MIL-COTS MP028F036M12AL PRMTM Regulator 28 Vdc Input • Vin range 16 – 50 Vdc • Adaptive Loop feedback • High density – 407 W/in3 • ZVS buck-boost regulator • Small footprint – 108 W/in2 • 1.3 MHz switching frequency • Low weight – 0.5 oz (15 g) • 95% efficiency • Surface-mount or Through-Hole package • -55˚C to 125˚C operation (Tj) Product Description Vin = 16 – 50 V Vf = 26 – 50 V Pf = 120 W If = 3.3 A Absolute Maximum Ratings The V•I ChipTM Pre-Regulator Module is a very efficient non-isolated regulator capable of both boosting and bucking a wide range input voltage. It is specifically designed to provide a controlled Factorized Bus distribution voltage for powering downstream V•I Chip Voltage Transformation Modules — fast, efficient, isolated, low noise Point-of-Load (POL) converters. In combination, PRMs and VTMsTM form a complete DC-DC converter subsystem offering all of the unique benefits of Vicor’s Factorized Power Architecture (FPA): high density and efficiency; low noise operation; architectural flexibility; extremely fast transient response; and elimination of bulk capacitance at the Point-of-Load (POL). In FPA systems, the POL voltage is the product of the Factorized Bus voltage delivered by the PRM and the "K-factor" (the fixed voltage transformation ratio) of a downstream VTM. The PRM controls the Factorized Bus voltage to provide regulation at the POL. Because VTMs perform true voltage division and current multiplication, the Factorized Bus voltage may be set to a value that is substantially higher than the bus voltages typically found in "intermediate bus" systems, reducing distribution losses and enabling use of narrower distribution bus traces. A Military PRM-VTM chip set can provide up to 100 A or 115 W at a FPA system density of 169 A/in3 or 195 W/in3 — and because the PRM can be located, or "factorized," remotely from the POL, these power densities can effectively be doubled. The Military PRM described in this data sheet features a unique "Adaptive Loop" compensation feedback: a single wire alternative to traditional remote sensing and feedback loops that enables precise control of an isolated POL voltage without the need for either a direct connection to the load or for noise sensitive, bandwidth limiting, isolation devices in the feedback path. vicorpower.com © Parameter Values Unit +In to -In -1.0 to 60.0 Vdc PC to -In -0.3 to 6.0 Vdc PR to -In -0.3 to 9.0 Vdc IL to -In -0.3 to 6.0 Vdc VC to -In -0.3 to 18.0 Vdc +Out to -Out -0.3 to 59 Vdc SC to -Out -0.3 to 3.0 Vdc VH to -Out -0.3 to 9.5 Vdc OS to -Out -0.3 to 9.0 Vdc CD to -Out -0.3 to 9.0 Vdc SG to -Out 100 mA Continuous output current 3.3 Adc Notes Continuous output power 120 W Case temperature during reflow 225 °C Operating junction temperature -55 to 125 °C M-Grade Storage temperature -65 to 125 °C M-Grade MSL 5 DC-DC Converter VC PC TM IL NC PR PRM-AL +In VH SC SG OS NC CD Factorized Bus (Vf) +Out TM VC PC Vin –In –Out +Out +In -In VTM -Out Vout +Out K Ro -Out The MP028F036M12AL is used with any 036 input series VTM to provide a regulated and isolated output. 800-735-6200 V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 1 of 14 General Specifications V•I Chip Pre-Regulator Module Part Numbering MP 028 F 036 M 12 AL Pre-Regulator Module Input Voltage Designator Configuration F = J-lead T = Through hole Nominal Factorized Bus Voltage Product Grade Temperatures (°C) Grade Storage Operating (TJ) M -65 to125 -55 to125 Output Power Designator (=Pf /10) AL = Adaptive Loop Overview of Adaptive Loop Compensation Adaptive Loop compensation, illustrated in Figure 1, contributes to the bandwidth and speed advantage of Factorized Power. The PRM monitors its output current and automatically adjusts its output voltage to compensate for the voltage drop in the output resistance of the VTM. ROS sets the desired value of the VTM output voltage, Vout; RCD is set to a value that compensates for the output resistance of the VTM (which, ideally, is located at the point of load). For selection of ROS and RCD, refer to Table 1 below or Page 9. The V•I Chip’s bi-directional VC port : 1. Provides a wake up signal from the PRM to the VTM that synchronizes the rise of the VTM output voltage to that of the PRM. 2. Provides feedback from the VTM to the PRM to enable the PRM to compensate for the voltage drop in VTM output resistance, RO. Vo = VL ± 1.0% VC PC TM IL NC PR PRM-AL VH SC SG OS NC CD Factorized Bus (Vf) ROS RCD +Out +In Vf = Vin –Out –In VL (Io•Ro) + K K +Out +In TM VC PC -In VTM -Out +Out K Ro L O A D -Out Figure 1 — With Adaptive Loop control the output of the VTM is regulated over the load current range with only a single interconnect between the PRM and VTM and without the need for isolation in the feedback path. Desired Load Voltage (Vdc) VTM P/N(1) Max VTM Output Current (A)(2) ROS (kΩ)(3) RCD (Ω)(3) 1.0 MV036F011M100 100 2.70 34.8 1.2 MV036F011M100 100 2.24 41.2 1.5 MV036F015M080 80 2.39 32.4 1.8 MV036F015M080 80 1.98 38.3 2.0 MV036F022M055 55 2.70 23.2 3.3 MV036F030M040 40 2.16 37.4 5.0 MV036F045M027 27 2.14 39.2 10 MV036F090M013 13.3 2.14 41.2 12 MV036F120M010 10 2.39 21.5 15 MV036F180M007 6.7 2.87 34.8 24 MV036F240M005 5.0 2.39 38.3 28 MV036F240M005 5.0 2.04 41.2 36 MV036F360M003 3.3 2.39 34.8 48 MV036F360M003 3.3 1.78 45.3 Note: (1) See Table 2 on page 9 for nominal Vout range and K factors. (2) See “PRM output power vs. VTM output power” on page 10 (3) 1% precision resistors recommended Table 1 — Configure your Chip Set using the PRM-AL vicorpower.com 800-735-6200 V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 2 of 14 Electrical Specifications V•I Chip Pre-Regulator Module Input Specs (Conditions are at 28 Vin, 36 Vf, full load, and 25°C ambient unless otherwise specified) Parameter Input voltage range Min Typ Max Unit 16.1[a] 28 50 Vdc 1 V/µs Input dV/dt Input undervoltage turn-on 15.9 Input undervoltage turn-off 12.2 Input overvoltage turn-on 50.5 16.1 Note Vdc 13.5 Increases linearly to 17 V max at 100°C Vdc 52.5 Vdc Input overvoltage turn-off 53.5 55.0 Input quiescent current 0.5 1 Input current 4.5 Vdc mA PC low Adc Input reflected ripple current 240 No load power dissipation 2.75 Internal input capacitance 5 µF Ceramic 1,000 µF See Figure 5 for input filter circuit. Source impedance dependent Recommended external input capacitance mA p-p 5.5 See Figures 4 & 5 W [a] Will operate down to 13.5 V after start up ≥ 16 V Input Waveforms Figure 2 — Vf and PC response from power up Figure 3 — Vf turn-on waveform with inrush current – PC enabled at full load, 28 Vin,electronic load set @ constant R. Reflected Ripple Measurement 10 A +IN VC PC TM IL NC PR PRM-AL +In +Out –In –Out VH SC SG OS NC CD 2.37 kΩ + OUT 1000 μF Al-Electrolytic –IN Figure 4 — Input reflected ripple current at full load and 28 Vin vicorpower.com 800-735-6200 – OUT Figure 5 — Input filter capacitor recommendation V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 3 of 14 Electrical Specifications (continued) V•I Chip Pre-Regulator Module Output Specs (Conditions are at 28 Vin, 36 Vf, full load, and 25°C ambient unless otherwise specified) Parameter Min Typ Max Unit Note Output voltage range 26 36 50 Vdc Factorized Bus voltage (Vf) set by ROS Output power 0 120 W Output current 0 DC current limit 3.5 Average short circuit current 3.33 Adc 3.9 4.4 Adc IL pin floating 0.125 1.25 A Auto recovery Set point accuracy 1.5 Line regulation 0.1 0.2 % Low line to high line Load regulation 0.1 0.2 % No CD resistor Load regulation (at VTM output) 1.0 2.0 % Adaptive Loop 5 10 % 59.4 Vdc 2.7 % Current share accuracy % Efficiency Full load 94 Output overvoltage set point 95.6 56 % See Figure 6,7 & 8 Output ripple voltage No external bypass 1.8 With 10 µF capacitor Factorized Bus, see Fig. 13 0.6 0.9 % 1.3 1.45 MHz From application of power 94 144 ms See Figure 2 From PC pin high 100 µs See Figure 3, Consult Applications Engineering if powering loads