MAU100 Series. 1W, Miniature SIP, Single & Dual Output DC/DC Converters MINMAX. Block Diagram. Key Features
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1 MAU Series W, Miniature SIP, Single & DC/DC s Key Features Efficiency up to 0 Isolation MTBF >,000,000 Hours Low Cost Input,, and Output 3.3,,9,,,{,{9,{ and { Temperature Performance -0 to UL 9V-0 Package Material Internal SMD Construction Industry Standard Pinout Minmax's MAU W DC/DC's are specially designed to provide the optimum cost/benefit power solution in a miniature SIP package. The series consists of 33 models with input voltages of V, V, V and which offers standard output voltages of 3.3V, V, 9V, V, V, ±V, ±9V, ±V and ± for a wide choice. The MAU series is an excellent selection for a variety of applications including distributed power systems, mixed analog/digital subsystems, portable test equipments, local power networks and battery backed systems. 0 I/O Isolation $ Low Cost Low Profile Block Diagram Vo Vo Bipolar Push-Pull Inverter Bipolar Push-Pull Inverter Com. -Vo -Vo REV0 00/0
2 MAU Series Model Selection Guide Model Number Input Voltage Output Voltage Output Current Input Current Regulation @Max. ma ma ma (Typ.) ma (Typ.) (Max.) (Typ.) MAU MAU MAU MAU0 MAU0 MAU06 (. ~.) { 6 {. { 30 0 MAU0 {9 {6 { 6 MAU0 { { {0. MAU09 { {3 {0. MAU MAU 00 3 MAU MAU MAU MAU6 (0. ~ 3.) { 6 {. { MAU {9 {6 { 06 MAU { { {0. 0 MAU9 { {3 {0. 0 MAU MAU 00 9 MAU MAU MAU MAU6 (.6 ~ 6.) { 6 {. { 3 MAU {9 {6 { 6 MAU { { {0. 3 MAU9 { {3 {0. 3 MAU MAU. MAU3 MAU (3. ~ 6.) { 6 { { 93 MAU { { {0. MAU6 { {3 {0. Absolute Maximum Ratings Max. Input Models Input Surge Voltage Input Models -0. ( 0 ms ) Input Models -0. Input Models Lead Temperature (.mm from case for 0 Sec.) Internal Power Dissipation 0 mw Exceeding the absolute maximum ratings of the unit could cause damage. These are not continuous operating ratings. Notes. Specifications typical at Ta=, resistive load, nominal input voltage, rated output current unless otherwise noted.. Ripple & Noise measurement bandwidth is 0-0 MHz. 3. These power converters require a minimum output loading to maintain specified regulation.. Operation under no-load conditions will not damage these modules; however, they may not meet all specifications listed.. All DC/DC converters should be externally fused at the front end for protection. 6. Other input and output voltage may be available, please contact factory.. Specifications subject to change without notice. REV0 00/0
3 MAU Series Environmental Specifications Operating Temperature Operating Temperature Storage Temperature Humidity Cooling Conditions Ambient Case Free-Air Convection Typ. Max. 9 Input Specifications Input Voltage Range Reverse Polarity Input Current Input Filter Model V Input Models V Input Models V Input Models V Input Models All Models Typ. Max Internal Capacitor A Output Specifications Output Voltage Accuracy Output Voltage Balance Line Regulation Regulation Ripple & Noise (0MHz) Ripple & Noise (0MHz) Ripple & Noise (0MHz) Over Temperature Coefficient Output Short Circuit Conditions, Balanced s For Vin Change of Io=0 to Over Line, & Temp. Typ. Max. {.0 {3.0 {0. {.0 {. {. See Model Selection Guide {0.0 { Second Max. mv P-P mv P-P mv rms / General Specifications Isolation Voltage Rated Isolation Voltage Test Isolation Resistance Isolation Capacitance Switching Frequency MTBF Conditions Seconds Flash Tested for Second 00 KHz,V Ground Benign Typ. Max. 0 M[ pf KHz K Hours Capacitive Models by Vout Maximum Capacitive # For each output 3.3V 0 V 0 9V 0 V 0 V 0 {V # {9V # {V # {V # uf Input Fuse Selection Guide V Input Models V Input Models 00mA Slow - Blow Type 00mA Slow - Blow Type V Input Models 0mA Slow - Blow Type V Input Models ma Slow - Blow Type 3 REV0 00/0
