lm2679 Adj TO 220
lm2679 Adj TO 220
LM2679
SNVS026O – MARCH 2000 – REVISED JUNE 2016
Typical Application
Feedback
0.01 PF
Input
VIN
Voltage Boost Output
LM2679 - 5.0 L
8V to 40V 0.47 PF Voltage
CIN + + + Switch
22 PH 5V/5A
3 x 15 PF/50V Softstart Current Ground Output + + C
OUT
Limit 6TQ045S
5.6k 2 x 180 PF/16V
1 nF Adjust
37,125
I CL =
RADJ Copyright © 2016, Texas Instruments Incorporated
An IMPORTANT NOTICE at the end of this data sheet addresses availability, warranty, changes, use in safety-critical applications,
intellectual property matters and other important disclaimers. PRODUCTION DATA.
LM2679
SNVS026O – MARCH 2000 – REVISED JUNE 2016 www.ti.com
Table of Contents
1 Features .................................................................. 1 7.3 Feature Description................................................... 9
2 Applications ........................................................... 1 7.4 Device Functional Modes........................................ 10
3 Description ............................................................. 1 8 Application and Implementation ........................ 11
4 Revision History..................................................... 2 8.1 Application Information............................................ 11
8.2 Typical Application .................................................. 14
5 Pin Configuration and Functions ......................... 3
6 Specification........................................................... 4 9 Power Supply Recommendations...................... 26
6.1 Absolute Maximum Ratings ...................................... 4 10 Layout................................................................... 26
6.2 ESD Ratings.............................................................. 4 10.1 Layout Guidelines ................................................. 26
6.3 Recommended Operating Conditions....................... 4 10.2 Layout Example .................................................... 27
6.4 Thermal Information .................................................. 5 11 Device and Documentation Support ................. 28
6.5 Electrical Characteristics – 3.3 V .............................. 5 11.1 Related Documentation......................................... 28
6.6 Electrical Characteristics – 5 V ................................. 5 11.2 Receiving Notification of Documentation Updates 28
6.7 Electrical Characteristics – 12 V ............................... 6 11.3 Community Resources.......................................... 28
6.8 Electrical Characteristics – Adjustable...................... 6 11.4 Trademarks ........................................................... 28
6.9 Electrical Characteristics – All Output Voltage 11.5 Electrostatic Discharge Caution ............................ 28
Versions ..................................................................... 6 11.6 Glossary ................................................................ 28
6.10 Typical Characteristics ............................................ 7 12 Mechanical, Packaging, and Orderable
7 Detailed Description .............................................. 9 Information ........................................................... 28
7.1 Overview ................................................................... 9 12.1 VSON Package Devices ....................................... 28
7.2 Functional Block Diagram ......................................... 9
4 Revision History
NOTE: Page numbers for previous revisions may differ from page numbers in the current version.
• Added ESD Ratings table, Feature Description section, Device Functional Modes, Application and Implementation
section, Power Supply Recommendations section, Layout section, Device and Documentation Support section, and
Mechanical, Packaging, and Orderable Information section. ................................................................................................. 1
• Removed all references to Computer Design Software LM267X Made Simple (Version 6.0).............................................. 1
KTW Package
7-Pin TO-263 NDZ Package
Top View 7-Pin TO-220
Top View
Not to scale
7 SS
6 FB
5 Current_adjust
4 GND
3 CB
2 Input
1
2
3
4
5
6
7
1 Switch_output
Not to scale
Switch_output
Input
CB
GND
Current_adjust
FB
SS
NHM Package
14-Pin VSON
Top View
NC 1 14 Switch_output
Input 2 13 Switch_output
Input 3 12 Switch_output
CB 4 DAP 11 NC
NC 5 10 NC
Current_adjust 6 9 GND
FB 7 8 SS
Not to scale
Pin Functions
PIN
I/O DESCRIPTION
NAME TO-263, TO-220 VSON
Source pin of the internal high side FET. This is a switching node. Attached
Switch output 1 12, 13, 14 O
this pin to an inductor and the cathode of the external diode.
Supply input pin to collector pin of high side FET. Connect to power supply
Input 2 2, 3 I and input bypass capacitors CIN. Path from VIN pin to high frequency
bypass CIN and GND must be as short as possible.
Boot-strap capacitor connection for high-side driver. Connect a high quality
CB 3 4 I
100-nF capacitor from CB to VSW pin.
Power ground pins. Connect to system ground. Ground pins of CIN and
GND 4 9 —
COUT. Path to CIN must be as short as possible.
Current limit adjust pin. Connect a resistor from this pin to GND to set the
Current adjust 5 6 I
current limit of the part.
Feedback sense input pin. Connect to the midpoint of feedback divider to
FB 6 7 I set VOUT for adjustable version or connect this pin directly to the output
capacitor for a fixed output version.