other than VTMs Internal output capacitance 5 µF Ceramic Switching frequency 1.2 Factorized Bus, see Fig. 14 Fixed frequency Output turn-on delay Factorized Bus capacitance 47 vicorpower.com 800-735-6200 µF V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 4 of 14 Electrical Specifications (continued) V•I Chip Pre-Regulator Module Efficiency Charts Efficiency vs. Output Current Efficiency vs. Output Current 95 95 90 Vin 85 16V 28V 50V 80 75 70 Efficiency (%) 100 Efficiency (%) 100 90 Vin 85 16V 28V 50V 80 75 70 65 65 60 60 0.25 0.50 0.76 0.99 1.26 1.51 1.74 2.02 2.26 2.51 0.33 0.67 0.99 1.32 1.64 1.99 2.30 2.64 2.97 3.31 Output Current (A) Output Current (A) Figure 6 — Efficiency vs. output current at 48 Vf Figure 7 — Efficiency vs. output current at 36 Vf Efficiency vs. Output Current 100 Efficiency (%) 95 90 Vin 85 16V 28V 80 50V 75 70 65 0.34 0.68 0.98 1.33 1.65 1.98 2.31 2.64 2.97 3.30 Output Current (A) Figure 8 — Efficiency vs. output current at 26 Vf vicorpower.com 800-735-6200 V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 5 of 14 Electrical Specifications (continued) V•I Chip Pre-Regulator Module Figure 9 — Transient response; PRM alone 28 Vin, 0 – 3.3– 0 A, no load capacitance, local loop Figure 10 — Transient response; PRM alone 16 Vin, 0 – 3.3 – 0 A, no load capacitance, local loop Figure 11 — Transient response; PRM alone 50 Vin, 0 – 3.3 – 0 A, no load capacitance, local loop Figure 12 — PC during fault – frequency will vary as a function of line voltage. Figure 13 — Output ripple 36 Vf, full load no bypass capacitance Figure 14 — Output ripple 36 Vf, full load 10 µF bypass capacitance vicorpower.com 800-735-6200 V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 6 of 14 Electrical Specifications (continued) V•I Chip Pre-Regulator Module Auxiliary Pins (Conditions are at 28 Vin, 36 Vf, full load, and 25°C ambient unless otherwise specified) Parameter VC (VTM Control) Pulse width Peak voltage PC (Primary Control) DC voltage Module disable voltage Module enable voltage Disable hysteresis Min Typ Max Unit 8 12 12 14 18 18 ms V 4.8 2.3 5.0 2.4 2.5 100 5.2 Vdc Vdc Vdc mV Current limit 2.6 1.75 Enable delay time Disable delay time IL (Current Limit Adjust) Voltage Accuracy PR (Parallel Port) Voltage Source current External capacitance VH (Auxiliary Voltage) Range Regulation Current SC (Secondary Control) Voltage Internal capacitance External capacitance OS (Output Set) Set point accuracy Reference offset CD (Compensation Device) External resistance 1.90 1.05 2.5 1 Source only after start up; not to be used for aux. supply; 100 kΩ minimum load impedance to assure start up. V % 3.5 9.0 0.04 9.3 Referenced to SG; See description Page 8 Vdc %/mA mA p 5 1.24 0.22 Based on DC current limit set point V mA pF 100 1.23 Referenced to –In Referenced to –In µs µs 1 ± 15 8.7 Referenced to –Out mA 100 1 0.95 Note 1.25 0.7 ± 1.5 ±4 Vdc µF µF Referenced to SG % mV Includes 1% external resistor Ω 20 Typical internal bypass C= 0.1 µF Maximum external C=0.1 µF, referenced to SG Omit resistor for regulation at output of PRM General Specs Parameter MTBF MIL-HDBK-217F Min Agency approvals Mechanical Weight Dimensions Length Width Height Thermal Over temperature shutdown Thermal capacity Junction-to-case thermal impedance (RθJC) Junction-to-board thermal impedance (RθJB) Case-to-ambient vicorpower.com Typ Max Unit 3,021,658 543,747 426,053 cTÜVus CE Mark hrs hrs hrs 0.53 / 15 oz / g 1.28 / 32.5 0.87 / 22 0.26 5/ 6,73 in / mm in / mm in / mm 130 800-735-6200 135 9.3 1.1 2.1 3.7 140 °C Ws/°C °C/W °C/W °C/W V•I Chip Pre-Regulator Module Note 25°C, GB 50°C, NS 65°C, AIC UL /CSA 60950-1, EN 60950-1 Low voltage directive See Mechanical Drawings, Figures 19 – 22 Junction temperature With 0.25” heat sink @ 300 LFM MP028F036M12AL Rev. 3.0 Page 7 of 14 Pin / Control Functions V•I Chip Pre-Regulator Module +In / -In DC Voltage Ports The V•I Chip maximum input voltage should not be exceeded. PRMs have internal