Part Number Hot Search : 
0RPLS TPA200 VSSR1647 SD1050YT MA360J 74F433 1N5272B NTE297
Product Description
Full Text Search
 

To Download NCP1522BSNT1G Datasheet File

  If you can't view the Datasheet, Please click here to try to view without PDF Reader .  
 
 


  Datasheet File OCR Text:
 NCP1522B 3 MHz, 600 mA Step- Down DC- DC Converter
High-Efficiency, Low Ripple, Adjustable Output Voltage
The NCP1522B step- down DC- DC converter is a monolithic integrated circuit optimized for portable applications powered from one cell Li- Ion or three cell Alkaline/NiCd/NiMH batteries. The part, available in adjustable output voltage versions ranging from 0.9 V to 3.3 V, is able to deliver up to 600 mA. It uses synchronous rectification to increase efficiency and reduce external part count. The device also has a built- in 3 MHz (nominal) oscillator which reduces component size by allowing smaller inductors and capacitors. Automatic switching PWM/PFM mode offers improved system efficiency. Additional features include integrated soft- start, cycle- by- cycle current limiting and thermal shutdown protection. The NCP1522B is available in a space saving, low profile TSOP5 and UDFN6 packages.
Features http://onsemi.com MARKING DIAGRAM
5 5 1 TSOP-5 SN SUFFIX CASE 483 GANAYWG G 1
* * * * * * * * * * * * * * * * * * *
Up to 93% Efficiency Allow Use of Small External Components Source up to 600 mA 3 MHz Switching Frequency Adjustable Output Voltage from 0.9 V to 3.3 V Synchronous Rectification for Higher Efficiency 2.7 V to 5.5 V Input Voltage Range Low Quiescent Current Shutdown Current Consumption of 0.3 mA Thermal Limit Protection Short Circuit Protection All Pins are Fully ESD Protected These are Pb-Free Devices Cellular Phones, Smart Phones and PDAs Digital Still/Video Cameras MP3 Players and Portable Audio Systems Wireless and DSL Modems Portable Equipment USB Powered Devices
VIN CIN 2 GND EN FB 4 R2 VIN L 1 VIN LX 5 COUT R1 Cff VOUT OFF ON
GAN = Specific Device Code A = Assembly Location Y = Year W = Work Week G = Pb-Free Package (Note: Microdot may be in either location) UDFN6 MU SUFFIX CASE 517AB
1 2 3
6 BRMG 5 G 4
BR = Specific Device Code M = Date Code G = Pb-Free Package (Note: Microdot may be in either location)
ORDERING INFORMATION
Device NCP1522BSNT1G NCP1522BMUTBG Package TSOP-5 (Pb-Free) UDFN6 (Pb-Free) Shipping 3000/T ape & Reel 3000/T ape & Reel
Typical Applications
For information on tape and reel specifications, including part orientation and tape sizes, please refer to our Tape and Reel Packaging Specification Brochure, BRD8011/D.
R2 1 EN FB 6 L 2 GND LX 3 VIN GND CIN 5 4 R1 Cff VOUT COUT
OFF ON
3
Figure 1. Typical Application - TSOP-5
(c) Semiconductor Components Industries, LLC, 2007
Figure 2. Typical Application - UDFN6
1 Publication Order Number: NCP1521B/D
May, 2007 - Rev. 0
NCP1522B
100 95 90 EFFICIENCY (%) 85 80 75 70 65 60 55 50 0 100 200 300 400 VOUT = 3.3 V VIN = 4.2 V TA = 25C 500 600
IOUT, OUTPUT CURRENT (mA)
Figure 3. Efficiency vs. Output Current
Q1 Vbattery Q2 VIN 1 PWM/PFM CONTROL LX 5 2.2 mH
4.7 mF
4.7 mF
GND 2
ILIMIT
R1
18 pF
Enable
EN 3
LOGIC CONTROL & THERMAL SHUTDOWN REFERENCE VOLTAGE
FB 4
R2
Figure 4. Simplified Block Diagram
http://onsemi.com
2
NCP1522B
PIN FUNCTION DESCRIPTION
Pin TSOP-5 1 2 3 4 5 Pin UDFN6 3 2, 4 1 6 5 Pin Name VIN GND EN FB LX Type Analog / Power Input Analog / Power Ground Digital Input Analog Input Analog Output Description Power supply input for the PFET power stage, analog and digital blocks. The pin must be decoupled to ground by a 10 mF ceramic capacitor. This pin is the GND reference for the NFET power stage and the analog section of the IC. The pin must be connected to the system ground. Enable for switching regulators. This pin is active HIGH and is turned off by logic LOW on this pin. Feedback voltage from the output of the power supply. This is the input to the error amplifier. Connection from power MOSFETs to the Inductor.
