hz to 20 MHz.

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5.5 SOFT STARTING

AC line or any power supply components at any specified AC line or load conditions.

5.6 ZERO LOAD STABILITY REQUIREMENTS

it must begin to regulate and source current without fault.

5.7 HOT SWAP REQUIREMENTS

Hot swapping a power supply is the process of inserting and extracting a power supply from an operating power system.

5.8 FORCED LOAD SHARING

its ISHARE pin from the share bus. This will prevent dragging the output down (or up) in such cases. increasing their output voltage. The voltage increase is limited to +250 mV. The output will share within 10% at full load. The 12 VSB output is not required to actively share current between power supplies (passive sharing).

5.9 RIPPLE / NOISE

The test set-up shall be following Figure 7.

  1. LOAD THE OUTPUT WITH ITS MINIMUM
  2. CONNECT THE PROBES AS SHOWN.
  3. REPEAT THE MEASUREMENTS WITH THE

DIFFERENTIAL PROBE P6055 OR EQUIVALENT. Figure 7. Differential Noise Test Setup NOTE: Load must be isolated from the safety ground to Figure 7. NOTE: When performing this test, the probe clips and capacitors should be located close to the load.

+86 755 298 85888 Europe, Middle East +353 61 225 977 North America +1 408 785 5200 © 2021 Bel Power Solutions BCD.01005_A PARAMETER DESCRIPTION / CONDITION MIN NOM MAX UNIT F Input fuse (L) Not use accessible, time-lag (T) 20 A V1 OV OV Threshold V1 Over Voltage V1 Protection, Latch-off Type 13.0 13.9 14.5 VDC VVSB OV OV Threshold VSB Over Voltage VSB Protection, Automatic recovery Type 13.0 13.9 14.5 VDC V1 UV UV Threshold V1 Under Voltage V1 Protection, Latch-off Type 11.2 VDC VVSB UV UV Threshold VSB Under Voltage VSB Protection, Automatic recovery Type 11.2 VDC IV1 OC OC Limit V1 Over Current Limitation, Latch-off, Vi min HL to Vi max HL Refer to section 6.5 ADC Over Current Limitation, Latch-off, Vi min LL to Vi max LL ADC IVSB OC OC Limit VSB Over Current Limitation, Automatic recovery Type 4.5 5.5 A TSD Over Temperature On Critical Points Automatic shut-down Refer to Table 11 °C

6.1 PROTECTION CIRCUITS

Protection circuits inside the power supply shall cause only the power supply’s main output to shut down. If the power supply latches off due to a protection circuit tripping, an AC cycle OFF for 15 sec and a PSON_L cycle HIGH for 1sec shall be able to reset the power supply.

6.2 OVER TEMPERATURE PROTECTION (OTP)

The power supply will be protected against over temperature conditions caused by loss of fan cooling or excessive ambient temperature. In an OTP condition the PSU will shut down, OT warning SMB_ALERT_L assertion must always precede the OTP shutdown, when the power supply temperature drops to within specified limits, the power supply shall restore power automatically, while the 12 VSB remains always on, the OTP circuit must have built in margin such that the power supply will not oscillate on and off due to temperature recovering condition, the OTP trip temperature level shall be at least 5degC higher than SMB_ALERT_L over temperature warning threshold level.

6.3 OVER VOLTAGE PROTECTION

The PES2200-12-080xA front-end provides a fixed threshold overvoltage (OV) protection implemented with a HW comparator for both the main and the standby output. Once an OV condition has been triggered on the main output, the supply will shut down and latch the fault condition. The latch can be unlocked by disconnecting the supply from the AC mains or by toggling the PSON_L input. 12 VSB will be auto-recovered after removing OVP limit.

6.4 UNDER VOLTAGE DETECTION

Both main and standby outputs are monitored. LED and PWOK_H pin signal if the output voltage exceeds ±5% of its nominal voltage. The main output will latch off if the main output voltage V1 falls below 11.2 V (typically in an overload condition), The latch can be unlocked by disconnecting the supply from the AC mains or by toggling the PSON_L input. If the standby output leaves its regulation bandwidth for more than 10 ms then the main output is disabled to protect the system.