Soft-start pin. Connect a capacitor from this pin to GND to control the output
SS 7 8 I
voltage ramp. If the feature not desired, the pin can be left floating
NC — 1, 5, 10, 11 — No connect pins
6 Specification
6.1 Absolute Maximum Ratings
over operating free-air temperature range (unless otherwise noted) (1) (2)
MIN MAX UNIT
Input supply voltage 45 V
Soft-start pin voltage –0.1 6 V
Switch voltage to ground (3) –1 VIN V
Boost pin voltage VSW + 8 V V
Feedback pin voltage –0.3 14 V
Power dissipation Internally limited
Wave (4 s) 260
Soldering temperature Infrared (10 s) 240 °C
Vapor phase (75 s) 219
Storage Temperature, Tstg –65 150 °C
(1) Stresses beyond those listed under Absolute Maximum Ratings may cause permanent damage to the device. These are stress ratings
only, which do not imply functional operation of the device at these or any other conditions beyond those indicated under Recommended
Operating Conditions. Exposure to absolute-maximum-rated conditions for extended periods may affect device reliability.
(2) If Military/Aerospace specified devices are required, please contact the Texas Instruments Sales Office/Distributors for availability and
specifications.
(3) The absolute maximum specification of the switch voltage to ground applies to DC voltage. An extended negative voltage limit of –10 V
applies to a pulse of up to 20 ns, –6 V of 60 ns and –3 V of up to 100 ns.
(1) JEDEC document JEP155 states that 500-V HBM allows safe manufacturing with a standard ESD control process.
(2) ESD was applied using the human-body model, a 100-pF capacitor discharged through a 1.5-kΩ resistor into each pin.
(1) For more information about traditional and new thermal metrics, see the Semiconductor and IC Package Thermal Metrics application
report.
(2) Junction to ambient thermal resistance (no external heat sink) for the 7-lead TO-220 package mounted vertically, with ½ inch leads in a
socket, or on a PCB with minimum copper area.
(3) Junction to ambient thermal resistance (no external heat sink) for the 7-lead TO-220 package mounted vertically, with ½ inch leads
soldered to a PCB containing approximately 4 square inches of (1 oz.) copper area surrounding the leads.
(4) Junction to ambient thermal resistance for the 7-lead DDPAK mounted horizontally against a PCB area of 0.136 square inches (the
same size as the DDPAK package) of 1 oz. (0.0014 in. thick) copper.
(5) Junction to ambient thermal resistance for the 7-lead DDPAK mounted horizontally against a PCB area of 0.4896 square inches
(3.6 times the area of the DDPAK package) of 1 oz. (0.0014 in. thick) copper.
(6) Junction to ambient thermal resistance for the 7-lead DDPAK mounted horizontally against a PCB copper area of 1.0064 square inches
(7.4 times the area of the DDPAK 3 package) of 1 oz. (0.0014 in. thick) copper. Additional copper area reduces thermal resistance
further.
(7) Junction to ambient thermal resistance for the 14-lead VSON mounted on a PCB copper area equal to the die attach paddle.
(8) Junction to ambient thermal resistance for the 14-lead VSON mounted on a PCB copper area using 12 vias to a second layer of copper
equal to die attach paddle. Additional copper area reduces thermal resistance further. For layout recommendations, see AN-1187
Leadless Leadfram Package (LLP).
(1) All room temperature limits are 100% tested during production with TA = TJ = 25°C. All limits at temperature extremes are specified
through correlation using standard Quality Control (SQC) methods. All limits are used to calculate Average Outgoing Quality Level
(AOQL).
(2) Typical values are determined with TA = TJ = 25°C and represent the most likely norm.
(1) All room temperature limits are 100% tested during production with TA = TJ = 25°C. All limits at temperature extremes are specified
through correlation using standard Quality Control (SQC) methods. All limits are used to calculate Average Outgoing Quality Level
(AOQL).
(2) Typical values are determined with TA = TJ = 25°C and represent the most likely norm.
(1) All room temperature limits are 100% tested during production with TA = TJ = 25°C. All limits at temperature extremes are specified
through correlation using standard Quality Control (SQC) methods. All limits are used to calculate Average Outgoing Quality Level
(AOQL).
(2) Typical values are determined with TA = TJ = 25°C and represent the most likely norm.
(1) All room temperature limits are 100% tested during production with TA = TJ = 25°C. All limits at temperature extremes are specified
through correlation using standard Quality Control (SQC) methods. All limits are used to calculate Average Outgoing Quality Level
(AOQL).
(2) Typical values are determined with TA = TJ = 25°C and represent the most likely norm.
(1) The peak switch current limit is determined by the following relationship: ICL = 37,125 / RADJ
Continuous Mode Switching Waveforms VIN = 20 V, VOUT = 5 V, Discontinuous Mode Switching Waveforms VIN = 20 V, VOUT = 5 V,
ILOAD = 5 A, L = 10 μH, COUT = 400 μF, COUTESR = 13 mΩ ILOAD = 500 mA, L = 10 μH, COUT = 400 μF, COUTESR = 13 mΩ
A. VSW pin voltage, 10 V/div A. VSW pin voltage, 10 V/div
B. Inductor current, 2 A/div B. Inductor current, 1 A/div
C. Output ripple voltage, 20 mV/div AC-coupled C. Output ripple voltage, 20 mV/div AC-coupled
Figure 9. Horizontal Time Base: 1 μs/div Figure 10. Horizontal Time Base: 1 μs/div
Load Transient Response for Continuous Mode VIN = 20 V, Load Transient Response for Discontinuous Mode VIN = 20 V,
VOUT = 5 V, L = 10 μH, COUT = 400 μF, COUTESR = 13 mΩ VOUT = 5 V, L = 10 μH, COUT = 400 μF, COUTESR = 13 mΩ
A. Output voltage, 100 mV/div, AC-coupled A. Output voltage, 100 mV/div, AC-coupled
B. Load current: 500-mA to 5-A load pulse B. Load current: 200-mA to 3-A load pulse
Figure 11. Horizontal Time Base: 100 μs/div Figure 12. Horizontal Time Base: 200 μs/div
7 Detailed Description
7.1 Overview
The LM2679 provides all of the active functions required for a step-down (buck) switching regulator. The internal
power switch is a DMOS power MOSFET to provide power supply designs with high current capability, up to 5 A,
and highly efficient operation.