PIN CONNECTIONS
VIN GND EN 1 2 3 (Top View) 4 FB 5 LX EN GND VIN 1 2 3 6 5 4 FB LX GND
Figure 5. Pin Connections - TSOP-5
Figure 6. Pin Connections - UDFN6
MAXIMUM RATINGS
Rating Minimum Voltage All Pins Maximum Voltage All Pins (Note 2) Maximum Voltage EN, FB, LX Thermal Resistance, Junction-to-Air (with Recommended Soldering Footprint) Operating Ambient Temperature Range Storage Temperature Range Junction Operating Temperature Latchup Current Maximum Rating (TA = 85C) (Note 4) Other Pins ESD Withstand Voltage (Note 3) Human Body Model Machine Model Moisture Sensitivity Level (Note 5) TSOP-5 UDFN6 TA Tstg Tj Lu Vesd 2.0 200 MSL 1 kV V per IPC Symbol Vmin Vmax Vmax RqJA 300 260 -40 to 85 -55 to 150 -40 to 125 $100 C C C mA Value -0.3 7.0 VIN + 0.3 Unit V V V C/W
Stresses exceeding Maximum Ratings may damage the device. Maximum Ratings are stress ratings only. Functional operation above the Recommended Operating Conditions is not implied. Extended exposure to stresses above the Recommended Operating Conditions may affect device reliability. 1. Maximum electrical ratings are defined as those values beyond which damage to the device may occur at TA = 25C. 2. According to JEDEC standard JESD22-A108B. 3. This device series contains ESD protection and exceeds the following tests: Human Body Model (HBM) per JEDEC standard: JESD22-A114. Machine Model (MM) per JEDEC standard: JESD22-A115. 4. Latchup current maximum rating per JEDEC standard: JESD78. 5. JEDEC Standard: J-STD-020A.
http://onsemi.com
3
NCP1522B
ELECTRICAL CHARACTERISTICS (Typical values are referenced to TA = +25C, Min and Max values are referenced -40C to +85C ambient temperature, unless otherwise noted, operating conditions VIN = 3.6 V, VOUT = 1.2 V, unless otherwise noted.)
Pin Rating VIN PIN Input Voltage Range Quiescent Current, PFM No Switching Standby Current, EN Low Under Voltage Lockout (VIN Falling) EN PIN Positive Going Input High Voltage Threshold, EN0 Signal Negative Going Input High Voltage Threshold, EN0 Signal EN High Input Current, EN = 3.6 V OUTPUT Output Voltage Accuracy (Note 6) Ambient Temperature Overtemperature Range Minimum Output Voltage (Note 7) Maximum Output Voltage Output Voltage Load Regulation Overtemperature IOUT = 100 mA to 600 mA Load Transient Response, Rise/Falltime 1 ms 10 mA to 100 mA Load Step 200 mA to 600 mA Load Step Output Voltage Line Regulation, IOUT = 100 mA, VIN = 2.7 V to 5.5 V Line Transient Response, IOUT = 100 mA, 3.6 V to 3.0 V Line Step (Falltime=50 ms) Output Voltage Ripple, IOUT = 300 mA (PWM Mode) Output Voltage Ripple, IOUT = 0 mA (PFM Mode) Peak Inductor Current Oscillator Frequency Duty Cycle Soft-Start Time Thermal Shutdown Threshold Thermal Shutdown Hysteresis POWER SWITCHES P-Channel On-Resistance N-Channel On-Resistance P-Channel Leakage Current N-Channel Leakage Current RLxH RLxL ILeakH ILeakL 400 400 0.05 0.01 mW mW mA mA 5 5 5 5 5 5 DVOUT -3.0 VOUT VOUT VOUT VOUT VOUT VOUT VOUT VOUT ILIM FOSC TSTART TSD TSDH 2.4 2.0 1.0 8.0 1200 3.0 320 160 25 3.6 100 500 mV mV mA MHz % ms C C 0.08 mVPP 50 54 % 0.0008 mV $1.0 $2.0 0.9 3.3 % $3.0 V V %/mA 3 3 3 1 1 1 VIH VIL IENH 1.2 2.0 0.4 V V mA 1 1 1 1 3 3 3 3 VIN Iq ON Iq OFF VUVLO 2.7 2.2 50 0.2 2.4 5.5 90 1.5 2.55 V mA mA V TSOP UDFN Symbol Min Typ Max Unit
6. The overall output voltage tolerance depends upon the accuracy of the external resistor (R1, R2). 7. For VOUT = 0.9 V, maximum input voltage do not exceed 5.2 V.