6.5 Current limitation

The main output current limitation level IV1 lim will decrease if the ambient (inlet) temperature increases beyond 50 °C (see Figure 8 and Table 3). Note that the current limitation on V1 will kick in at a current level approximately 10A-16A higher nominal output current that is shown. The 2nd protection is a substantially rectangular output characteristic controlled by a software feedback loop. This protects the power supply and system during the 20s peak load. after the 20s goes out, the supply will shut down. The 3rd protection is a substantially rectangular output characteristic controlled by a software feedback loop. This protects the power supply and system during the 20ms blanking time of the static over current protection. If the output current is rising fast and reaches IV1 lim, the supply will immediately shut down.

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Table 4. PMAX Testing Conditions or the PSON_L input. A failure on the Main output will shut down only the Main output, while Standby continues to operate. is defined as a short term operation condition and NOT recommend to operate at this condition for long term. Table 3. Main Output Nominal Output Current I1 nomll & Current Limitation IV1 lim vs Inlet Temperature (degC) & Vin(Vac) Figure 8. Power derating vs temperature

6.6 PEAK LOAD WITH ADDED SYSTEM BUFFER CAPACITANCE

The power supply shall be able to support higher peak power levels with added system buffer capacitance for up to 100 µs. Table 4 are PMAX testing conditions.

+86 755 298 85888 Europe, Middle East +353 61 225 977 North America +1 408 785 5200 © 2021 Bel Power Solutions BCD.01005_A PARAMETER DESCRIPTION / CONDITION MIN NOM MAX UNIT Vi mon Input Voltage Vi min LL ≤ Vi ≤ Vi max -2 +2 VAC Ii mon Input Current -1 +1 A Pi mon True Input Power Pi > 700 W -5 +5 % Pi ≤700 W 35 35 W Ei mon Total Input Energy Pi > 700 W -5 +5 % Pi ≤700 W 35 35 W V1 mon V1 Voltage -1 +1 % I1 mon V1 Current I1 > 30 A -2 +2 % I1 ≤ 30 A -1 +1 A P nom V1 Output Power Po > 250 W -5 +5 % Po ≤ 250 W -15 +15 W E nom V1 Onput Energy Po > 250 W -5 +5 % Po ≤ 250 W -15 +15 W Tambmon Ambient Temperature 0℃ ≤ Tamb ≤ 55℃ -5 +5 ℃ FS Fan speed -500 +500 RPM The power supply operating parameters can be accessed through I2C interface. For more details refer to chapter I2C / POWER MANAGEMENT BUS COMMUNICATION and document PES2200-12-080xA Power Management Bus Communication Manual.

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8.1 ELECTRICAL CHARACTERISTICS

8.2 SENSE INPUTS

path. The maximum allowed voltage drop is 200 mV on the positive rail and 50 mV on the GND rail. the power supply will shut down.

8.3 PRESENT_L OUTPUT

into PRESENT_L should not exceed 5mA to guarantee a low level voltage if power supply is seated. Figure 9. PRESENT_L Connection

8.4 PSON_L INPUT

either controlled by an open collector device or by a voltage source. Figure 10. PSON_L connection

8.5 PWOK_H OUTPUT

a LOW state. The start of the PWOK_H delay time shall be inhibited as long as any power supply output is in current limit.

8.6 SMB_ALERT_L OUTPUT

The SMB_ALERT_L signal indicates that the power supply is experiencing a problem that the system agent should investigate. the specified limits. This signal is to be asserted in parallel with LED turning solid Yellow. In case exhaust air temperature exceeds 70 °C higher temp rating cord must be used.

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Figure 12. SMB_ALERT_L Connection

8.7 VIN_OK_H OUTPUT

of the parametric PSU specification. The PSU shall de-assert (drive low) under input over-voltage condition. the PSU shall be capable of delivering all outputs within the regulation limits for at least 4mS before de-asserting PWOK_H(T1). Figure 13. VIN_OK_H Timing

NOTE: T2 is the minimum VIN_OK_H de-assertion dwell time that is initiated when the PSU has declared a loss of input voltage. Table 5. VIN_OK_H Timing Requirements

8.8 TIMING REQUIREMENTS

limits (Tvout_rise) within 1 to 70 ms. For 12 VSB, it is allowed to rise from 5.0 between 10 ms. All outputs must rise monotonically. Figure 14. Turn On/Off Timing

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  • The 12VSB output voltage rise time shall be from 5.0 ms between 10 ms.

