PTH03030WAST
更新时间:2025-04-27 06:40:41
品牌:TI
描述:30-A, 3.3-V Input Non-Isolated Wide-Output Adjust Power Module
PTH03030WAST 概述
30-A, 3.3-V Input Non-Isolated Wide-Output Adjust Power Module 30 -A , 3.3 V输入非隔离宽输出调节电源模块 DC/DC转换器 电源模块
PTH03030WAST 规格参数
是否无铅: | 含铅 | 是否Rohs认证: | 不符合 |
生命周期: | Obsolete | 零件包装代码: | DFM |
包装说明: | , | 针数: | 13 |
Reach Compliance Code: | not_compliant | ECCN代码: | EAR99 |
Factory Lead Time: | 1 week | 风险等级: | 5.16 |
其他特性: | REMOTE SHUTDOWN | 模拟集成电路 - 其他类型: | DC-DC REGULATED POWER SUPPLY MODULE |
认证: | UL, CSA | 效率(主输出): | 93% |
高度: | 9 mm | 最大输入电压: | 3.65 V |
最小输入电压: | 2.95 V | 标称输入电压: | 3.3 V |
JESD-30 代码: | R-XQMA-X13 | 长度: | 34.8 mm |
最大电网调整率: | 0.5% | 最大负载调整率: | 0.6% |
功能数量: | 1 | 输出次数: | 1 |
端子数量: | 13 | 最高工作温度: | 85 °C |
最低工作温度: | -40 °C | 最大输出电流: | 30 A |
最大输出电压: | 2.5 V | 最小输出电压: | 0.8 V |
标称输出电压: | 2 V | 封装主体材料: | UNSPECIFIED |
封装形状: | RECTANGULAR | 封装形式: | MICROELECTRONIC ASSEMBLY |
峰值回流温度(摄氏度): | NOT SPECIFIED | 认证状态: | Not Qualified |
纹波电压(主输出): | 0.0106 Vrms | 子类别: | Power Supply Modules |
表面贴装: | NO | 技术: | HYBRID |
端子形式: | UNSPECIFIED | 端子位置: | QUAD |
处于峰值回流温度下的最长时间: | NOT SPECIFIED | 最大总功率输出: | 60 W |
微调/可调输出: | YES | 宽度: | 28.45 mm |
Base Number Matches: | 1 |
PTH03030WAST 数据手册
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PDF下载PTH03030W —3.3-V Input
30-A, 3.3-V Input Non-Isolated
Wide-Output Adjust Power Module
SLTS209B – MAY 2003 – REVISED JANUARY 2004
Features
• Up to 30-A Output Current
• 3.3-V Input Voltage
• Wide-Output Voltage Adjust
(0.8 V to 2.5 V)
• 135 W/in³ Power Density
• Efficiencies up to 93 %
• On/Off Inhibit
• Auto-Track™ Sequencing
• Output Over-Current Protection
(Non-Latching, Auto-Reset)
• Operating Temp: –40 to +85 °C
• Over-Temperature Shutdown
• Safety Agency Approvals:
UL 1950, CSA 22.2 950, EN60950
VDE (Pending)
• Pre-Bias Startup
NOMINAL SIZE =
1.37 in x 1.12 in
(34,8 mm x 28,5 mm)
• Point-of-Load Alliance (POLA)
Compatible
• Margin Up/Down Controls
• Under-Voltage Lockout
Description
Pin Configuration
put voltage of the PTH03030W can be
set to any value over the range 0.8 V to
2.5 V, using a single resistor.
The PTH03030 is a series of high-
current non-isolated power modules
from Texas Instruments. The product is
characterized by high efficiencies, and
up to 30 A of output current, while oc-
cupying a mere 1.64 in² of PCB area. In
terms of cost, size, and performance, the
series provides OEM’s with a flexible
module that meets the requirements of
the most complex and demanding mixed-
signal applications. These include the
most densly populated, multi-processor
systems that incorporate high-speed
DSP’s, microprocessors, and ASICs.
The series uses double-sided surface
mount construction and provides high-
performance step-down power conversion
from a 3.3-V input bus voltage. The out-
Pin Function
1
2
3
4
5
6
7
8
9
GND
Vin
GND
Inhibit *
Vo Adjust
Vo Sense
GND
Vout
This series includes Auto-Track™.
Auto-Track simplifies power-up and
power-down supply voltage sequencing
in a system by enabling modules to track
each other, or any other external voltage.
Each model also includes an on/off
inhibit, output voltage adjust (trim), and
margin up/down controls. An output
voltage sense ensures tight load regulation,
and an output over-current and thermal
shutdown feature provide for protection
against external load faults.
Vout
10 GND
11 Track
12 Margin Down *
13 Margin Up *
*
Denotes negative logic:
Open
= Normal operation
Ground = Function active
Package options inlude both through-
hole and surface mount configurations.
Standard Application
Track
Rset = Required to set the desired output voltage
higher than 0.8 V (see spec. table for values).
Margin Down
Margin Up
C
C
= Required 1,500 µF capacitor.
= Optional 330 µF capacitor.
in
out
13 12 11
1
2
3
10
VIN
9
8
PTH03030W
(Top View)
VOUT
7
4
5
6
Inhibit
Vo Sense
L
O
A
D
+
+
CIN
COUT
1,500 µF
330 µF
(Required)
RSET
(Optional)
0.5 %, 0.1 W
(Required)
GND
GND
For technical support and further information, visit http://power.ti.com
PTH03030W —3.3-V Input
30-A, 3.3-V Input Non-Isolated
Wide-Output Adjust Power Module
SLTS209B – MAY 2003 – REVISED JANUARY 2004
Ordering Information
(1)
Output Voltage
(PTH03030rxx)
Package Options
(PTH03030xrr)
(2)
Code
W
Voltage
0.8 V – 2.5 V (Adjust)
Code
AH
AS
Description
Horiz. T/H
SMD, Standard
Pkg Ref.
(EUM)
(EUN)
(3)
Notes: (1) Add “T” to end of part number for tape and reel on SMD packages only.
(2) Reference the applicable package reference drawing for the dimensions and PC board layout
(3) “Standard” option specifies 63/37, Sn/Pb pin solder material.
Pin Descriptions
Vin: The positive input voltage power node to the mod-
Vo Sense: The sense input allows the regulation circuit to
compensate for voltage drop between the module and
the load. For optimal voltage accuracy Vo Sense should
be connected to Vout. It can also be left disconnected.
ule, which is referenced to common GND.