http://onsemi.com
4
NCP1522B
TABLE OF GRAPHS
Typical Characteristics for Step-down Converter ISTB Iq VOUT Eff Freq VOUT VOUT VOUT VOUT VOUT VOUT 0.9 QUIESCENT CURRENT (mA) 0.8 STANDBY CURRENT (mA) 0.7 0.6 0.5 0.4 0.3 0.2 0.1 0 2.5 3.0 3.5 4.0 4.5 5.0 5.5 VIN, INPUT VOLTAGE (V) 44 2.5 3.0 3.5 4.0 4.5 5.0 5.5 VIN, INPUT VOLTAGE (V) Standby Current Quiescent Current, PFM No Switching Output Voltage Accuracy Efficiency Switching Frequency Soft-Start Short Circuit Protection Line Regulation Line Transient Load Regulation Load Transient vs. Input Voltage vs. Input Voltage vs. Temperature vs. Output Current vs. Input Voltage vs. Time vs. Time vs. Input Voltage vs. Time vs. Output Current vs. Time 56 54 52 50 48 46 Figure 7 8 9, 10 11, 12, 13 14 15 16 17, 18 19, 20 21, 22 23, 24, 25, 26
Figure 7. Shutdown Current vs. Supply Voltage
Figure 8. Quiescent Current PFM No Switching vs. Supply Voltage
http://onsemi.com
5
NCP1522B
3.0 2.0 ACCURACY (%) 1.0 0 -1.0 -2.0 -3.0 0 20 40 60 80 TEMPERATURE (C) 100 120
3.0 2.0
IOUT = 600 mA ACCURACY (%) IOUT = 200 mA IOUT = 20 mA
1.0 0 -1.0 -2.0 -3.0 0 20
VIN = 3.6 V
VIN = 2.7 V
VIN = 5.5 V
40
60
80
100
120
TEMPERATURE (C)
Figure 9. Output Voltage Accuracy vs. Temperature (VIN = 3.6 V, VOUT = 1.2 V)
Figure 10. Output Voltage Accuracy vs. Temperature (VOUT = 1.2 V, IOUT = 200 mA)
100 95 90
100 95
VOUT = 3.3 V VOUT = 1.8 V VOUT = 0.9 V EFFICIENCY (%)
90 85 80 75 70 65 60 55 50
VIN = 3.6 V
EFFICIENCY (%)
85 80 75 70 65 60 55 50 0 100 200 300 400 500 600
VIN = 5.5 V VIN = 2.7 V
0
100
200
300
400
500
600
IOUT, OUTPUT CURRENT (mA)
IOUT, OUTPUT CURRENT (mA)
Figure 11. Efficiency vs. Output Current (VIN = 3.6 V, TA = 255C)
Figure 12. Efficiency vs. Output Current (VOUT = 1.2 V, TA = 255C)
100 95 FREQUENCY (MHz) 90 EFFICIENCY (%) 85 80 75 70 65 60 55 50 0 100 200 300 400 500 IOUT, OUTPUT CURRENT (mA) 600 25C 85C -40 C
3.6 3.4 3.2 3 2.8 25C 2.6 2.4 2.5 85C -40 C
3
3.5 4 4.5 VIN, INPUT VOLTAGE (V)
5
5.5
Figure 13. Efficiency vs. Output Current (VIN = 3.6 V, VOUT = 1.2 V)
Figure 14. Switching Frequency vs. Input Voltage (VOUT = 1.2 V, IOUT = 300 mA)
http://onsemi.com
6
NCP1522B
VIN 2 V/div
VOUT 500 mV/div ILX 100 mV/div ILX 500 mV/div
Time 100 ms/div
VOUT 200 mV/div Time 10 ms/div
Figure 15. Typical Soft-Start (VOUT = 1.2 V, IOUT = 250 mA)
1 0.8 LINE REGULATION (%) LINE REGULATION (%) 0.6 0.4 0.2 0 -0.2 -0.4 -0.6 -0.8 -1 2.7 3.2 3.7 4.2 4.7 5.2 -40 C 85C 25C 1 0.8 0.6 0.4 0.2 0 -0.2 -0.4 -0.6 -0.8 -1 2.7