over / undervoltage lockout functions that prevent operation outside of the specified input range. PRMs will turn on when the input voltage rises above its undervoltage lockout. If the input voltage exceeds the overvoltage lockout, PRMs will shut down until the overvoltage fault clears. PC will toggle indicating an out of bounds condition. +Out / -Out Factorized Voltage Output Ports These ports provide the Factorized Bus voltage output. The –Out port is connected internally to the –In port through a current sense resistor. The PRM has a maximum power and a maximum current rating and is protected if either rating is exceeded. Do not short –Out to –In. VC – VTM Control The VTM Control (VC) port supplies an initial VCC voltage to downstream VTMs, enabling the VTMs and synchronizing the rise of the VTM output voltage to that of the PRM. The VC port also provides feedback to the PRM to compensate for voltage drop due to the VTM output resistance. The PRM’s VC port should be connected to the VTM VC port. A PRM VC port can drive a maximum of two (2) VTM VC ports. PC – Primary Control The PRM voltage output is enabled when the PC pin is open circuit (floating). To disable the PRM output voltage, the PC pin is pulled low. Open collector optocouplers, transistors, or relays can be used to control the PC pin. When using multiple PRMs in a high power array, the PC ports should be tied together to synchronize their turn on. During an abnormal condition the PC pin will pulse (Fig.12) as the PRM initiates a restart cycle. This will continue until the abnormal condition is rectified. The PC should not be used as an auxiliary voltage supply, nor should it be switched at a rate greater than 1 Hz. AL Version 4 +OUT –OUT 3 2 1 VC VH A SC B B PC SG C C TM OS D D IL NC E E NC CD F F PR G G H H A J J K K L L M M N N P P +IN –IN Bottom View Signal Name +In –In VC PC TM IL PR VH SC SG OS CD +Out –Out Designation G1-K1,G2-K2 L1-P1, L2-P2 A1,A2 B1, B2 C1, C2 D1, D2 F1, F2 A3, A4 B3, B4 C3, C4 D3, D4 F3, F4 G3-K3, G4-K4 L3-P3, L4-P4 Figure 15 — PRM pin configuration SC – Secondary Control The load voltage may be controlled by connecting a resistor or voltage source to the SC port. The slew rate of the output voltage may be controlled by controlling the rate-of-rise of the voltage at the SC port (e.g., to limit inrush current into a capacitive load). TM – Factory Use Only IL – Current Limit Adjust The PRM has a preset, maximum, current limit set point. The IL port may be used to reduce the current limit set point to a lower value. See “adjusting current limit” on page 10. PR – Parallel Port The PR port signal, which is proportional to the PRM output power, supports current sharing of two PRMs. To enable current sharing, PR ports should be interconnected. Bypass capacitance should be used when interconnecting PR ports and steps should be taken to minimize coupling noise into the interconnecting bus. Terminate this port with a 10 k equivalent resistance to SG, e.g. 10 k for a single PRM, 20 k each for 2 PRMs in parallel, 30 k each for 3 PRMs in parallel etc.. Please consult Vicor Applications Engineering regarding additional considerations when paralleling more than two PRMs. VH – Auxiliary Voltage VH is a gated (e.g. mirrors PC), non-isolated, nominally 9 Volt, regulated DC voltage (see “Auxiliary Pins” specifications, on Page 7) that is referenced to SG. VH may be used to power external circuitry having a total current consumption of no more than 5 mA under either transient or steady state conditons including turn-on. vicorpower.com 800-735-6200 SG – Signal Ground This port provides a low inductance Kelvin connection to –In and should be used as reference for the OS, CD, SC,VH and IL ports. OS – Output Set The application-specific value of the Factorized Bus voltage (Vf) is set by connecting a resistor between OS and SG. Resistor value selection is shown in Table 1 on Page 2, and described on Page 9. If no resistor is connected, the