Vout: The regulated positive power output with respect
to the GND node.
Track: This is an analog control input that enables the
output voltage to follow an external voltage. This pin
becomes active typically 20 ms after the input voltage
has been applied, and allows direct control of the output
voltage from 0 V up to the nominal set-point voltage.
Within this range the output will follow the voltage at
the Track pin on a volt-for-volt basis. When the control
voltage is raised above this range, the module regulates
at its set-point voltage. The feature allows the output
voltage to rise simultaneously with other modules pow-
ered from the same input bus. If unused, this input should
be connected to Vin. Note: Due to the under-voltage lockout
feature, the output of the module cannot follow its own input
voltage during power up. For more information, consult the
related application note.
GND: This is the common ground connection for the
Vin and Vout power connections. It is also the 0 VDC
reference for the control inputs.
Inhibit: The Inhibit pin is an open-collector/drain negative
logic input that is referenced to GND. Applying a low-
level ground signal to this input disables the module’s
output and turns off the output voltage. When the Inhibit
control is active, the input current drawn by the regula-
tor is significantly reduced. If the Inhibit pin is left
open-circuit, the module will produce an output when-
ever a valid input source is applied.
Vo Adjust: A 0.1 W 1 % resistor must be directly connected
between this pin and pin 7 (GND) to set the output voltage
to a value higher than 0.8 V. The temperature stability of
the resistor should be 100 ppm/°C (or better). The set
point range for the output voltage is from 0.8 V to 2.5 V.
The resistor value required for a given output voltage
may be calculated from the following formula. If left
open circuit, the output voltage will default to its lowest
value. For further information on output voltage adjust-
ment consult the related application note.
Margin Down: When this input is asserted to GND, the
output voltage is decreased by 5% from the nominal. The
input requires an open-collector (open-drain) interface.
It is not TTL compatible. A lower percent change can
be accomodated with a series resistor. For further infor-
mation, consult the related application note.
Margin Up: When this input is asserted to GND, the
output voltage is increased by 5%. The input requires an
open-collector (open-drain) interface. It is not TTL
compatible. The percent change can be reduced with a
series resistor. For further information, consult the
related application note.
0.8 V
Vout – 0.8 V
Rset
= 10 k ·
– 2.49 k
The specification table gives the preferred resistor values
for a number of standard output voltages.
For technical support and further information, visit http://power.ti.com
PTH03030W —3.3-V Input
30-A, 3.3-V Input Non-Isolated
Wide-Output Adjust Power Module
SLTS209B – MAY 2003 – REVISED JANUARY 2004
Environmental & Absolute Maximum Ratings (Voltages are with respect to GND)
Characteristics
Symbols
Conditions
Min
Typ
Max
Units
Track Input Voltage
Vtrack
–0.3
–40
—
—
Vin + 0.3
85
V
Operating Temperature Range
Solder Reflow Temperature
Storage Temperature
T
Over V Range
Surface temperature of module body or pins
—
Per Mil-STD-883D, Method 2002.3
1 msec, ½ Sine, mounted
°C
°C
°C
a
in
(i)
Treflow
T
s
235
–40
—
—
125
Mechanical Shock
500
—
G’s
Mechanical Vibration
Mil-STD-883D, Method 2007.2
20-2000 Hz
Suffix S
Suffix H
—
—
10
20
—
—
G’s
Weight
Flammability
—
—
—
10
—
grams
Meets UL 94V-O
Notes: (i) During reflow of SMD package version do not elevate peak temperature of the module, pins or internal components above the stated maximum.
Specifications (Unless otherwise stated, Ta =25 °C, Vin =3.3 V, Vout =2 V, Cin =1,500 µF, Cout =0 µF, and Io =Iomax)
PTH03030W
Characteristics
Symbols
Conditions
Min
Typ
Max
Units
(1)
(1)
Output Current
Io
60 °C, 200 LFM airflow
25 °C, natural convection
0
0
—
—
30
30
A
Input Voltage Range
Set-Point Voltage Tolerance
Temperature Variation
Line Regulation
Load Regulation
Total Output Variation
Vin
Vo tol
∆Regtemp
∆Regline
∆Regload
∆Regtot
Over Io range
2.95 (2)
—
—
—
—
—
0.5
10
12
3.65
2 (3)
—
—
—
V
%Vo
%Vo
mV
mV
–40 °C <Ta < +85 °C
Over Vin range
Over Io range
Includes set-point, line, load,
–40 °C ≤ Ta ≤ +85 °C
—
(3)
—
—
3
%Vo
Efficiency
η
Io =20 A
RSET = 2.21 kΩ Vo = 2.5 V
—
—
—
—
—
—
93
92
91
89
87
85
—
—
—
—
—
—
RSET = 4.12 kΩ Vo = 2.0 V
RSET = 5.49 kΩ Vo = 1.8 V
RSET = 8.87 kΩ Vo = 1.5 V
RSET = 17.4 kΩ Vo = 1.2 V
RSET = 36.5 kΩ Vo = 1.0 V
%
Vo
Ripple
(p2k0-pMk)HVz bandwidth
Reset, followed by auto-recovery
1 A/µs load step, 50 to 100 % Iomax,
Cout =330 µF
—
—
30
45
—
—
mVpp
A
r
Over-Current Threshold
Transient Response
Io trip
ttr
Recovery Time
Vo over/undershoot
—
—
70
—
—
µSec
mV
∆Vtr
100
Margin Up/Down Adjust
Vo adj
—
—
—
V/ms
5
– 8
—
—
—
–130
%
µA
µA
(4)
Margin
Track
Input
Current
(pinms argin 12 Pin/1to3)GI ND
IL
(5)
Input
Currternatck
Pin(tpoinGND
out ≤ Cout(max)—
Vin increasing
Vin decreasing
8)I
IL
Track Slew Rate Capability
Under-Voltage Lockout
dVtrack/dt
UVLO
C
—
1
—
2.45
2.4
2.8
—
V
V
2.2
Inhibit
Control
VIH
eferenced to GND
(pin4)R
Input High Voltage
Input Low Voltage
Vin –0.5
–0.2
—
—
Open (5)
0.8
VIL
IIL inhibit
Input Low Current
Input Standby Current
Switching Frequency
External Input Capacitance
External Output Capacitance
Pin to GND
Inhibit (pin 4) to GND, Track (pin 11) open
Over Vin and Io ranges
—
—
275
1,500
0
0
–130
10
300
—
—
—
325
—
16,500
300
µA
Iin inh
ƒs
Cin
mA
kHz
µF
(6)
(8)
Cout
Capacitance value
non-ceramic
ceramic
330 (7)
µF
—
(9)
Equiv.
series
resistance
—
—
(non-—ceramic)4 mΩ
106 Hrs
Reliability
MTBF
Per Bellcore TR-332
2.8
—
50 % stress, Ta =40 °C, ground benign
Notes: (1) See SOA curves or consult factory for appropriate derating.