Figure 16. Short-Circuit Protection (VIN = 3.6 V, VOUT = 1.2 V)
IOUT = 1 mA IOUT = 600 mA
IOUT = 300 mA
3.2
3.7
4.2
4.7
5.2
VIN, INPUT VOLTAGE (V)
VIN, INPUT VOLTAGE (V)
Figure 17. Line Regulation (VOUT = 1.2 V, IOUT = 300 mA)
Figure 18. Line Regulation (VOUT = 1.2 V, TA = 255C)
VIN 0.5 V/div
VIN 0.5 V/div
VOUT 20 mV/div
VOUT 20 mV/div
Figure 19. 3.0 V to 3.6 V Line Transient (Risetime = 50 ms, VOUT = 1.2 V, IOUT = 100 mA, TA = 255C)
Figure 20. 3.6 V to 3.0 V Line Transient (Risetime = 50 ms, VOUT = 1.2 V, IOUT = 100 mA, TA = 255C)
http://onsemi.com
7
NCP1522B
3.0 LOAD REGULATION (%) LOAD REGULATION (%) 2.0 1.0 0.0 -1.0 -2.0 -3.0 0 100 200 300 400 500 IOUT, OUTPUT CURRENT (mA) 600 -40 C 3.0 2.0 VIN = 5.5 V 1.0 0.0 -1.0 VIN = 2.7 V -2.0 -3.0 0 100 200 300 400 500 IOUT, OUTPUT CURRENT (mA) 600 VIN = 3.6 V
25C 85C
Figure 21. Load Regulation (VIN = 3.6 V, VOUT = 1.2 V)
Figure 22. Load Regulation (VOUT = 1.2 V, TA = 255C)
IOUT 50 mA/div
VOUT 20 mV/div
VOUT 20 mV/div
IOUT 20 mA/div
Figure 23. 10 mA to 100 mA Load Transient (VIN = 3.6 V, VOUT = 1.2 V, TA = 255C)
Figure 24. 100 mA to 10 mA Load Transient (VIN = 3.6 V, VOUT = 1.2 V, TA = 255C)
VOUT 20 mV/div VOUT 20 mV/div
IOUT 200 mA/div
IOUT 200 mA/div
Figure 25. 200 mA to 600 mA Load Transient (VIN = 3.6 V, VOUT = 1.2 V, TA = 255C)
Figure 26. 600 mA to 200 mA Load Transient (VIN = 3.6 V, VOUT = 1.2 V, TA = 255C)
http://onsemi.com
8
NCP1522B
DC/DC OPERATION DESCRIPTION
Detailed Description
The NCP1522B uses a constant frequency, voltage mode step-down architecture. Both the main (P-Channel MOSFET) and synchronous (N-Channel MOSFET) switches are internal. The output voltage is set by an external resistor divider in the range of 0.9 V to 3.3 V and can source at least 600 mA. The NCP1522B works with two modes of operation; PWM/PFM depending on the current required. In PWM mode, the device can supply voltage with a tolerance of "3% and 90% efficiency or better. Lighter load currents cause the device to automatically switch into PFM mode to reduce current consumption and extended battery life. Additional features include soft-start, undervoltage protection, current overload protection, and thermal shutdown protection. As shown in Figure 1, only six external components are required. The part uses an internal reference voltage of 0.6 V. It is recommended to keep NCP1522B in shutdown mode until the input voltage is 2.7 V or higher.