The LM2679 is part of the SIMPLE SWITCHER® family of power converters. A complete design uses a minimum
number of external components, which have been predetermined from a variety of manufacturers. The software
is provided free of charge and can be downloaded from Texas Instruments Internet site: www.ti.com.
7.3.3 C Boost
A capacitor must be connected from pin 3 to the switch output, pin 1. This capacitor boosts the gate drive to the
internal MOSFET above VIN to fully turn it ON. This minimizes conduction losses in the power switch to maintain
high efficiency. The recommended value for C Boost is 0.01 μF.
7.3.4 Ground
This is the ground reference connection for all components in the power supply. In fast-switching, high-current
applications such as those implemented with the LM2679, TI recommends that a broad ground plane be used to
minimize signal coupling throughout the circuit.
7.3.6 Feedback
This is the input to a two-stage high gain amplifier, which drives the PWM controller. It is necessary to connect
pin 6 to the actual output of the power supply to set the DC output voltage. For the fixed output devices (3.3-V,
5-V and 12-V outputs), a direct wire connection to the output is all that is required as internal gain setting
resistors are provided inside the LM2679. For the adjustable output version two external resistors are required to
set the DC output voltage. For stable operation of the power supply it is important to prevent coupling of any
inductor flux to the feedback input.
NOTE
Information in the following applications sections is not part of the TI component
specification, and TI does not warrant its accuracy or completeness. TI’s customers are
responsible for determining suitability of components for their purposes. Customers should
validate and test their design implementation to confirm system functionality.
8.1.2 Inductor
The inductor is the key component in a switching regulator. For efficiency the inductor stores energy during the
switch ON time and then transfers energy to the load while the switch is OFF.
Nomographs are used to select the inductance value required for a given set of operating conditions. The
nomographs assume that the circuit is operating in continuous mode (the current flowing through the inductor
never falls to zero). The magnitude of inductance is selected to maintain a maximum ripple current of 30% of the
maximum load current. If the ripple current exceeds this 30% limit the next larger value is selected.
The inductors offered have been specifically manufactured to provide proper operation under all operating
conditions of input and output voltage and load current. Several part types are offered for a given amount of
inductance. Both surface mount and through-hole devices are available. The inductors from each of the three
manufacturers have unique characteristics:
• Renco: ferrite stick core inductors; benefits are typically lowest cost and can withstand ripple and transient
peak currents above the rated value. These inductors have an external magnetic field, which may generate
EMI.
• Pulse Engineering: powdered iron toroid core inductors; these also can withstand higher than rated currents
and, being toroid inductors, have low EMI.
• Coilcraft: ferrite drum core inductors; these are the smallest physical size inductors and are available only as
surface mount components. These inductors also generate EMI but less than stick inductors.
where
• ISST = Soft-start current (3.7 μA typical)
• tSS = Soft-start time (from Detailed Design Procedure)
• VSST = Soft-start threshold voltage (0.63 V typical)
• VOUT = Output voltage (from Detailed Design Procedure)
• VSCHOTTKY = Schottky diode voltage drop (0.5 V typical)
• VIN = Maximum input voltage (from Detailed Design Procedure) (1)
If this feature is not desired, leave the soft-start pin (pin 7) open circuited.
With certain soft-start capacitor values and operating conditions, the LM2679 can exhibit an overshoot on the
output voltage during turnon. Especially when starting up into no load or low load, the soft-start function may not
be effective in preventing a larger voltage overshoot on the output. With larger loads or lower input voltages
during start-up this effect is minimized. In particular, avoid using soft-start capacitors between 0.033 µF and 1 µF.
0.01 PF
Input
VIN
Voltage Boost Output
LM2679 - 5.0 L
8V to 40V 0.47 PF Voltage
CIN + + + Switch
22 PH 5V/5A
3 x 15 PF/50V Softstart Current Ground Output + + C
OUT
Limit 6TQ045S
5.6k 2 x 180 PF/16V
1 nF Adjust
37,125
I CL =
RADJ Copyright © 2016, Texas Instruments Incorporated
Step 7: A 0.01-μF capacitor is used for CBOOST. For the 50-ms soft-start delay the following parameters are to be
used:
• ISST = 3.7 μA
• tSS = 50 ms
• VSST = 0.63 V
• VOUT = 3.3 V
• VSCHOTTKY = 0.5 V
• VIN = 16 V
Using VIN max ensures that the soft-start delay time is at least the desired 50 ms.
Using the formula for CSS a value of 0.148 μF is determined to be required. Use of a standard value 0.22-μF
capacitor produces more than sufficient soft-start delay.