(2) The minimum input voltage is equal to 2.95 V or Vout + 0.5 V, whichever is greater.
(3) The set-point voltage tolerance is affected by the tolerance and stability of RSET. The stated limit is unconditionally met if RSET has a tolerance of 1 %
with 100 ppm/°C or better temperature stability.
(4) A small low-leakage (<100 nA) MOSFET is recommended to control this pin. The open-circuit voltage is less than 1 Vdc.
(5) This control pin has an internal pull-up to the input voltage Vin. If it is left open-circuit the module will operate when input power is applied. A small
low-leakage (<100 nA) MOSFET is recommended for control. For further information, consult the related application note.
(6) A 1,500 µF electrolytic input capacitor is required for proper operation. The capacitor must be rated for a minimum of 900 mA rms of ripple current.
(7) An external output capacitor is not required for basic operation. Adding 330 µF of distributed capacitance at the load will improve the transient response.
(8) This is the calculated maximum. The minimum ESR limitation will often result in a lower value. Consult the application notes for further guidance.
(9) This is the typical ESR for all the electrolytic (non-ceramic) output capacitance. Use 7 mΩ as the minimum when using max-ESR values to calculate.
For technical support and further information, visit http://power.ti.com
PTH03030W —3.3-V Input
Typical Characteristics
30-A, 3.3-V Input Non-Isolated
Wide-Output Adjust Power Module
SLTS209B – MAY 2003 – REVISED JANUARY 2004
Characteristic Data; Vin =3.3V (See Note A)
Safe Operating Area; Vin =3.3 V (See Note B)
Efficiency vs Load Current
All Output Voltages
100
90
80
90
VOUT
Airflow
70
60
50
40
30
20
2.5 V
80
70
60
50
2.0 V
1.8 V
1.5 V
1.2 V
0.8 V
400LFM
200LFM
100LFM
Nat Conv
0
5
10
15
20
25
30
0
5
10
15
20
25
30
Iout - Amps
Iout (A)
Output Ripple vs Load Current
50
40
30
20
10
0
VOUT
2.0 V
1.5 V
1.8 V
1.2 V
0.8 V
2.5 V
0
5
10
15
20
25
30
Iout (A)
Power Dissipation vs Load Current
10
8
6
4
2
0
0
5
10
15
20
25
30
Iout - Amps
Note A: Characteristic data has been developed from actual products tested at 25°C. This data is considered typical data for the converter.
Note B: SOA curves represent the conditions at which internal components are at or below the manufacturer’s maximum operating temperatures. Derating limits apply to
modules soldered directly to a 4 in. × 4 in. double-sided PCB with 1 oz. copper.
For technical support and further information, visit http://power.ti.com
Application Notes
PTH03030W & PTH05030W
Capacitor Recommendations for the PTH03030 &
PTH05030 Series of Power Modules
Input Capacitor
dissipation, and ripple current capability. As a caution
many general purpose tantalum capacitors have consider-
ably higher ESR, reduced power dissipation and lower
ripple current capability. These capacitors are also less
reliable when determining their power dissipation and
surge current capability. Tantalum capacitors that do
not have a stated ESR or surge current rating are not
recommended for power applications.
The recommended input capacitor(s) is determined by
the 1,500 µF (1) minimum capacitance and 900 mArms
minimum ripple current rating.
Ripple current and <100 mΩ equivalent series resistance
(ESR) values are the major considerations, along with
temperature, when designing with different types of
capacitors. Unlike polymer tantalum, conventional tan-
talum capacitors have a recommended minimum voltage
rating of 2 × (maximum DC voltage + AC ripple). This
is standard practice to ensure reliability.
When specifying Os-Con and polymer tantalum capacitors
for the output, the minimum ESR limit will be encoun-
tered well before the maximum capacitance value is
reached.
For improved ripple reduction on the input bus, ceramic
capacitors may be used to complement electrolytic types
and achieve the minimum required capacitance.
Capacitor Table
Table 1-1 identifies the characteristics of capacitors from a
number of vendors with acceptable ESR and ripple current
(rms) ratings. The recommended number of capacitors
required at both the input and output buses is identified
for each capacitor type.
Output Capacitors (Optional)
For applications with load transients (sudden changes in
load current), regulator response will benefit from an
external output capacitance. The recommended output
capacitance of 330 µF will allow the module to meet
its transient response specification (see product data sheet).
For most applications, a high quality computer-grade
aluminum electrolytic capacitor is most suitable. These
capacitors provide adequate decoupling over the frequency
range, 2 kHz to 150 kHz, and are suitable when ambient
temperatures are above 0 °C. For operation below 0 °C,
tantalum, ceramic or Os-Con type capacitors are recom-
mended. When using one or more non-ceramic capacitors,
the calculated equivalent ESR should be no lower than
4 mΩ (7 mΩ using the manufacturer’s maximum ESR
for a single capacitor). A list of preferred low-ESR type
capacitors are identified in Table 1-1.
This is not an extensive capacitor list. Capacitors from other
vendors are available with comparable specifications. Those
listed are for guidance. The RMS ripple current rating and
ESR (at 100kHz) are critical parameters necessary to insure
both optimum regulator performance and long capacitor life.
Designing for Very Fast Load Transients
The transient response of the DC/DC converter has been
characterized using a load transient with a di/dt of 1 A/µs.
The typical voltage deviation for this load transient is
given in the data sheet specification table using the
optional value of output capacitance. As the di/dt of a
transient is increased, the response of a converter’s regu-
lation circuit ultimately depends on its output capacitor
decoupling network. This is an inherent limitation with
any DC/DC converter once the speed of the transient
exceeds its bandwidth capability. If the target application
specifies a higher di/dt or lower voltage deviation, the
requirement can only be met with additional output
capacitor decoupling. In these cases special attention
must be paid to the type, value and ESR of the capacitors
selected.