PWM Operating Mode
VOUT 10 mV/div
ILx 100 mA/div
VLx 2 V/div
200 ns/div
Figure 27. PWM Switching Waveform (VIN = 3.6 V, VOUT = 1.2 V, IOUT = 600 mA) PFM Operating Mode
In this mode, the output voltage of the device is regulated by modulating the on-time pulse width of the main switch Q1 at a fixed 3 MHz frequency. The switching of the PMOS Q1 is controlled by a flip-flop driven by the internal oscillator and a comparator that compares the error signal from an error amplifier with the sum of the sensed current signal and compensation ramp. The driver switches ON and OFF the upper side transistor (Q1) and switches the lower side transistor in either ON state or in current source mode. At the beginning of each cycle, the main switch Q1 is turned ON by the rising edge of the internal oscillator clock. The inductor current ramps up until the sum of the current sense signal and compensation ramp becomes higher than the error amplifier's voltage. Once this has occurred, the PWM comparator resets the flip-flop, Q1 is turned OFF while the synchronous switch Q2 is turned in its current source mode. Q2 replaces the external Schottky diode to reduce the conduction loss and improve the efficiency. To avoid overall power loss, a certain amount of dead time is introduced to ensure Q1 is completely turned OFF before Q2 is being turned ON.
Under light load conditions, the NCP1522B enters in low current PFM mode operation to reduce power consumption. The output regulation is implemented by pulse frequency modulation. If the output voltage drops below the threshold of PFM comparator, a new cycle will be initiated by the PFM comparator to turn on the switch Q1. Q1 remains ON during the minimum on time of the structure while Q2 is in its current source mode. The peak inductor current depends upon the drop between input and output voltage. After a short dead time delay where Q1 is switched OFF, Q2 is turned in its ON state. The negative current detector will detect when the inductor current drops below zero and sends the signal to turn Q2 to current source mode to prevent a too large deregulation of the output voltage. When the output voltage falls below the threshold of the PFM comparator, a new cycle starts immediately.
Vout
VLx
Figure 28. PFM Switching Waveforms (VIN = 3.6 V, VOUT = 1.2 V, IOUT = 0 mA, Temp = 25_C)
http://onsemi.com
9
NCP1522B
Soft-Start Undervoltage Lockout
The NCP1522B uses soft-start to limit the inrush current when the device is initially powered up or enabled. Soft-start is implemented by gradually increasing the reference voltage until it reaches the full reference voltage. During startup, a pulsed current source charges the internal soft-start capacitor to provide gradually increasing reference voltage. When the voltage across the capacitor ramps up to the nominal reference voltage, the pulsed current source will be switched off and the reference voltage will switch to the regular reference voltage.
Cycle-by-Cycle Current Limitation
The input voltage VIN must reach 2.4 V (typ) before the NCP1522B enables the DC/DC converter output to begin the start up sequence (see Soft-Start section). The UVLO threshold hysteresis is typically 100 mV.
Shutdown Mode
From the block diagram, an ILIM comparator is used to realize cycle-by-cycle current limit protection. The comparator compares the LX pin voltage with the reference voltage, which is biased by a constant current. If the inductor current reaches the limit, the ILIM comparator detects the LX voltage falling below the reference voltage and releases the signal to turn off the switch Q1. The cycle-by-cycle current limit is set at 1200 mA (nom).
Low Dropout Operation
Forcing this pin to a voltage below 0.4 V will shut down the IC. In shutdown mode, the internal reference, oscillator and most of the control circuitries are turned off. Therefore, the typical current consumption will be 0.3 mA (typical value). Applying a voltage above 1.2 V to EN pin will enable the device for normal operation. The typical threshold is around 0.7 V. The device will go through soft-start to normal operation.