Step 8: Determine a value for RADJ with Equation 2 to provide a peak switch current limit of at least 4 A plus 50%
or 6 A.
(2)
Use a value of 6.2 kΩ.
Table 5. Output Capacitors for Fixed Output Voltage Application—Surface Mount (1) (2)
SURFACE MOUNT
OUTPUT VOLTAGE (V) INDUCTANCE (µH) AVX TPS SERIES SPRAGUE 594D SERIES KEMET T495 SERIES
NO. C CODE NO. C CODE NO. C CODE
10 5 C1 5 C1 5 C2
15 4 C1 4 C1 4 C3
3.3
22 3 C2 2 C7 3 C4
33 1 C1 2 C7 3 C4
10 4 C2 4 C6 4 C4
15 3 C3 2 C7 3 C5
5 22 3 C2 2 C7 3 C4
33 2 C2 2 C3 2 C4
47 2 C2 1 C7 2 C4
10 4 C5 3 C6 5 C9
15 3 C5 2 C7 4 C9
22 2 C5 2 C6 3 C8
12 33 2 C5 1 C7 3 C8
47 2 C4 1 C6 2 C8
68 1 C5 1 C5 2 C7
100 1 C4 1 C5 1 C8
(1) No. represents the number of identical capacitor types to be connected in parallel.
(2) C Code indicates the Capacitor Reference number in Table 1 and Table 2 for identifying the specific component from the manufacturer.
Table 6. Output Capacitors for Fixed Output Voltage Application—Through Hole (1) (2)
THROUGH HOLE
OUTPUT VOLTAGE SANYO OS-CON SANYO MV-GX NICHICON PL PANASONIC HFQ
INDUCTANCE (µH)
(V) SA SERIES SERIES SERIES SERIES
NO. C CODE NO. C CODE NO. C CODE NO. C CODE
10 2 C5 2 C6 1 C8 2 C6
15 2 C5 2 C5 1 C7 2 C5
3.3
22 1 C5 1 C10 1 C5 1 C7
33 1 C5 1 C10 1 C5 1 C7
10 2 C4 2 C5 1 C6 2 C5
15 1 C5 1 C10 1 C5 1 C7
5 22 1 C5 1 C9 1 C5 1 C5
33 1 C4 1 C5 1 C4 1 C4
47 1 C4 1 C4 1 C2 2 C4
10 2 C7 1 C10 1 C14 2 C4
15 1 C8 1 C6 1 C17 1 C5
22 1 C7 1 C5 1 C13 1 C5
12 33 1 C7 1 C4 1 C12 1 C4
47 1 C7 1 C3 1 C11 1 C3
68 1 C6 1 C2 1 C10 1 C3
100 1 C6 1 C2 1 C9 1 C1
(1) No. represents the number of identical capacitor types to be connected in parallel.
(2) C Code indicates the Capacitor Reference number in Table 1 and Table 2 for identifying the specific component from the manufacturer.
Table 7. Input Capacitors for Fixed Output Voltage Application—Surface Mount (1) (2) (3)
SURFACE MOUNT
OUTPUT VOLTAGE (V) INDUCTANCE (µH) AVX TPS SERIES SPRAGUE 594D SERIES KEMET T495 SERIES
NO. C CODE NO. C CODE NO. C CODE
10 3 C7 2 C10 3 C9
(4) (4)
15 See See 3 C13 4 C12
3.3
22 See (4) See (4) 2 C13 3 C12
33 See (4) See (4) 2 C13 3 C12
10 3 C4 2 C6 3 C9
15 4 C9 3 C12 4 C10
5 22 See (4) See (4) 3 C13 4 C12
33 See (4) See (4) 2 C13 3 C12
(4) (4)
47 See See 1 C13 2 C12
10 4 C9 2 C10 4 C10
15 4 C8 2 C10 4 C10
22 4 C9 3 C12 4 C10
12 33 See (4) See (4) 3 C13 4 C12
47 See (4) See (4) 2 C13 3 C12
68 See (4) See (4) 2 C13 2 C12
(4) (4)
100 See See 1 C13 2 C12
(1) No. represents the number of identical capacitor types to be connected in parallel.
(2) C Code indicates the Capacitor Reference number in Table 1 and Table 2 for identifying the specific component from the manufacturer.
(3) Assumes worst case maximum input voltage and load current for a given inductance value
(4) Check voltage rating of capacitors to be greater than application input voltage.
Table 8. Input Capacitors for Fixed Output Voltage Application—Through Hole (1) (2) (3)
THROUGH HOLE
OUTPUT VOLTAGE SANYO OS-CON SANYO MV-GX NICHICON PL PANASONIC HFQ
INDUCTANCE (µH)
(V) SA SERIES SERIES SERIES SERIES
NO. C CODE NO. C CODE NO. C CODE NO. C CODE
10 2 C9 2 C8 1 C18 1 C8
15 See (4) See (4) 2 C13 1 C25 1 C16
3.3
22 See (4) See (4) 1 C14 1 C24 1 C16
(4)
33 See See (4) 1 C14 1 C24 1 C16
10 2 C7 2 C8 1 C25 1 C8
(4) (4)
15 See See 2 C8 1 C25 1 C8
5 22 See (4) See (4) 2 C13 1 C25 1 C16
33 See (4) See (4) 1 C14 1 C23 1 C13
47 See (4) See (4) 1 C12 1 C19 1 C11
10 2 C10 2 C8 1 C18 1 C8
15 2 C10 2 C8 1 C18 1 C8
22 See (4) See (4) 2 C8 1 C18 1 C8
(4) (4)
12 33 See See 2 C12 1 C24 1 C14
47 See (4) See (4) 1 C14 1 C23 1 C13
68 See (4) See (4) 1 C13 1 C21 1 C15
(4) (4)
100 See See 1 C11 1 C22 1 C11
(1) No. represents the number of identical capacitor types to be connected in parallel.