PRM output will be approximately one volt. If set resistor is not collocated with the PRM, a local bypass capacitor of ~200 pF may be required. CD – Compensation Device Adaptive Loop control is configured by connecting an external resistor between the CD port and SG. Selection of an appropriate resistor value (see Equation 2 on Page 9 and Table 1 on Page 2) configures the PRM to compensate for voltage drops in the equivalent output resistance of the VTM and the PRM-VTM distribution bus. If no resistor is connected to CD, the PRM will be in Local Loop mode and will regulate the +Out / –Out voltage to a fixed value. V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 8 of 14 Application Information 0.01 μF VC PC TM IL NC PR 10 kΩ PRM-AL V•I Chip Pre-Regulator Module VH SC SG OS NC CD Vf = ROS RCD Vin VTM TM VC PC 10 Ω +Out – Out – In –Out –In +Out +In 0.4 μH +Out +In (IL•Ro) VL + K K K Ro – Out L O A D Figure 16 — Adaptive Loop compensation with soft start using the SC port. Output Voltage Setting with Adaptive Loop Output Voltage Trimming (optional) The equations for calculating ROS and RCD to set a VTM output voltage are: After setting the output voltage from the procedure above the output may be margined down (26 Vf min) by a resistor from SC-SG using this formula: 69800 ROS = RCD = ( VL • 0.8395 ) – 1 K 68404 +1 (1) RdΩ = 10000 Vfd Vfs - Vfd Where Vfd is the desired factorized bus and Vfs is the set factorized bus. (2) ROS A low voltage source can be applied to the SC port to margin the load voltage in proportion to the SC reference voltage. VL = Desired load voltage An external capacitor can be added to the SC port as shown in Figure 16 to control the output voltage slew rate for soft start. VOUT = VTM output voltage K = VTM transformation ratio (available from appropriate VTM data sheet) Nominal Vout Range (Vdc) Vf = PRM output voltage, the Factorized Bus (see Figure 16) RO = VTM output resistance (available from appropriate VTM data sheet) IL = Load Current (actual current delivered to the load) Note: The simplified RCD equation (2) may result in slightly different values for RCD shown in Table 1. VTM K Factor 0.8 ↔ 1.1 ↔ 1.6 1/32 2.0 1/24 1.7 ↔ 2.2 ↔ 3.1 1/16 4.1 1/12 3.3 ↔ 4.3 ↔ 6.2 1/8 8.3 1/6 5.2 ↔ 6.5 ↔ 10.0 1/5 12.5 1/4 8.7 ↔ 13.0 ↔ 16.6 1/3 25.0 1/2 17.4 ↔ 26.0 ↔ 33.3 2/3 50.0 1 Table 2 — 036 input series VTM K factor selection guide vicorpower.com 800-735-6200 V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 9 of 14 Application Information (continued) V•I Chip Pre-Regulator Module OVP – Overvoltage Protection Adjusting Current Limit The output Overvoltage Protection set point of the MP028F036M12AL is factory preset for 56 V. If this threshold is exceeded the output shuts down and a restart sequence is initiated, also indicated by PC pulsing. If the condition that causes OVP is still present, the unit will again shut down. This cycle will be repeated until the fault condition is removed. The OVP set point may be set at the factory to meet unique high voltage requirements. The current limit can be lowered by placing an external resistor between the IL and SG ports (see Figure 18 for resistor values). With the IL port open-circuit, the current limit is preset to be within the range specified in the output specifications table on Page 4. 100.00 As shown in Figure 17, the MP028F036M12AL is rated to deliver 3.3 A maximum, when it is delivering an output voltage in the range from 26 V to 36 V, and 120 W, maximum, when delivering an output voltage in the range from 36 V to 50 V. When configuring a PRM for use with a specific VTM, refer to the appropriate VTM data sheet. The VTM input power can be calculated by dividing the VTM output power by the VTM efficiency (available from the VTM data sheet). The input power required by the VTM should not exceed the output power rating of the PRM. Rl value (K Ω) PRM Output Power Versus VTM Output Power 10.00 1.00 0.5 4.00 1 1.5 2 2.5 3 3.5 