Thermal Shutdown
The NCP1522B offers a low input to output voltage difference. The NCP1522B can operate at 100% duty cycle. In this mode the PMOS (Q1) remains completely on. The minimum input voltage to maintain regulation can be calculated as:
VIN(min) + VOUT(max) ) (IOUT (RDS(ON) ) RINDUCTOR))
(eq. 1)
Internal Thermal Shutdown circuitry is provided to protect the integrated circuit in the event that the maximum junction temperature is exceeded. If the junction temperature exceeds 160C, the device shuts down. In this mode switch Q1 and Q2 and the control circuits are all turned off. The device restarts in soft-start after the temperature drops below 135C. This feature is provided to prevent catastrophic failures from accidental device overheating, and it is not intended as a substitute for proper heatsinking.
Short Circuit Protection
* * * *
VOUT: Output Voltage (Volts) IOUT: Max Output Current RDS(ON) = P-Channel Switch RDS(ON) RINDUCTOR: Inductor Resistance (DCR)
When the output is shorted to ground, the device limits the inductor current. The duty-cycle is minimum and the consumption on the input line is 300 mA (Typ). When the short circuit condition is removed, the device returns to the normal mode of operation.
http://onsemi.com
10
NCP1522B
APPLICATION INFORMATION
Output Voltage Selection
The corner frequency is given by:
fc + 1 2p L COUT + 1 2p 2.2 mH 4.7 mF + 49 kHz
(eq. 3)
The output voltage is programmed through an external resistor divider connected from VOUT to FB then to GND. For low power consumption and noise immunity, the resistor from FB to GND (R2) should be in the [100 k-600 k] range. If R2 is 200 k given the VFB is 0.6 V, the current through the divider will be 3.0 mA. The formula below gives the value of VOUT, given the desired R1 and the R1 value:
VOUT + VFB (1 ) R1) R2
(eq. 2)
* * * *
The device is intended to operate with inductance value of 2.2 mH. If the corner frequency is moved, it is recommended to check the loop stability depending on the accepted output ripple voltage and the required output curret. Take care to check the loop stability. The phase margin is usually higher than 45.
Table 2. L-C Filter Example
Inductance (L) 1.0 2.2 Output Capacitor (COUT) 10 4.7
VOUT: Output Voltage (Volts) VFB: Feedback Voltage = 0.6 V R1: Feedback Resistor from VOUT to FB R2: Feedback Resistor from FB to GND
mH mH
mF mF
Input Capacitor Selection
In PWM operating mode, the input current is pulsating with a large switching noise. Using an input bypass capacitor can reduce the peak current transients drawn from the input supply source, thereby reducing switching noise significantly. The capacitance needed for the input bypass capacitor depends on the source impedance of the input supply. The maximum RMS current occurs at 50% duty cycle with maximum output current, which is Iout_max/2. For NCP1522B, a low profile ceramic capacitor of 4.7 mF should be used for most of the cases. For effective bypass results, the input capacitor should be placed as close as possible to the VIN pin.
Table 1. List of Input Capacitors
GRM188R60J475KE Murata Taiyo Yuden TDK C1632X5ROJ475KT GRM21BR71C475KA JMK212BY475MG C2012X5ROJ475KB 4.7 mF 4.7 mF 4.7 mF
Inductor Selection
The inductor parameters directly related to device performances are saturation current and DC resistance and inductance value. The inductor ripple current (DIL) decreases with higher inductance:
V V DIL + OUT 1- OUT L fSW VIN
(eq. 4)
* DIL: Peak to Peak Inductor Ripple Current * L: Inductor Value * fSW: Switching Frequency
The saturation current of the inductor should be rated higher than the maximum load current plus half the ripple current:
DI IL(MAX) + IO(MAX) ) L 2
(eq. 5)
* DIL(MAX): Maximum Inductor Current * DIO(MAX): Maximum Output Current
The inductor's resistance will factor into the overall efficiency of the converter. For best performance, the DC resistance should be less than 0.3 W for good efficiency.