Ceramic Capacitors
Above 150 kHz the performance of aluminum electrolytic
capacitors becomes less effective. To further improve the
reflected input ripple current or the output transient
response, multilayer ceramic capacitors can also be added.
Ceramic capacitors have very low ESR and their resonant
frequency is higher than the bandwidth of the regulator.
When used on the output their combined ESR is not
critical as long as the total value of ceramic capacitance
does not exceed 300 µF. Also, to prevent the formation of
local resonances, do not place more than five identical ce-
ramic capacitors in parallel with values of 10 µF or greater.
If the transient performance requirements exceed that
specified in the data sheet, or the total amount of load
capacitance is above 3,000 µF, the selection of output
capacitors becomes more important. For further guidance
consult the separate application note, “Selecting Capaci-
tors for PTH Products in High-Performance Applications.”
Tantalum Capacitors
Tantalum type capacitors can be used at both the input
and output, and are recommended for applications where
the ambient operating temperature can be less than 0 °C.
The AVX TPS, Sprague 593D/594/595 and Kemet T495/
T510 capacitor series are suggested over many other
tantalum types due to their higher rated surge, power
For technical support and further information, visit http://power.ti.com
Application Notes continued
PTH03030W & PTH05030W
Table 1-1: Input/Output Capacitors
Capacitor Vendor, Type:
Series (Style)
Capacitor Characteristics
Quantity
Working
Voltage
Value
(µF)
Max. ESR
at 100 kHz Current @85 °C
(I rms)
Max. Ripple
Physical Size
(mm)
Input
Bus
Output
Bus
Vendor Part Number
Panasonic:
FC (Radial)
10 V
16 V
16 V
10 V
560
1500
1500
2200
0.090 Ω
0.043 Ω
0.060 Ω
0.060 Ω
>900 mA
1690 mA
1100 mA
1100 mA
10×12.5
16×15
12.5×13.5
12.5×13.5
3
1
1
1
1
1
1
1
EEUFC1A561
EEUFC1C152S
EEVFK1C152Q
EEVFK1A222Q
FK (SMD)
United Chemi-con
FX, Oscon (Radial)
6.3 V
6.3 V
10 V
10 V
1000
820
680
0.013 Ω
0.010 Ω
0.090 Ω
0.068 Ω
4935 mA
5500 mA
>900 mA
1050 mA
10×10.5
10×12.2
10×12.5
10×16
2
2
3
2
6FX1000M
≤2
≤2
1
PXA, (Poly-Aluminum (SMD.)
LXZ, Aluminum (Radial)
PXA6.3VC820MJ12TP
LXZ10VB681M10X12LL
LXZ10VB102M10X16LL
1000
1
Nichicon, Aluminum:
HD (Radial)
PM (Radial)
6.3 V
10 V
1000
1500
0.053 Ω
0.050 Ω
1030 mA
1060 mA
10×12.5
16×15
2
1
1
1
UHD0J102MPR
UPM1A152MHH6
Sanyo, Os-con:
SP (Radial)
SVP (SMD)
10 V
6.3 V
470
820
0.015 Ω
0.012 Ω
>4500 mA
>5440 mA
10×10.5
10×12.7
3 [1]
2
≤3
≤2
10SP470M
6SVP820M
Panasonic, Poly-Aluminum:
WA (SMD)
S/SE (SMD)
6.3 V
6.3 V
560
180
0.020 Ω
0.005 Ω
5100 mA
4000 mA
10×10.2
7.3×4.3×4.2
3
N/R
EEFWA0J561P
EEFSE0J181R
≤4
≤1
AVX, Tantalum:
TPS (SMD)
10 V
10 V
470
470
0.045 Ω
0.060 Ω
1723 mA
1826 mA
7.3L
×5.7W×4.1H
3 [1]
3 [1]
TPSE477M010R0045
TPSV477M010R0060
≤5
≤5
Kemet (SMD):
T520, Poly-Tant
T530, Poly-Tant/Organic
6.3 V
10 V
6.3 V
470
330
470
0.018 Ω
0.015 Ω
0.012 Ω
>1200 mA
>3800 mA
4200 mA
4.3W
×7.3L
×4.0H
3 [1]
5
3 [1]
T520X477M006SE018
T530X337M010AS
T530X477M006AS
≤5
≤3
≤2
Vishay-Sprague
595D, Tantalum (SMD)
94SA, Os-con (Radial)
7.2L×6W
×4.1H
16×25
10 V
16 V
470
2200
0.100 Ω
0.015 Ω
1440 mA
9740 mA
3 [1]
1
≤5
≤3
595D477X0010R2T
94SA108X0016HBP
Kemet, Ceramic X5R (SMD)
16 V
6.3 V
10
47
0.002 Ω
0.002 Ω
—
1210 case
3225 mm
1 [2]
1 [2]
C1210C106M4PAC
C1210C476K9PAC
≤5
≤5
Murata, Ceramic X5R (SMD)
6.3 V
6.3 V
16 V
16 V
100
47
22
0.002 Ω
0.002 Ω
—
1210 case
3225 mm
1 [2]
1 [2]
1 [2]
GRM32ER60J107M
GRM32ER60J476M
GRM32ER61C226K
GRM32DR61C106K
≤3
≤5
≤5
≤5
10
TDK, Ceramic X5R (SMD)
6.3 V
6.3 V
16 V
16 V
100
47
22
—
1210 case
3225 mm
1 [2]
1 [2]
1 [2]
C3225X5R0J107MT
C3225X5R0J476MT
C3225X5R1C226MT
C3225X5R1C106MT
≤3
≤5
≤5
≤5
10
[1] The total capacitance is slightly lower than 1,500 µF, but is acceptable based on the combined ripple current rating.