Desired PRM Output Current Limit (A) 3.80 Figure 18 — Calculated external resistor value for adjusting current limit, actual value may vary. 3.60 3.40 3.20 Current (A) 3.00 - 0.066 A / V 2.80 Input Fuse Recommendations Safe Operating Area 2.60 A fuse should be incorporated at the input to the PRM, in series with the +IN port. A fast acting fuse, NANO2 FUSE 451/453 Series 10 A 125 V, or equivalent, may be required to meet certain safety agency Conditions of Acceptability. Always ascertain and observe the safety, regulatory, or other agency specifications that apply to your specific application. 2.40 2.20 2.00 1.80 0 ~ ~ 20 22 24 26 28 30 32 34 36 38 40 42 44 46 48 50 52 54 56 Factorized Bus Voltage (Vf) Product Safety Considerations Figure 17 — MP028F036M12AL rating based on Factorized Bus voltage The Factorized Bus voltage should not exceed an absolute limit of 55 V, including steady state, ripple and transient conditions. Exceeding this limit may cause the internal OVP set point to be exceeded. If the input of the PRM is connected to SELV or ELV circuits, the output of the PRM can be considered SELV or ELV respectively. Application Notes For PRM and V•I Chip application notes on soldering, board layout, and system design please click on the link below: Parallel Considerations The PR port is used to connect two PRMs in parallel to form a higher power array. When configuring arrays, PR port interconnection terminating impedance is 10 k to SG. See note Page 8 and refer to Application Note AN002. Additionally one PRM should be designated as the master while all other PRMs are set as slaves by shorting their SC pin to SG. The PC pins must be directly connected (no diodes) to assure a uniform start up sequence. Consult Vicor applications engineering for applications requiring more than two PRMs. vicorpower.com 800-735-6200 http://www.vicorpower.com/technical_library/application_information/chips/ Applications Assistance Please contact Vicor Applications Engineering for assistance, 1-800-927-9474, or email at [email protected]. V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 10 of 14 Mechanical Drawings V•I Chip Pre-Regulator Module NOTES: mm 1. DIMENSIONS ARE inch . 2. UNLESS OTHERWISE SPECIFIED, TOLERANCES ARE: .X / [.XX] = +/-0.25 / [.01]; .XX / [.XXX] = +/-0.13 / [.005] 3. PRODUCT MARKING ON TOP SURFACE DXF and PDF files are available on vicorpower.com Figure 19 — PRM J-Lead mechanical outline RECOMMENDED LAND PATTERN ( COMPONENT SIDE SHOWN ) NOTES: mm 1. DIMENSIONS ARE inch . 2. UNLESS OTHERWISE SPECIFIED, TOLERANCES ARE: .X / [.XX] = +/-0.25 / [.01]; .XX / [.XXX] = +/-0.13 / [.005] 3. PRODUCT MARKING ON TOP SURFACE DXF and PDF files are available on vicorpower.com Figure 20 — PRM J-Lead PCB land layout information vicorpower.com 800-735-6200 V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 11 of 14 Mechanical Drawings (continued) V•I Chip Pre-Regulator Module NOTES: (mm) 1. DIMENSIONS ARE inch . 2. UNLESS OTHERWISE SPECIFIED TOLERANCES ARE: X.X [X.XX] = ±0.25 [0.01]; X.XX [X.XXX] = ±0.13 [0.005] 3. RoHS COMPLIANT PER CST-0001 LATEST REVISION DXF and PDF files are available on vicorpower.com Figure 21 — PRM Through-hole mechanical outline NOTES: (mm) 1. DIMENSIONS ARE inch . 2. UNLESS OTHERWISE SPECIFIED TOLERANCES ARE: X.X [X.XX] = ±0.25 [0.01]; X.XX [X.XXX] = ±0.13 [0.005] 3. RoHS COMPLIANT PER CST-0001 LATEST REVISION DXF and PDF files are available on vicorpower.com Figure 22 — PRM Through-hole PCB layout information vicorpower.com 800-735-6200 V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 12 of 14 Configuration Options V•I Chip Pre-Regulator Module 2.95±0.07 ø (2) PL [0.116±0.003] NON-PLATED THROUGH HOLE SEE NOTE 1. NOTES: 1. MAINTAIN 3.5/[0.138] DIA. KEEP OUT ZONE FREE OF COPPER. ALL PCB LAYERS. 