Table 3. LIST OFINDUCTORS
DO1605-T Series Coilcraft FDK TDK Taiyo Yuden LPO3010 Series MIPW3226 Series VLF3010AT Series LQ CBL2012 Series
Output L-C Filter Design Considerations
The NCP1522B operates at 3 MHz frequency and uses voltage mode architecture. The correct selection of the output filter ensures good stability and fast transient response. Due to the nature of the buck converter, the output L-C filter must be selected to work with internal compensation. For NCP1522B, the internal compensation is internally fixed and it is optimized for an output filter of L = 2.2 mH and COUT = 4.7 mF.
http://onsemi.com
11
NCP1522B
Output Capacitor Selection
Selecting the proper output capacitor is based on the desired output ripple voltage. Ceramic capacitors with low ESR values will have the lowest output ripple voltage and are strongly recommended. The output capacitor requires an X7R dielectric. The output ripple voltage in PWM mode is given by:
DVOUT + DIL 4 1 ) ESR fSW COUT
(eq. 6)
Table 4. LIST OF OUTPUT CAPACITORS
GRM188R60J475KE GRM21BR71C475KA Murata GRM188R60OJ106ME GRM21BR60J106ME19L JMK212BY475MG Taiyo Yuden JMK212BJ106MG C2012X5ROJ475KB TDK C1632X5ROJR75KT C2012X5ROJ106K 4.7 mF
10 mF 4.7 mF 10 mF 4.7 mF 10 mF
* * * * *
DVOUT: Output Voltage Ripple in PWM Mode DIL: Peak to Peak Inductor Ripple Current fSW: Switching Frequency COUT: Output Capacitor ESR: Output Capacitor Serial Resistor
Feed-Forward Capacitor Selection
The feed-forward capacitor sets the feedback loop response and is critical to obtain good loop stability. Given that the compensation is internally fixed, an 18 pF or higher ceramic capacitor is needed. Choose a small ceramic capacitor X7R dielectric.
http://onsemi.com
12
NCP1522B
PACKAGE DIMENSIONS
TSOP-5 CASE 483-02 ISSUE G
NOTES: 1. DIMENSIONING AND TOLERANCING PER ASME Y14.5M, 1994. 2. CONTROLLING DIMENSION: MILLIMETERS. 3. MAXIMUM LEAD THICKNESS INCLUDES LEAD FINISH THICKNESS. MINIMUM LEAD THICKNESS IS THE MINIMUM THICKNESS OF BASE MATERIAL. 4. DIMENSIONS A AND B DO NOT INCLUDE MOLD FLASH, PROTRUSIONS, OR GATE BURRS. 5. OPTIONAL CONSTRUCTION: AN ADDITIONAL TRIMMED LEAD IS ALLOWED IN THIS LOCATION. TRIMMED LEAD NOT TO EXTEND MORE THAN 0.2 FROM BODY. DIM A B C D G H J K L M S MILLIMETERS MIN MAX 3.00 BSC 1.50 BSC 0.90 1.10 0.25 0.50 0.95 BSC 0.01 0.10 0.10 0.26 0.20 0.60 1.25 1.55 0_ 10 _ 2.50 3.00
NOTE 5 2X
D 5X 0.20 C A B M
0.10 T 0.20 T L G A
5 1 2 4 3
2X
B
S K
DETAIL Z
DETAIL Z
J C 0.05 H T
SEATING PLANE
SOLDERING FOOTPRINT*
1.9 0.074
0.95 0.037
2.4 0.094 1.0 0.039 0.7 0.028
SCALE 10:1
mm inches
*For additional information on our Pb-Free strategy and soldering details, please download the ON Semiconductor Soldering and Mounting Techniques Reference Manual, SOLDERRM/D.