(2) C Code indicates the Capacitor Reference number in Table 1 and Table 2 for identifying the specific component from the manufacturer.
(3) Assumes worst case maximum input voltage and load current for a given inductance value
(4) Check voltage rating of capacitors to be greater than application input voltage.
where
• VFB is the feedback voltage of typically 1.21 V (3)
A recommended value to use for R1 is 1 k. In this example, R2 is determined with Equation 4.
(4)
R2 = 11.23 kΩ
The closest standard 1% tolerance value to use is 11.3 kΩ
This sets the nominal output voltage to 14.88 V which is within 0.5% of the target value.
Step 3: To use the nomograph for the adjustable device, Figure 17, requires a calculation of the inductor Volt •
microsecond constant (E • T expressed in V • μS) from Equation 5.
where
• VSAT is the voltage drop across the internal power switch which is Rds(ON) times ILOAD (5)
In this example, this is typically 0.12 Ω × 3.5 A or 0.42 V and VD is the voltage drop across the forward biased
Schottky diode, typically 0.5 V. The switching frequency of 260 kHz is the nominal value to use to estimate the
ON time of the switch during which energy is stored in the inductor.
For this example E • T is found with Equation 6 and Equation 7.
(6)
(7)
Using Figure 17, the intersection of 27 V • μS horizontally and the 3.5 A vertical line (ILOAD max) indicates that
L48 , a 47-μH inductor, or L49, a 33-μH inductor could be used. Either inductor is suitable, but for this example
selecting the larger inductance results in lower ripple current.
From Table 3, L48 in a surface mount component is available from Pulse Engineering with part number P0848.
Step 4: Use Table 9 and Table 10 to determine an output capacitor. With a 14.8-V output the 12.5 to 15 V row is
used and with a 47-μH inductor there are three surface mount output capacitor solutions. Table 1 and Table 2
provide the actual capacitor characteristics based on the C Code number. Any of the following choices can be
used:
• 1 × 33-μF, 20-V AVX TPS (code C6)
• 1 × 47-μF, 20-V Sprague 594 (code C8)
• 1 × 47-μF, 20-V Kemet T495 (code C8)
NOTE
When using the adjustable device in low voltage applications (less than 3-V output), if the
nomograph, Figure 17, selects an inductance of 22 μH or less, Table 9 and Table 10 do
not provide an output capacitor solution. With these conditions the number of output
capacitors required for stable operation becomes impractical. It is recommended to use
either a 33-μH or 47-μH inductor and the output capacitors from Table 9 and Table 10.
Step 5: An input capacitor for this example requires at least a 35-V WV rating with an RMS current rating of 1.75
A (1/2 IOUT max). From Table 1 and Table 2, it can be seen that C12, a 33-μF, 35-V capacitor from Sprague, has
the highest voltage and current rating of the surface mount components and that two of these capacitor in
parallel is adequate.
Step 6: From Table 4, a 5-A or more Schottky diode must be selected. For surface mount diodes with a margin
of safety on the voltage rating one of two diodes can be used:
• MBRD1545CT
• 6TQ045S
Step 7: A 0.01-μF capacitor is used for CBOOST.
The soft-start pin is left open circuited.
Step 8: Determine a value for RADJ with Equation 8 to provide a peak switch current limit of at least 3.5 A plus
50% or 5.25 A.
(8)
Use a value of 7.15 kΩ.
Table 9. Output Capacitors for Adjustable Output Voltage Applications—Surface Mount (1) (2)
SURFACE MOUNT
OUTPUT VOLTAGE (V) INDUCTANCE (µH) AVX TPS SERIES SPRAGUE 594D SERIES KEMET T495 SERIES
NO. C CODE NO. C CODE NO. C CODE
(3)
33 7 C1 6 C2 7 C3
1.21 to 2.5
47 (3) 5 C1 4 C2 5 C3
33 (3) 4 C1 3 C2 4 C3
2.5 to 3.75 (3)
47 3 C1 2 C2 3 C3
22 4 C1 3 C2 4 C3
3.75 to 5 33 3 C1 2 C2 3 C3
47 2 C1 2 C2 2 C3
22 3 C2 3 C3 3 C4
33 2 C2 2 C3 2 C4
5 to 6.25
47 2 C2 2 C3 2 C4
68 1 C2 1 C3 1 C4
22 3 C2 1 C4 3 C4
33 2 C2 1 C3 2 C4
6.25 to 7.5
47 1 C3 1 C4 1 C6
68 1 C2 1 C3 1 C4
33 2 C5 1 C6 2 C8
47 1 C5 1 C6 2 C8
7.5 to 10
68 1 C5 1 C6 1 C8
100 1 C4 1 C5 1 C8
33 1 C5 1 C6 2 C8
47 1 C5 1 C6 2 C8
10 to 12.5
68 1 C5 1 C6 1 C8
100 1 C5 1 C6 1 C8
(1) No. represents the number of identical capacitor types to be connected in parallel.