Table 6. Timing Requirements Table 7. LED Characteristics Table 8. LED Status

8.9 HOT_STANDBY

supply will operate in a load range having a better efficiency.

8.10 LED INDICATOR

and DC power presence and warning or fault conditions. Table 8 lists the different LED status.

1 Cb = Capacitance of bus line in pF, typically in the range of 10…400 pF

Table 9. I2C / SMBus Specification The PES front-end is a communication Slave device only; it never initiates messages on the I2C/SMBus by itself.

  • The SDA/SCL IOs use 3V3 logic levels
  • External pull-up resistors on SDA/SCL required for correct signal edges
  • Full SMBus clock speed of 100 kbps
  • Clock stretching limited to 1 ms
  • SCL low time-out of >25 ms with recovery
  • within 10 ms
  • Recognizes any time Start/Stop bus conditions 3.3/5V Rpull-up TX RX SDA/SCL 3.3V 10kΩ DSP or EEPROM TX_EN Figure15. Physical layer of communication interface Communication to the DSP or the EEPROM will be possible as long as the input AC voltage is provided. If no AC is present, communication to the unit is possible as long as it is connected to a life VSB output or V1 output (provided e.g. by the redundant unit).

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Figure 16. I2C / SMBus Timing fixed addressing offset exists between the Controller and the EEPROM. Table 10. Address and Protocol Encoding Figure 17. I2C Bus to DSP and EEPROM

9.1 CONTROLLER AND EEPROM ACCESS

under different addresses, see ADDRESS SELECTION. The SDA/SCL lines are connected directly to the controller and EEPROM which are supplied by internal 3V3. The EEPROM provides 256 bytes of user memory. None of the bytes are used for the operation of the power supply.

+86 755 298 85888 Europe, Middle East +353 61 225 977 North America +1 408 785 5200 © 2021 Bel Power Solutions BCD.01005_A

9.2 EEPROM PROTOCOL

The EEPROM follows the industry communication protocols used for this type of device. Even though page write / read commands are defined, it is recommended to use the single byte write / read commands. WRITE The write command follows the SMBus 1.1 Write Byte protocol. After the device address with the write bit cleared a first byte with the data address to write to is sent followed by the data byte and the STOP condition. A new START condition on the bus should only occur after 5ms of the last STOP condition to allow the EEPROM to write the data into its memory. READ The read command follows the SMBus 1.1 Read Byte protocol. After the device address with the write bit cleared the data address byte is sent followed by a repeated start, the device address and the read bit set. The EEPROM will respond with the data byte at the specified location.

9.3 POWER MANAGEMENT BUS PROTOCOL

The Power Management Bus is an open standard protocol that defines means of communicating with power conversion and other devices. For more information, please see the System Management Interface Forum web site at : www.powerSIG.org. Power Management Bus command codes are not register addresses. They describe a specific command to be executed. The PES2200-12-080xA supply supports the following basic command structures:

  • Clock stretching limited to 1 ms
  • SCL low time-out of >25 ms with recovery within 10 ms
  • Recognized any time Start/Stop bus conditions WRITE The write protocol is the SMBus 1.1 Write Byte/Word protocol. Note that the write protocol may end after the command byte or after the first data byte (Byte command) or then after sending 2 data bytes (Word command). In addition, Block write commands are supported with a total maximum length of 255 bytes. READ The read protocol is the SMBus 1.1 Read Byte/Word protocol. Note that the read protocol may request a single byte or word. In addition, Block read commands are supported with a total maximum length of 255 bytes. S Address W A Data Address A Data A P Data nA P S Address W A Data Address A S Address R A S Address W A Command A Data Low Byte1) A Data High Byte1) A P 1) Optional S Address W A Command A Byte 1 A Byte N A P Byte Count A S Address W A Command A Data (Low) Byte AS Address R A Data High Byte1) nA P 1) Optional S Address W A Command A Byte 1 A S Address R A Byte N nA PByte Count A

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9.4 POWER SUPPLY DIAGNOSTIC “EVENT RECORDER”

external source providing power to the 12Vstby output.