[2] A ceramic capacitor may be used to complement electrolytic types at the input to further reduce high-frequency ripple current
For technical support and further information, visit http://power.ti.com
Application Notes
PTH03030W & PTH05030W
Adjusting the Output Voltage of the PTH03030W &
PTH05030W Wide-Output Adjust Power Modules
Table 2-2; Output Voltage Set-Point Resistor Values
The Vo Adjust control (pin 4) sets the output voltage of the
PTH03030W and PTH05030W products to a value higher
than 0.8 V. The adjustment range of the PT03030W
Va Req’d
Rset
Va Req’d
Rset
2.00
2.05
2.10
2.15
2.20
2.25
2.30
2.35
2.40
2.45
2.50
2.55
2.60
2.65
2.70
2.75
2.80
2.85
2.90
2.95
3.00
3.05
3.10
3.15
3.20
3.25
3.30
3.35
3.40
3.45
3.50
3.55
3.60
4.18 kΩ
3.91 kΩ
3.66 kΩ
3.44 kΩ
3.22 kΩ
3.03 kΩ
2.84 kΩ
2.67 kΩ
2.51 kΩ
2.36 kΩ
2.22 kΩ
2.08 kΩ
1.95 kΩ
1.83 kΩ
1.72 kΩ
1.61 kΩ
1.51 kΩ
1.41 kΩ
1.32 kΩ
1.23 kΩ
1.15 kΩ
1.07 kΩ
988 Ω
0.800
0.825
0.850
0.875
0.900
0.925
0.950
0.975
1.000
1.025
1.050
1.075
1.100
1.125
1.150
1.175
1.200
1.225
1.250
1.275
1.300
1.325
1.350
1.375
1.400
1.425
1.450
1.475
1.50
Open
1
(3.3-V input) is from 0.8 V to 2.5 V , and the PTH05030W
318 kΩ
158 kΩ
104 kΩ
77.5 kΩ
61.5 kΩ
50.8 kΩ
43.2 kΩ
37.5 kΩ
33.1 kΩ
29.5 kΩ
26.6 kΩ
24.2 kΩ
22.1 kΩ
20.4 kΩ
18.8 kΩ
17.5 kΩ
16.3 kΩ
15.3 kΩ
14.4 kΩ
13.5 kΩ
12.7 kΩ
12.1 kΩ
11.4 kΩ
10.8 kΩ
10.3 kΩ
9.82 kΩ
9.36 kΩ
8.94 kΩ
8.18 kΩ
7.51 kΩ
6.92 kΩ
6.4 kΩ
(5-V input) from 0.8 V to 3.6 V. For an output voltage
other than 0.8 V a single external resistor, Rset, must be
2
connected directly between the Vo Adjust and GND pins .
Table 2-1 gives the preferred value of the external resistor
for a number of standard voltages, along with the actual
output voltage that this resistance value provides.
For other output voltages the value of the required resistor
can either be calculated using the following formula, or
simply selected from the range of values given in Table 2-2.
Figure 2-1 shows the placement of the required resistor.
0.8 V
Vout – 0.8 V
Rset
= 10 kΩ ·
– 2.49 kΩ
Table 2-1; Preferred Values of Rset for Standard Output Voltages
Vout (Standard)
Rset (Pref’d Value)
Vout (Actual)
3.3 V 1
2.5 V
2 V
1.8 V
1.5 V
1.2 V
1 V
698 Ω
3.309V
2.502 V
2.010 V
1.803 V
1.504 V
1.202 V
1.005 V
0.8 V
914 Ω
843 Ω
775 Ω
710 Ω
647 Ω
587 Ω
529 Ω
473 Ω
2.21 kΩ
4.12 kΩ
5.49 kΩ
8.87 kΩ
17.4 kΩ
36.5 kΩ
Open
1.55
1.60
1.65
1.70
0.8 V
419 Ω
367 Ω
1.75
1.80
1.85
1.90
5.93 kΩ
5.51 kΩ
5.13 kΩ
4.78 kΩ
4.47 kΩ
Figure 2-1; Vo Adjust Resistor Placement
Vo Sense
1.95
13 12 11
6
Sense
Notes:
1. Modules that operate from a 3.3-V input bus should
not be adjusted higher than 2.5 V.
VOUT
8, 9
VO
PTH05030W
2. Use a 0.1 W resistor. The tolerance should be 1 %, with
temperature stability of 100 ppm/°C (or better). Place
the resistor as close to the regulator as possible. Connect
the resistor directly between pins 5 and 10 using dedicated
PCB traces.
GND
1, 3, 7
GND Adjust
10
5
COUT
330 µF
(Optional)
RSET
1 %, 0.1 W
3. Never connect capacitors from Vo Adjust to either GND or
Vout. Any capacitance added to the Vo Adjust pin will affect
the stability of the regulator.
GND
GND
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Application Notes
PTH Series of Wide-Output Adjust
Power Modules (3.3/5-V Input)
Features of the PTH Family of Non-Isolated
Wide Output Adjust Power Modules
output current, PTHxx020W and PTHxx030W products
incorporate over-temperature shutdown protection. All
of the products referenced in Table 3-1 include Auto-
Track™. This is a feature unique to the PTH family,
and was specifically designed to simplify the task of se-
quencing the supply voltage in a power system. These
and other features are described in the following sections.
Point-of-Load Alliance
The PTH family of non-isolated, wide-output adjust
power modules from Texas Instruments are optimized
for applications that require a flexible, high performance
module that is small in size. These products are part of
the “Point-of-Load Alliance” (POLA), which ensures
compatible footprint, interoperability and true second
sourcing for customer design flexibility. The POLA is a
collaboration between Texas Instruments, Artesyn Tech-
nologies, and Astec Power to offer customers advanced
non-isolated modules that provide the same functionality
and form factor. Product series covered by the alliance
includes the PTHxx050W (6 A), PTHxx060W (10 A),
PTHxx010W (15/12 A), PTHxx020W (22/18 A), and
the PTHxx030W (30/26 A).
Soft-Start Power Up
The Auto-Track feature allows the power-up of multiple
PTH modules to be directly controlled from the Track
pin. However in a stand-alone configuration, or when
the Auto-Track feature is not being used, the Track pin
should be directly connected to the input voltage, Vin
(see Figure 3-1).
Figure 3–1
From the basic, “Just Plug it In” functionality of the 6-A
modules, to the 30-A rated feature-rich PTHxx030W,
these products were designed to be very flexible, yet simple
to use. The features vary with each product. Table 3-1
provides a quick reference to the available features by
product and input bus voltage.
10
9
8
5
Up Dn
Track
Sense
5 V
3.3 V
2
6
VIN
VO
PTH05020W
Inhibit
GND
1
Adjust
3
7
4
Table 3-1; Operating Features by Series and Input Bus Voltage
+
+
CIN
1,000 µF
COUT
330 µF
RSET, 698Ω
0.1 W, 1 %
GND
GND
Series
Input Bus
3.3 V / 5 V
12 V
I OUT
6 A
When the Track pin is connected to the input voltage the
Auto-Track function is permanently disengaged. This
allows the module to power up entirely under the control
of its internal soft-start circuitry. When power up is under
soft-start control, the output voltage rises to the set-point
at a quicker and more linear rate.