(2) C Code indicates the Capacitor Reference number in Table 1 and Table 2 for identifying the specific component from the manufacturer.
(3) Set to a higher value for a practical design solution.
Copyright © 2000–2016, Texas Instruments Incorporated Submit Documentation Feedback 23
Product Folder Links: LM2679
LM2679
SNVS026O – MARCH 2000 – REVISED JUNE 2016 www.ti.com
Table 9. Output Capacitors for Adjustable Output Voltage Applications—Surface Mount(1)(2) (continued)
SURFACE MOUNT
OUTPUT VOLTAGE (V) INDUCTANCE (µH) AVX TPS SERIES SPRAGUE 594D SERIES KEMET T495 SERIES
NO. C CODE NO. C CODE NO. C CODE
33 1 C6 1 C8 1 C8
47 1 C6 1 C8 1 C8
12.5 to 15
68 1 C6 1 C8 1 C8
100 1 C6 1 C8 1 C8
33 1 C8 1 C10 2 C10
47 1 C8 1 C9 2 C10
15 to 20
68 1 C8 1 C9 2 C10
100 1 C8 1 C9 1 C10
33 2 C9 2 C11 2 C11
47 1 C10 1 C12 1 C11
20 to 30
68 1 C9 1 C12 1 C11
100 1 C9 1 C12 1 C11
10 4 C13 8 C12
15 3 C13 5 C12
22 2 C13 4 C12
30 to 37 No values available
33 1 C13 3 C12
47 1 C13 2 C12
68 1 C13 2 C12
Table 10. Output Capacitors for Adjustable Output Voltage Applications—Through Hole (1) (2)
THROUGH HOLE
OUTPUT VOLTAGE SANYO OS-CON SANYO MV-GX NICHICON PL PANASONIC HFQ
INDUCTANCE (µH)
(V) SA SERIES SERIES SERIES SERIES
NO. C CODE NO. C CODE NO. C CODE NO. C CODE
(3)
33 2 C3 5 C1 5 C3 3 C
1.21 to 2.5
47 (3) 2 C2 4 C1 3 C3 2 C5
33 (3) 1 C3 3 C1 3 C1 2 C5
2.5 to 3.75
47 (3) 1 C2 2 C1 2 C3 1 C5
22 1 C3 3 C1 3 C1 2 C5
3.75 to 5 33 1 C2 2 C1 2 C1 1 C5
47 1 C2 2 C1 1 C3 1 C5
22 1 C5 2 C6 2 C3 2 C5
33 1 C4 1 C6 2 C1 1 C5
5 to 6.25
47 1 C4 1 C6 1 C3 1 C5
68 1 C4 1 C6 1 C1 1 C5
22 1 C5 1 C6 2 C1 1 C5
33 1 C4 1 C6 1 C3 1 C5
6.25 to 7.5
47 1 C4 1 C6 1 C1 1 C5
68 1 C4 1 C2 1 C1 1 C5
33 1 C7 1 C6 1 C14 1 C5
47 1 C7 1 C6 1 C14 1 C5
7.5 to 10
68 1 C7 1 C2 1 C14 1 C2
100 1 C7 1 C2 1 C14 1 C2
(1) No. represents the number of identical capacitor types to be connected in parallel.
(2) C Code indicates the Capacitor Reference number in Table 1 and Table 2 for identifying the specific component from the manufacturer.
(3) Set to a higher value for a practical design solution.
24 Submit Documentation Feedback Copyright © 2000–2016, Texas Instruments Incorporated
Table 10. Output Capacitors for Adjustable Output Voltage Applications—Through Hole(1)(2) (continued)
THROUGH HOLE
OUTPUT VOLTAGE SANYO OS-CON SANYO MV-GX NICHICON PL PANASONIC HFQ
INDUCTANCE (µH)
(V) SA SERIES SERIES SERIES SERIES
NO. C CODE NO. C CODE NO. C CODE NO. C CODE
33 1 C7 1 C6 1 C14 1 C5
47 1 C7 1 C2 1 C14 1 C5
10 to 12.5
68 1 C7 1 C2 1 C9 1 C2
100 1 C7 1 C2 1 C9 1 C2
33 1 C9 1 C10 1 C15 1 C2
47 1 C9 1 C10 1 C15 1 C2
12.5 to 15
68 1 C9 1 C10 1 C15 1 C2
100 1 C9 1 C10 1 C15 1 C2
33 1 C10 1 C7 1 C15 1 C2
47 1 C10 1 C7 1 C15 1 C2
15 to 20
68 1 C10 1 C7 1 C15 1 C2
100 1 C10 1 C7 1 C15 1 C2
33 1 C7 1 C16 1 C2
47 1 C7 1 C16 1 C2
20 to 30 No values available
68 1 C7 1 C16 1 C2
100 1 C7 1 C16 1 C2
10 1 C12 1 C20 1 C10
15 1 C11 1 C20 1 C11
22 1 C11 1 C20 1 C10
30 to 37 No values available
33 1 C11 1 C20 1 C10
47 1 C11 1 C20 1 C10
68 1 C11 1 C20 1 C10
10 Layout
11.4 Trademarks
E2E is a trademark of Texas Instruments.