  • Output OVP
  • Output OCP
  • Input OV/UV Fault
  • Fan fault
  • OTP
  • Other faults to cause output shutdown. Refer to BCA.00199_PES2200-12-080xA Power Management Bus Communication Application Note for further information about the Power Management Bus commands to support this function.

9.5 FIRMWARE UPDATE

to the 12Vstby pins. BPS standard GUI supports the firmware upgrade function.

9.6 GRAPHICAL USER INTERFACE

solutions and supports both the PSMI and Power Management Bus protocols. tree. In the monitoring view the power supply can be controlled and monitored. Figure 18. Monitoring dialog of the I2C Utility

rear to front airflow, which means the air enters through the DC-output of the supply and leaves at the AC-inlet. The PES2200-12-080xA supply has been designed for horizontal operation. and is a function of output power and the inlet temperature. 10% mean speed). This condition may be treated as steady state fan speed condition. LED, PWOK_H and SMB_ALERT_L. Table 11. Temperature Sensor Location and Thresholds Figure 20. Fan Speed vs. Main Output Load Comment: The fan minimum speed is 6000RPM.

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tech.support@psbel.com

11.1 IMMUNITY

PARAMETER DESCRIPTION / CONDITION CRITERION ESD Contact Discharge IEC / EN 61000-4-2, ±8 kV, 25+25 discharges per test point (metallic case, LEDs, connector body) A ESD Air Discharge IEC / EN 61000-4-2, ±15 kV, 25+25 discharges per test point (non-metallic user accessible surfaces) A Radiated Electromagnetics Filed IEC / EN 61000-4-3, 10 V/m, 1 kHz/80% Amplitude Modulation, 1 µs Pulse Modulation, 10 kHz…2 GHz A Burst IEC / EN 61000-4-4, level 3 AC port ±2 kV, 1 minute DC port ±1 kV, 1 minute A Surge IEC / EN 61000-4-5 Line to earth: level 3, ±2 kV Line to line: level 2, ±1 kV A RF Conducted Immunity IEC/EN 61000-4-6, Level 3, 10 Vrms, CW, 0.1 … 80 MHz A Voltage Dips and Interruptions IEC/EN 61000-4-11 1) Vi 230Volts, 80% Load, Dip 100%, Duration 10ms 2) Vi 230Volts, 100% Load, Dip 100%, Duration < 50 ms 1. 3) Vi 230Volts, 100% Load, Dip 100%, Duration > 50 ms A V1: B; VSB: A B PARAMETER DESCRIPTION / CONDITION CRITERION Conducted Emission EN 55032/CISPR32: 0.15 … 30 MHz, QP and AVG, single power supply Class A EN 55032/CISPR32: 0.15 … 30 MHz, QP and AVG, 2 power supplies in a system Class A Radiated Emission EN 55032/CISPR32: 30 MHz … 1 GHz, QP, single power supply Class A EN 55032/CISPR32: 30 MHz … 1 GHz, QP, 2 power supplies in a system Class A Acoustical Noise A-weighted sound power, 25°C, 50% Load 60 dB (TBD) PARAMETER DESCRIPTION / CONDITION NOTE Agency Approvals Approved to latest edition of the following standards: UL/CSA 62368-1 (USA / Canada) IEC/EN 62368-1, IEC 60950-1 (International/ Europe) CB Certificate & Report, IEC60950-1, IEC62368-1 (report to include all country national deviations) Nordics – EMKO-TSE (74-SEC) 207/94 CE - Low Voltage Directive 2014/35/EC (Europe) GB4943.1- CNCA Certification (China) CNS14336-1 Approved Isolation Strength Input (L/N) to chassis (PE) Basic Input (L/N) to output Reinforced Output to chassis None (Direct connection) Electrical Strength Test Input to output 4242 VDC Input to chassis 2121 VDC Comment: All printed wiring boards and all connectors meet UL94V-0 level.

11.2 EMISSION

Maximum electric strength testing is performed in the factory according to UL/CSA/IEC/EN 62368-1 and IEC 60950-1. Input- to-output electric strength tests should not be repeated in the field. Bel Power Solutions will not honor any warranty claims resulting from electric strength field tests.