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
PTHxx050
6 A
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
3.3 V / 5 V
12 V
10 A
8 A
PTHxx060
PTHxx010
PTHxx020
PTHxx030
3.3 V / 5 V
12 V
15 A
12 A
22 A
18 A
30 A
26 A
Figure 3–2
•
•
•
•
3.3 V / 5 V
12 V
•
•
3.3 V / 5 V
12 V
Vin (1 V/Div)
Vout (1 V/Div)
For simple point-of-use applications, the PTHxx050W
provides operating features such as an on/off inhibit,
output voltage trim, pre-bias startup (3.3/5-V input only),
and over-current protection. The PTHxx060W (10 A),
and PTHxx010W (15/12 A) include an output voltage
sense, and margin up/down controls. Then the higher
Iin (5 A/Div)
HORIZ SCALE: 5 ms/Div
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Application Notes
PTH Series of Wide-Output Adjust
Power Modules (3.3/5-V Input)
The power modules function normally when the Inhibit
pin is left open-circuit, providing a regulated output
whenever a valid source voltage is connected to Vin with
respect to GND.
From the moment a valid input voltage is applied, the
soft-start control introduces a short time delay (typically
5 ms-10 ms) before allowing the output voltage to rise.
The output then progressively rises to the module’s set-
point voltage. Figure 3-2 shows the soft-start power-up
characteristic of the 22-A output product (PTH05020W),
operating from a 5-V input bus and configured for a 3.3-V
output. The waveforms were measured with a 5-A resistive
load, with Auto-Track disabled. The initial rise in input
current when the input voltage first starts to rise is the
charge current drawn by the input capacitors. Power-up
is complete within 15 ms.
Figure 3-3 shows the typical application of the inhibit
function. Note the discrete transistor (Q1). The Inhibit
control has its own internal pull-up to Vin potential. The
input is not compatible with TTL logic devices. An open-
collector (or open-drain) discrete transistor is recommended
for control.
Figure 3–3
Vo Sense
Over-Current Protection
For protection against load faults, all modules incorporate
output over-current protection. Applying a load that
exceeds the regulator’s over-current threshold will cause
the regulated output to shut down. Following shutdown
a module will periodically attempt to recover by initiating
a soft-start power-up. This is described as a “hiccup” mode
of operation, whereby the module continues in a cycle of
successive shutdown and power up until the load fault is
removed. During this period, the average current flowing
into the fault is significantly reduced. Once the fault is
removed, the module automatically recovers and returns
to normal operation.
10
9
8
5
VIN
VOUT
2
6
PTH05020W
3
1
7
4
+
+
L
O
A
D
CIN
1,000 µF
COUT
330 µF
RSET
Q1
BSS138
1 =Inhibit
GND
GND
Over-Temperature Protection
Turning Q1 on applies a low voltage to the Inhibit control
and disables the output of the module. If Q1 is then turned
off, the module will execute a soft-start power-up. A
regulated output voltage is produced within 20 msec.
Figure 3-4 shows the typical rise in both the output volt-
age and input current, following the turn-off of Q1. The
turn off of Q1 corresponds to the rise in the waveform,
Q1 Vds. The waveforms were measured with a 5-A load.
The PTHxx020 and PTHxx030 series of products have
over-temperature protection. These products have an
on-board temperature sensor that protects the module’s
internal circuitry against excessively high temperatures.
A rise in the internal temperature may be the result of a
drop in airflow, or a high ambient temperature. If the
internal temperature exceeds the OTP threshold, the
module’s Inhibit control is automatically pulled low. This
turns the output off. The output voltage will drop as the
external output capacitors are discharged by the load
circuit. The recovery is automatic, and begins with a
soft-start power up. It occurs when the the sensed tem-
perature decreases by about 10 °C below the trip point.
Figure 3–4
Note: The over-temperature protection is a last resort mecha-
nism to prevent thermal stress to the regulator. Operation at
or close to the thermal shutdown temperature is not recom-
mended and will reduce the long-term reliability of the module.
Always operate the regulator within the specified Safe Operating
Area (SOA) limits for the worst-case conditions of ambient
temperature and airflow.
Vo (2V/Div)
Iin (2A/Div)
Q1Vds (5V/Div)
Output On/Off Inhibit
For applications requiring output voltage on/off control,
each series of the PTH family incorporates an output
Inhibit control pin. The inhibit feature can be used wher-
ever there is a requirement for the output voltage from
the regulator to be turned off.
HORIZ SCALE: 10ms/Div
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Application Notes
PTH Series of Wide-Output Adjust
Power Modules (3.3/5-V Input)
Auto-Track™ Function
The Auto-Track function is unique to the PTH family,
and is available with the all “Point-of-Load Alliance”
(POLA) products. Auto-Track was designed to simplify
the amount of circuitry required to make the output
voltage from each module power up and power down in
sequence. The sequencing of two or more supply voltages
during power up is a common requirement for complex
mixed-signal applications, that use dual-voltage VLSI ICs
such as DSPs, micro-processors, and ASICs.
other modules, to its respective set-point voltage.
Figure 3-6 shows the output voltage waveforms from the
circuit of Figure 3-5 after the On/Off Control is set from a
high to a low-level voltage. The waveforms, Vo1 and Vo2
represent the output voltages from the two power mod-
ules, U1 (3.3 V) and U2 (1.8 V) respectively. Vo1 and Vo2
are shown rising together to produce the desired simul-
taneous power-up characteristic.
The same circuit also provides a power-down sequence.
Power down is the reverse of power up, and is accom-
plished by lowering the track control voltage back to zero
volts. The important constraint is that a valid input voltage
must be maintained until the power down is complete. It
also requires that Q1 be turned off relatively slowly. This
is so that the Track control voltage does not fall faster than
Auto-Track's slew rate capability, which is 1 V/ms. The
components R1 and C1 in Figure 3-5 limit the rate at
which Q1 can pull down the Track control voltage. The
values of 100 k-ohm and 0.1 µF correlate to a decay rate
of about 0.17 V/ms.
How Auto-Track Works
Auto-Track works by forcing the module’s output voltage
to follow a voltage presented at the Track control pin. This
control range is limited to between 0 V and the module’s
set-point voltage. Once the track-pin voltage is raised
above the set-point voltage, the module’s output remains
1
at its set-point . As an example, if the Track pin of a 2.5-V
regulator is at 1 V, the regulated output will be 1 V. But
if the voltage at the Track pin rises to 3 V, the regulated
output will not go higher than 2.5 V.