http://onsemi.com
13
NCP1522B
PACKAGE DIMENSIONS
UDFN6 2x2, 0.65P CASE 517AB-01 ISSUE A
D A B
NOTES: 1. DIMENSIONING AND TOLERANCING PER ASME Y14.5M, 1994. 2. CONTROLLING DIMENSION: MILLIMETERS. 3. DIMENSION b APPLIES TO PLATED TERMINAL AND IS MEASURED BETWEEN 0.15 AND 0.20mm FROM TERMINAL. 4. COPLANARITY APPLIES TO THE EXPOSED PAD AS WELL AS THE TERMINALS. DIM A A1 A3 b D D2 E E2 e K L MILLIMETERS MIN MAX 0.45 0.55 0.00 0.05 0.127 REF 0.25 0.35 2.00 BSC 1.50 1.70 2.00 BSC 0.80 1.00 0.65 BSC 0.20 --0.35 0.25
PIN ONE REFERENCE
E
2X
0.10 C
2X
0.10 C
0.10 C A
6X
0.08 C
6X
L
1 3
6X
K
The products described herein (NCP1522B), may be covered by one or more of the following U.S. patent(s); TBD. There may be other patents pending.
ON Semiconductor and are registered trademarks of Semiconductor Components Industries, LLC (SCILLC). SCILLC reserves the right to make changes without further notice to any products herein. SCILLC makes no warranty, representation or guarantee regarding the suitability of its products for any particular purpose, nor does SCILLC assume any liability arising out of the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation special, consequential or incidental damages. "Typical" parameters which may be provided in SCILLC data sheets and/or specifications can and do vary in different applications and actual performance may vary over time. All operating parameters, including "Typicals" must be validated for each customer application by customer's technical experts. SCILLC does not convey any license under its patent rights nor the rights of others. SCILLC products are not designed, intended, or authorized for use as components in systems intended for surgical implant into the body, or other applications intended to support or sustain life, or for any other application in which the failure of the SCILLC product could create a situation where personal injury or death may occur. Should Buyer purchase or use SCILLC products for any such unintended or unauthorized application, Buyer shall indemnify and hold SCILLC and its officers, employees, subsidiaries, affiliates, and distributors harmless against all claims, costs, damages, and expenses, and reasonable attorney fees arising out of, directly or indirectly, any claim of personal injury or death associated with such unintended or unauthorized use, even if such claim alleges that SCILLC was negligent regarding the design or manufacture of the part. SCILLC is an Equal Opportunity/Affirmative Action Employer. This literature is subject to all applicable copyright laws and is not for resale in any manner.
PUBLICATION ORDERING INFORMATION
LITERATURE FULFILLMENT: Literature Distribution Center for ON Semiconductor P.O. Box 5163, Denver, Colorado 80217 USA Phone: 303-675-2175 or 800-344-3860 Toll Free USA/Canada Fax: 303-675-2176 or 800-344-3867 Toll Free USA/Canada Email: orderlit@onsemi.com N. American Technical Support: 800-282-9855 Toll Free USA/Canada Europe, Middle East and Africa Technical Support: Phone: 421 33 790 2910 Japan Customer Focus Center Phone: 81-3-5773-3850 ON Semiconductor Website: www.onsemi.com Order Literature: http://www.onsemi.com/orderlit For additional information, please contact your loca Sales Representative
II II
A3 A1 D2 e E2
6 4 6X
SOLDERING FOOTPRINT*
6X
C
SEATING PLANE
0.95
1
0.47
6X
0.40
4X
1.70
BOTTOM VIEW
b 0.10 C A 0.05 C
0.65 PITCH B 2.30
DIMENSIONS: MILLIMETERS
NOTE 3
*For additional information on our Pb-Free strategy and soldering details, please download the ON Semiconductor Soldering and Mounting Techniques Reference Manual, SOLDERRM/D.
http://onsemi.com
14
NCP1522B/D


▲Up To Search▲   

 
Price & Availability of NCP1522BSNT1G

All Rights Reserved © IC-ON-LINE 2003 - 2022  

[Add Bookmark] [Contact Us] [Link exchange] [Privacy policy]
Mirror Sites :  [www.datasheet.hk]   [www.maxim4u.com]  [www.ic-on-line.cn] [www.ic-on-line.com] [www.ic-on-line.net] [www.alldatasheet.com.cn] [www.gdcy.com]  [www.gdcy.net]


 . . . . .
  We use cookies to deliver the best possible web experience and assist with our advertising efforts. By continuing to use this site, you consent to the use of cookies. For more information on cookies, please take a look at our Privacy Policy. X