Table 12. Requirements for Redundant Power Supply Configuration Table 13. Requirements for Non-Redundant Power Supply Configuration (High System Ambient) exception to the air exhaust side must be classified as “Handle, knobs, grips, etc. held for short periods of time only”.

13.1 HUMIDITY

NOTE: 95% relative humidity is achieved with a dry bulb temperature of 55°C and a wet bulb temperature of 54°C.

13.2 ALTITUDE

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13.3 SHOCK AND VIBRATION

13.3.1 RANDOM VIBRATION – OPERATING

Sample Size: For all product classes and categories, the minimum number of samples shall be 3 devices. test at nominal input voltage and no load. For operating vibration testing, see Figure . Figure 21. Class ll PCDs Operating Vibration Test: Acceleration vs Frequency Table 14. Operation Vibration Profile Charts specification during the entire test.

Comment: All components de-rating follows IPC9592B.

13.3.2 RANDOM VIBRATION - NON-OPERATING

devices packaged in their fully populated, bulk shipping package or individual packages of product. for a minimum of 30 minutes per axis. The total acceleration for Class II PCDs is approximately 3.8 g rms (See Table 15). Table 15. Non-Operating Vibration Profile Charts deformed sheet metal are not allowed. All units shall also pass a functional test. There are no requirements on the condition of the shipping package.

13.3.3 SHOCK – OPERATING

Sample Size: For all product types and product classes, the minimum number of samples shall be three devices. Part 2.27 Test Ea and guidance: Shock. Each tested device shall be exposed to three shocks in each of 3 axes. The amplitude of each shock shall be no less than 30 g with a half sine wave shape and a duration of 11mS. specification during the entire test.

13.3.4 THERMAL SHOCK (SHIPPING)

temperature extremes for each half cycle shall be 30 minutes.

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tech.support@psbel.com PARAMETER DESCRIPTION / CONDITION MIN NOM MAX UNIT Dimensions Width 80 mm Heigth 40 mm Depth 195 mm m Weight 1 kg Figure 22.1. Top, bottom and side view

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Table 16. Output connector pin assignment

Table 17. Output connector pin assignment

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tech.support@psbel.com ITEM DESCRIPTION ORDERING PART NUMBER SOURCE I2C Utility Windows XP/Vista/7 compatible GUI to program, control and monitor Front-End power supplies (and other I2C units) N/A belfuse.com/power-solutions Evaluation Board Connector board to operate PES2200-12-080A. Includes an on- board USB to I2C converter (use I2C Utility as desktop software). YTM.00103 (TBD) belfuse.com/power-solutions It is recommended to add each a width 18 mm x thickness 1 mm x length 35 mm busbar for 12 V+/- on loading board as such high output current density. Maximum electric strength testing is performed in the factory according to UL/CSA/IEC/EN 62368-1 and IEC 60950-1. Input-to- output electric strength tests should not be repeated in the field. Bel Power Solutions will not honor any warranty claims resulting from electric strength field tests. DATE REVISION SECTION ISSUE PREPARED BY ECO/MCO REFERENCE NO. 2018/07/26 001 / First release Zhiqun Wan 2018/08/08 002 15&16 Add 10139371-1824CLF connector pin defined and picture, add mating input connector to table Ryan Li 2019/01/09 003 / Fix the EMI immunity performance to A; Increase low line power output to at least 1155 W; Update Efficiency and Power Factor curve; I2C spec rise time from 300 ns to 1000 ns Remove the ‘typical ambient’ table. Zhiqun Wan 2019/4/9 004 / Update monitoring date, add power derating curve Zhiqun Wan 2019/6/5 005 / Add RA version Zhiqun Wan 2019/7/30 005 / Change the pictures of page 1 and Figure 21 Ryan Li C95037 2021/1/26 A / Adjust the description in Table 3. Correct some tables and pictures with incorrect bit numbers; Change EMC standards from EN 55022/CISPR22 to EN 55032/CISPR32; Change Safety standards from 60950 to 62368. Jonas Wu CO110340 NUCLEAR AND MEDICAL APPLICATIONS - 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.