When under track control, the regulated output from
the module follows the voltage at its Track pin on a volt-
for-volt basis. By connecting the Track pin of a number
of these modules together, the output voltages will fol-
low a common signal during power-up and power-down.
The control signal can be an externally generated master
ramp waveform, or the output voltage from another power
supply circuit 3. For convenience the Track control incor-
porates an internal RC charge circuit. This operates off
the module’s input voltage to provide a suitable rising
voltage ramp waveform.
The power-down sequence is initiated with a low-to-high
transition at the On/Off Control input to the circuit.
Figure 3-7 shows the power-down waveforms. As the
Track control voltage falls below the nominal set-point
voltage of each power module, then its output voltage
decays with all the other modules under Auto-Track
control.
Notes on Use of Auto-Track™
1.The Track pin voltage must be allowed to rise above
the module’s set-point voltage before the module can
regulate at its adjusted set-point voltage.
Typical Application
The basic implementation of Auto-Track allows for
simultaneous voltage sequencing of a number of Auto-
Track compliant modules. Connecting the Track control
pins of two or more modules forces the Track control of
all modules to follow the same collective RC ramp wave-
form, and allows them to be controlled through a single
transistor or switch; Q1 in Figure 3-5.
2.The Auto-Track function will track almost any voltage
ramp during power up, and is compatible with ramp
speeds of up to 1 V/ms.
3. The absolute maximum voltage that may be applied to the
Track pin is Vin.
4.The module will not follow
a voltage at its Track control
To initiate a power-up sequence the Track control must
first pulled to ground potential. This should be done at
or before input power is applied to the modules, and then
held for at least 10 ms thereafter. This brief period gives
the modules time to complete their internal soft-start
initialization, which enables them to produce an output
voltage.
input until it has completed its soft-start initialization.
This takes about 10 ms from the time that the module
has sensed that a valid voltage has been applied its input.
During this period, it is recommended that the Track
pin be held at ground potential.
5.The module is capable of both sinking and sourcing
current when following a voltage at its Track pin.
Therefore startup into an output prebias is not supported
during Auto-Track control. Note: A pre-bias holdoff is
not necessary when all supply voltages rise simultaneously
under the control of Auto-Track.
Applying a logic-level high signal to the circuit’s On/Off
Control turns Q1 on and applies a ground signal to the
Track control. After completing their internal soft-start
intialization, the output of all modules will remain at zero
volts while Q1 is on. 10 ms after a valid input voltage has
been applied to all modules, Q1 can be turned off. This
allows the track control voltage to automatically rise
toward to the modules' input voltage. During this period
the output voltage of each module will rise in unison with
6.The Auto-Track functioncan be disabled by connecting
the Track pin to the input voltage (Vin). With Auto-Track
disabled, the output voltage will rise at a quicker and
more linear rate after input power is applied.
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Application Notes
PTH Series of Wide-Output Adjust
Power Modules (3.3/5-V Input)
Figure 3–5; Sequenced Power Up & Power Down Using Auto-Track
U1
10
9
8
5
Track
Vo1 =3.3 V
+
2
6
VIN
VO
+5 V
PTH05020W
+
Inhibit
3
GND
1
7
4
CIN
COUT
R2
698
C1
0.1 µF
U2
10
9
8
5
On/Off Control
Q1
Track
1
0
= Power Down
= Power Up
BSS138
R1
Vo2 =1.8 V
+
2
6
100 k
VIN
VO
PTH05010W
+
Inhibit
3
GND
1
7
4
CIN
COUT
R3
0 V
5k49
Figure 3–6; Simultaneous Power Up with Auto-Track Control
Figure 3–7; Simultaneous Power Down with Auto-Track Control
Vo1 (1 V/Div)
Vo1 (1 V/Div)
Vo2 (1 V/Div)
Vo2 (1 V/Div)
On/Off Input
(5 V/Div)
On/Off Input
(5 V/Div)
HORIZ SCALE: 10 ms/Div
HORIZ SCALE: 10 ms/Div
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Application Notes
PTH Series of Wide-Output Adjust
Power Modules (3.3/5-V Input)
Notes:
Margin Up/Down Controls
The PTHxx060W, PTHxx010W, PTHxx020W, and
PTHxx030W products incorporate Margin Up and Margin
Down control inputs. These controls allow the output
1.The Margin Up* and Margin Dn* controls were not
intended to be activated simultaneously. If they are
their affects on the output voltage may not completely
cancel, resulting in the possibility of a slightly higher
error in the output voltage set point.
1
voltage to be momentarily adjusted , either up or down,
by a nominal 5 %. This provides a convenient method
for dynamically testing the operation of the load circuit
over its supply margin or range. It can also be used to verify
the function of supply voltage supervisors. The 5 %
change is applied to the adjusted output voltage, as set by
the external resistor, Rset at the Vo Adjust pin.
2.The ground reference should be
a direct connection to
the module GND at pin 7 (pin 1 for the PTHxx050).
This will produce a more accurate adjustment at the
load circuit terminals. The transistors Q1 and Q2 should
be located close to the regulator.
The 5 % adjustment is made by pulling the appropriate
margin control input directly to the GND terminal .
2
3.The Margin Up and Margin Dn control inputs are not
compatible with devices that source voltage. This includes
TTL logic. These are analog inputs and should only be
controlled with a true open-drain device (preferably
a discrete MOSFET transistor). The device selected
should have low off-state leakage current. Each input
sources 8 µA when grounded, and has an open-circuit
voltage of 0.8 V.
A low-leakage open-drain device, such as an n-channel
MOSFET or p-channel JFET is recommended for this
3
purpose . Adjustments of less than 5 % can also be accom-
modated by adding series resistors to the control inputs.
The value of the resistor can be selected from Table 3-2,
or calculated using the following formula.
Up/Down Adjust Resistance Calculation
To reduce the margin adjustment to something less than
5 %, series resistors are required (See RD and RU in
Figure 3-8). For the same amount of adjustment, the
resistor value calculated for RU and RD will be the same.
The formulas is as follows.
Table 3-2; Margin Up/Down Resistor Values
% Adjust
RU / RD
0.0 kΩ
24.9 kΩ
66.5 kΩ
150.0 kΩ
397.0 kΩ
5
4
3
2
1
499
∆%
RU or RD=
– 99.8
kΩ
Where ∆% = The desired amount of margin adjust in
percent.