2. MINIMUM RECOMMENDED PITCH IS 39.50/[1.555]. THIS PROVIDES 7.00/[0.276] COMPONENT EDGE-TO-EDGE SPACING. AND 0.50/[0.020] CLEARANCE BETWEEN VICOR HEAT SINKS. (4.37) 0.172 (11.37) 0.448 3. V•I CHIP LAND PATTERN SHOWN FOR REFERENCE ONLY; ACTUAL LAND PATTERN MAY DIFFER. DIMENSIONS FROM EDGES OF LAND PATTERN TO PUSH-PIN HOLES WILL BE THE SAME FOR ALL FULL SIZE V•I CHIPS. (mm) 4. DIMENSION ARE inch . (36.50) 1.437 DOTTED LINE INDICATES VIC POSITION SEE NOTE 3 (18.25) 0.719 (7.00) 0.276 (31.48) 1.240 (2.510) 0.099 (39.50) 1.555 SEE NOTE 2. HEAT SINK PUSH-PIN HOLE PATTERN ( TOP SIDE SHOWN ) SEE NOTE 3 Figure 23 — Hole location for push pin heat sink relative to V•I Chip vicorpower.com 800-735-6200 V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 Page 13 of 14 Warranty Vicor products are guaranteed for two years from date of shipment against defects in material or workmanship when in normal use and service. This warranty does not extend to products subjected to misuse, accident, or improper application or maintenance. Vicor shall not be liable for collateral or consequential damage. This warranty is extended to the original purchaser only. EXCEPT FOR THE FOREGOING EXPRESS WARRANTY, VICOR MAKES NO WARRANTY, EXPRESS OR IMPLIED, INCLUDING, BUT NOT LIMITED TO, THE WARRANTY OF MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE. Vicor will repair or replace defective products in accordance with its own best judgement. For service under this warranty, the buyer must contact Vicor to obtain a Return Material Authorization (RMA) number and shipping instructions. Products returned without prior authorization will be returned to the buyer. The buyer will pay all charges incurred in returning the product to the factory. Vicor will pay all reshipment charges if the product was defective within the terms of this warranty. Information published by Vicor has been carefully checked and is believed to be accurate; however, no responsibility is assumed for inaccuracies. Vicor reserves the right to make changes to any products without further notice to improve reliability, function, or design. Vicor does not assume any liability arising out of the application or use of any product or circuit; neither does it convey any license under its patent rights nor the rights of others. Vicor general policy does not recommend the use of its components in life support applications wherein a failure or malfunction may directly threaten life or injury. Per Vicor Terms and Conditions of Sale, the user of Vicor components in life support applications assumes all risks of such use and indemnifies Vicor against all damages. Vicor’s comprehensive line of power solutions includes high density AC-DC and DC-DC modules and accessory components, fully configurable AC-DC and DC-DC power supplies, and complete custom power systems. Information furnished by Vicor is believed to be accurate and reliable. However, no responsibility is assumed by Vicor for its use. Vicor components are not designed to be used in applications, such as life support systems, wherein a failure or malfunction could result in injury or death. All sales are subject to Vicor’s Terms and Conditions of Sale, which are available upon request. Specifications are subject to change without notice. Intellectual Property Notice Vicor and its subsidiaries own Intellectual Property (including issued U.S. and Foreign Patents and pending patent applications) relating to the products described in this data sheet. Interested parties should contact Vicor's Intellectual Property Department. The products described on this data sheet are protected by the following U.S. Patents Numbers: 5,945,130; 6,403,009; 6,710,257; 6,788,033; 6,940,013; 6,969,909; 7,038,917; 7,154,250; 7,166,898; 7,187,263; 7,202,646; 7,361,844; 7,368,957; RE40,072; D496,906; D506,438; D509,472; and for use under 6,975,098 and 6,984,965 Vicor Corporation 25 Frontage Road Andover, MA, USA 01810 Tel: 800-735-6200 Fax: 978-475-6715 email Customer Service: [email protected] Technical Support: [email protected] vicorpower.com 800-735-6200 V•I Chip Pre-Regulator Module MP028F036M12AL Rev. 3.0 9/09