SIMPLE SWITCHER is a registered trademark of Texas Instruments.
All other trademarks are the property of their respective owners.
11.5 Electrostatic Discharge Caution
These devices have limited built-in ESD protection. The leads should be shorted together or the device placed in conductive foam
during storage or handling to prevent electrostatic damage to the MOS gates.
11.6 Glossary
SLYZ022 — TI Glossary.
This glossary lists and explains terms, acronyms, and definitions.
www.ti.com 14-Sep-2023
PACKAGING INFORMATION
Orderable Device Status Package Type Package Pins Package Eco Plan Lead finish/ MSL Peak Temp Op Temp (°C) Device Marking Samples
(1) Drawing Qty (2) Ball material (3) (4/5)
(6)
LM2679S-12/NOPB ACTIVE DDPAK/ KTW 7 45 RoHS-Exempt SN Level-3-245C-168 HR -40 to 125 LM2679 Samples
TO-263 & Green S-12
LM2679S-3.3 LIFEBUY DDPAK/ KTW 7 45 Non-RoHS Call TI Level-3-235C-168 HR -40 to 125 LM2679
TO-263 & Green S-3.3
LM2679S-3.3/NOPB ACTIVE DDPAK/ KTW 7 45 RoHS-Exempt SN Level-3-245C-168 HR -40 to 125 LM2679 Samples
TO-263 & Green S-3.3
LM2679S-5.0 LIFEBUY DDPAK/ KTW 7 45 Non-RoHS Call TI Level-3-235C-168 HR -40 to 125 LM2679
TO-263 & Green S-5.0
LM2679S-5.0/NOPB ACTIVE DDPAK/ KTW 7 45 RoHS-Exempt SN Level-3-245C-168 HR -40 to 125 LM2679 Samples
TO-263 & Green S-5.0
LM2679S-ADJ LIFEBUY DDPAK/ KTW 7 45 Non-RoHS Call TI Level-3-235C-168 HR -40 to 125 LM2679
TO-263 & Green S-ADJ
LM2679S-ADJ/NOPB ACTIVE DDPAK/ KTW 7 45 RoHS-Exempt SN Level-3-245C-168 HR -40 to 125 LM2679 Samples
TO-263 & Green S-ADJ
LM2679SD-3.3/NOPB ACTIVE VSON NHM 14 250 RoHS & Green SN Level-1-260C-UNLIM -40 to 125 S0003HB Samples
LM2679SD-5.0/NOPB ACTIVE VSON NHM 14 250 RoHS & Green SN Level-1-260C-UNLIM -40 to 125 S0003JB Samples
LM2679SD-ADJ/NOPB ACTIVE VSON NHM 14 250 RoHS & Green SN Level-1-260C-UNLIM -40 to 125 S0003KB Samples
LM2679SDX-3.3/NOPB ACTIVE VSON NHM 14 2500 RoHS & Green SN Level-1-260C-UNLIM -40 to 125 S0003HB Samples
LM2679SDX-ADJ/NOPB ACTIVE VSON NHM 14 2500 RoHS & Green SN Level-1-260C-UNLIM -40 to 125 S0003KB Samples
LM2679SX-12/NOPB ACTIVE DDPAK/ KTW 7 500 RoHS-Exempt SN Level-3-245C-168 HR -40 to 125 LM2679 Samples
TO-263 & Green S-12
LM2679SX-3.3/NOPB ACTIVE DDPAK/ KTW 7 500 RoHS-Exempt SN Level-3-245C-168 HR -40 to 125 LM2679 Samples
TO-263 & Green S-3.3
LM2679SX-5.0 LIFEBUY DDPAK/ KTW 7 500 Non-RoHS Call TI Level-3-235C-168 HR -40 to 125 LM2679
TO-263 & Green S-5.0
LM2679SX-5.0/NOPB ACTIVE DDPAK/ KTW 7 500 RoHS-Exempt SN Level-3-245C-168 HR -40 to 125 LM2679 Samples
TO-263 & Green S-5.0
LM2679SX-ADJ LIFEBUY DDPAK/ KTW 7 500 Non-RoHS Call TI Level-3-235C-168 HR -40 to 125 LM2679
TO-263 & Green S-ADJ
Addendum-Page 1
PACKAGE OPTION ADDENDUM
www.ti.com 14-Sep-2023
Orderable Device Status Package Type Package Pins Package Eco Plan Lead finish/ MSL Peak Temp Op Temp (°C) Device Marking Samples
(1) Drawing Qty (2) Ball material (3) (4/5)
(6)
LM2679SX-ADJ/NOPB ACTIVE DDPAK/ KTW 7 500 RoHS-Exempt SN Level-3-245C-168 HR -40 to 125 LM2679 Samples
TO-263 & Green S-ADJ
LM2679T-12/NOPB ACTIVE TO-220 NDZ 7 45 RoHS & Green SN Level-1-NA-UNLIM -40 to 125 LM2679 Samples
T-12
LM2679T-3.3/NOPB ACTIVE TO-220 NDZ 7 45 RoHS & Green SN Level-1-NA-UNLIM -40 to 125 LM2679 Samples
T-3.3
LM2679T-5.0/NOPB ACTIVE TO-220 NDZ 7 45 RoHS & Green SN Level-1-NA-UNLIM -40 to 125 LM2679 Samples
T-5.0
LM2679T-ADJ/NOPB ACTIVE TO-220 NDZ 7 45 RoHS & Green SN Level-1-NA-UNLIM -40 to 125 LM2679 Samples
T-ADJ
(1)
The marketing status values are defined as follows:
ACTIVE: Product device recommended for new designs.
LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect.
NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design.
PREVIEW: Device has been announced but is not in production. Samples may or may not be available.
OBSOLETE: TI has discontinued the production of the device.
(2)
RoHS: TI defines "RoHS" to mean semiconductor products that are compliant with the current EU RoHS requirements for all 10 RoHS substances, including the requirement that RoHS substance
do not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered at high temperatures, "RoHS" products are suitable for use in specified lead-free processes. TI may
reference these types of products as "Pb-Free".
RoHS Exempt: TI defines "RoHS Exempt" to mean products that contain lead but are compliant with EU RoHS pursuant to a specific EU RoHS exemption.
Green: TI defines "Green" to mean the content of Chlorine (Cl) and Bromine (Br) based flame retardants meet JS709B low halogen requirements of <=1000ppm threshold. Antimony trioxide based
flame retardants must also meet the <=1000ppm threshold requirement.
(3)
MSL, Peak Temp. - The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder temperature.
(4)
There may be additional marking, which relates to the logo, the lot trace code information, or the environmental category on the device.
(5)
Multiple Device Markings will be inside parentheses. Only one Device Marking contained in parentheses and separated by a "~" will appear on a device. If a line is indented then it is a continuation
of the previous line and the two combined represent the entire Device Marking for that device.
(6)
Lead finish/Ball material - Orderable Devices may have multiple material finish options. Finish options are separated by a vertical ruled line. Lead finish/Ball material values may wrap to two
lines if the finish value exceeds the maximum column width.
Addendum-Page 2
PACKAGE OPTION ADDENDUM
www.ti.com 14-Sep-2023
Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information
provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and
continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals.
TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release.
In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis.
Addendum-Page 3
PACKAGE MATERIALS INFORMATION
www.ti.com 11-May-2024
B0 W
Reel
Diameter
Cavity A0
A0 Dimension designed to accommodate the component width
B0 Dimension designed to accommodate the component length
K0 Dimension designed to accommodate the component thickness
W Overall width of the carrier tape
P1 Pitch between successive cavity centers
Sprocket Holes
Q1 Q2 Q1 Q2
Pocket Quadrants
Pack Materials-Page 1
PACKAGE MATERIALS INFORMATION
www.ti.com 11-May-2024
Width (mm)
H
W
Pack Materials-Page 2
PACKAGE MATERIALS INFORMATION
www.ti.com 11-May-2024
TUBE
T - Tube
height L - Tube length
W - Tube
width
Pack Materials-Page 3
MECHANICAL DATA
NDZ0007B
TA07B (Rev E)
www.ti.com
MECHANICAL DATA
KTW0007B
TS7B (Rev E)
www.ti.com
MECHANICAL DATA
NHM0014A
SRC14A (Rev A)
www.ti.com
IMPORTANT NOTICE AND DISCLAIMER
TI PROVIDES TECHNICAL AND RELIABILITY DATA (INCLUDING DATA SHEETS), DESIGN RESOURCES (INCLUDING REFERENCE
DESIGNS), APPLICATION OR OTHER DESIGN ADVICE, WEB TOOLS, SAFETY INFORMATION, AND OTHER RESOURCES “AS IS”
AND WITH ALL FAULTS, AND DISCLAIMS ALL WARRANTIES, EXPRESS AND IMPLIED, INCLUDING WITHOUT LIMITATION ANY
IMPLIED WARRANTIES OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE OR NON-INFRINGEMENT OF THIRD
PARTY INTELLECTUAL PROPERTY RIGHTS.
These resources are intended for skilled developers designing with TI products. You are solely responsible for (1) selecting the appropriate
TI products for your application, (2) designing, validating and testing your application, and (3) ensuring your application meets applicable
standards, and any other safety, security, regulatory or other requirements.
These resources are subject to change without notice. TI grants you permission to use these resources only for development of an
application that uses the TI products described in the resource. Other reproduction and display of these resources is prohibited. No license
is granted to any other TI intellectual property right or to any third party intellectual property right. TI disclaims responsibility for, and you
will fully indemnify TI and its representatives against, any claims, damages, costs, losses, and liabilities arising out of your use of these
resources.
TI’s products are provided subject to TI’s Terms of Sale or other applicable terms available either on ti.com or provided in conjunction with
such TI products. TI’s provision of these resources does not expand or otherwise alter TI’s applicable warranties or warranty disclaimers for
TI products.
TI objects to and rejects any additional or different terms you may have proposed. IMPORTANT NOTICE
Mailing Address: Texas Instruments, Post Office Box 655303, Dallas, Texas 75265
Copyright © 2024, Texas Instruments Incorporated