4 MAU Series Efficiency () 0 Efficiency () 0 0 Low Nom High 0 Low Nom High Input Voltage (V) Input Voltage (V) Efficiency vs Input Voltage ( ) Efficiency vs Input Voltage ( ) Efficiency () 0 0 Efficiency () Current () Current () Efficiency vs Output ( ) Efficiency vs Output ( ) LFM 00LFM LFM 00LFM 00LFM Output Power () 0 Natural convection 00LFM Output Power () 0 Natural convection Ambient Temperature Ambient Temperature Derating Curve ( 3.3V, V & {V ) Derating Curve ( all other output ) REV0 00/0
5 MAU Series Test Configurations Input Reflected-Ripple Current Test Setup Input reflected-ripple current is measured with a inductor Lin (.uh) and Cin (0uF, ESR <.0[ at KHz) to simulate source impedance. Capacitor Cin, offsets possible battery impedance. Current ripple is measured at the input terminals of the module, measurement bandwidth is 0-00 KHz. To Oscilloscope Lin Battery Cin Current Probe In applications where power is supplied over long lines and output loading is high, it may be necessary to use a capacitor at the input to ensure startup. Capacitor mounted close to the power module helps ensure stability of the unit, it is commended to use a good quality low Equivalent Series Resistance (ESR <.0[ at KHz) capacitor of a.uf for the V input devices, a.0uf for the V,V input devices and a 0.uF for the V devices. DC Power Source - Cin Output Ripple Reduction Peak-to-Peak Output Noise Measurement Test Use a 0.33uF ceramic capacitor. Scope measurement should be made by using a BNC socket, measurement bandwidth is 0-0 MHz. Position the load between 0 mm and mm from the DC/DC. A good quality low ESR capacitor placed as close as practicable across the load will give the best ripple and noise performance. To reduce output ripple, it is recommended to use.0uf capacitors at the output. Copper Strip Scope Resistive DC Power Source - Com. Copper Strip Scope Resistive Scope DC Power Source - Com. Design & Feature Considerations Maximum Capacitive The MAU series has limitation of maximum connected capacitance at the output. The power module may be operated in current limiting mode during start-up, affecting the ramp-up and the startup time. For optimum performance we recommend uf maximum capacitive load for dual outputs and 0uF capacitive load for single outputs. The maximum capacitance can be found in the data sheet. Input Source Impedance The power module should be connected to a low ac-impedance input source. Highly inductive source impedances can affect the stability of the power module. Thermal Considerations Many conditions affect the thermal performance of the power module, such as orientation, airflow over the module and board spacing. To avoid exceeding the maximum temperature rating of the components inside the power module, the case temperature must be kept below C. The derating curves are determined from measurements obtained in an experimental apparatus. Position of air velocity probe and thermocouple mm / 0.6in 0mm / in Air Flow DUT REV0 00/0
6 MAU Series Mechanical Dimensions 9. [0. Connecting Pin Patterns Top View (. mm / 0. inch grids ) 0. [ [0.0. [0.0. [0.3. [0. 3. [0.3 6 T 0. [ [ [0.0 T 6.(0.) for V&V Input Models T.(0.) for V&V Input Models Tolerance Pin Millimeters X.X{0. X.XX{0.3 {0.0 Inches X.XX{0.0 X.XXX{0.00 {0.00 Pin Connections Physical Characteristics Pin Case Size ( & V Input) 9.*6.*0. mm 0.*0.*0.0 inches -Vout No Pin -Vout Common Case Size 9.*.*0. mm ( & V Input) 0.*0.*0.0 inches 6 Vout Vout Case Material Non-Conductive Black Plastic Weight.g ( & V Input).6g ( & V Input) The MAU converter is encapsulated in a low thermal resistance molding compound that has excellent resistance/electrical characteristics over a wide temperature range or in high humidity environments. The encapsulant and unit case are both rated to UL 9V-0 flammability specifications. Leads are tin plated for improved solderability. REV0 00/0 6
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