Figure 3–8; Margin Up/Down Application Schematic
10
9
8
1
7
6
+Vo
0V
PTH05010W
(Top View)
VIN
+VOUT
2
3
4
5
RD
RU
+
RSET
0.1 W, 1 %
+
Cin
MargDn
MargUp
Cout
L
O
A
D
Q1
Q2
GND
GND
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Application Notes
PTH Series of Wide-Output Adjust
Power Modules (3.3/5-V Input)
Notes
Pre-Bias Startup Capability
Only selected products in the PTH family incorporate this
capability. Consult Table 3-1 to identify which products
are compliant.
1.Startup includes the short delay (approx. 10 ms) prior
to the output voltage rising, followed by the rise of the
output voltage under the module’s internal soft-start
control. Startup is complete when the output voltage
has risen to either the set-point voltage or the voltage
at the Track pin, whichever is lowest.
A pre-bias startup condition occurs as a result of an external
voltage being present at the output of a power module prior
to its output becoming active. This often occurs in com-
plex digital systems when current from another power
source is backfed through a dual-supply logic component,
such as an FPGA or ASIC. Another path might be via
clamp diodes as part of a dual-supply power-up sequencing
arrangement. A prebias can cause problems with power
modules that incorporate synchronous rectifiers. This is
because under most operating conditions, these types of
modules can sink as well as source output current.
2.To ensure that the regulator does not sink current when
power is first applied (even with a ground signal applied
to the Inhibit control pin), the input voltage must always
be greater than the output voltage throughout the
power-up and power-down sequence.
3.The Auto-Track function can be disabled at power up
by immediately applying a voltage to the module’s Track
pin that is greater than its set-point voltage. This can
be easily accomplished by connecting the Track pin to
Vin.
The PTH family of power modules incorporate synchro-
1
nous rectifiers, but will not sink current during startup ,
or whenever the Inhibit pin is held low. However, to ensure
satisfactory operation of this function, certain conditions
must be maintained. Figure 3-9 shows an application
Figure 3–10; Pre-Bias Startup Waveforms
2
demonstrating the pre-bias startup capability. The start-
up waveforms are shown in Figure 3-10. Note that the
output current from the PTH03010W (Io) shows negli-
gible current until its output voltage rises above that
backfed through diodes D1 and D2.
Vin (1 V/Div)
Vo (1 V/Div)
Note: The pre-bias start-up feature is not compatible with
Auto-Track. When the module is under Auto-Track control,
it will sink current if the output voltage is below that of a
back-feeding source. To ensure a pre-bias hold-off one of two
approaches must be followed when input power is applied to
Io (5 A/Div)
3
the module. The Auto-Track function must either be disabled ,
or the module’s output held off (for at least 50 ms) using the
Inhibit pin. Either approach ensures that the Track pin volt-
age is above the set-point voltage at start up.
HORIZ SCALE: 5 ms/Div
Figure 3–9; Application Circuit Demonstrating Pre-Bias Startup
VIN = 3.3 V
10
9
8
5
Track
Sense
Vo = 2.5 V
2
6
VIN
Inhibit
VO
P T H 0 3 0 1 0 W
GND
+
Vadj
Io
3
1
7
4
VCCIO
VCORE
R2
2k21
+
+
CIN
COUT
330 µF
330 µF
ASIC
For technical support and further information visit http://power.ti.com
Application Notes
PTH Series of Wide-Output Adjust
Power Modules (3.3/5-V Input)
Remote Sense
The PTHxx060W, PTHxx010W, PTHxx020W, and
PTHxx030W products incorporate an output voltage
sense pin, Vo Sense. The Vo Sense pin should be connected
to Vout at the load circuit (see data sheet standard appli-
cation). A remote sense improves the load regulation
performance of the module by allowing it to compensate
for any ‘IR’ voltage drop between itself and the load. An
IR drop is caused by the high output current flowing
through the small amount of pin and trace resistance.
Use of the remote sense is optional. If not used, the
Vo Sense pin can be left open-circuit. An internal low-
value resistor (15-Ω or less) is connected between the
Vo Sense and Vout. This ensures the output voltage remains
in regulation.
With the sense pin connected, the difference between
the voltage measured directly between the Vout and GND
pins, and that measured from Vo Sense to GND, is the
amount of IR drop being compensated by the regulator.
This should be limited to a maximum of 0.3 V.
Note: The remote sense feature is not designed to compensate
for the forward drop of non-linear or frequency dependent
components that may be placed in series with the converter
output. Examples include OR-ing diodes, filter inductors,
ferrite beads, and fuses. When these components are enclosed
by the remote sense connection they are effectively placed
inside the regulation control loop, which can adversely affect
the stability of the regulator.
For technical support and further information visit http://power.ti.com
PACKAGE OPTION ADDENDUM
www.ti.com
18-Jul-2006
PACKAGING INFORMATION
Orderable Device
PTH03030WAD
PTH03030WAH
PTH03030WAS
PTH03030WAST
PTH03030WAZ
PTH03030WAZT
Status (1)
ACTIVE
ACTIVE
ACTIVE
ACTIVE
ACTIVE
ACTIVE
Package Package
Pins Package Eco Plan (2) Lead/Ball Finish MSL Peak Temp (3)
Qty
Type
Drawing
DIP MOD
ULE
EUM
13
13
13
13
13
13
16
Pb-Free
(RoHS)
Call TI
Call TI
Call TI
Call TI
Call TI
Call TI
N / A for Pkg Type
DIP MOD
ULE
EUM
EUN
EUN
EUN
EUN
16
Pb-Free
(RoHS)
N / A for Pkg Type
DIP MOD
ULE
16
TBD
Level-1-235C-UNLIM
Level-1-235C-UNLIM
Level-3-260C-168 HR
Level-3-260C-168 HR
DIP MOD
ULE
200
16
TBD
DIP MOD
ULE
Pb-Free
(RoHS)
DIP MOD
ULE
200
Pb-Free
(RoHS)
(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)
Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS), Pb-Free (RoHS Exempt), or Green (RoHS & no Sb/Br) - please check
http://www.ti.com/productcontent for the latest availability information and additional product content details.
TBD: The Pb-Free/Green conversion plan has not been defined.
Pb-Free (RoHS): TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements
for all 6 substances, including the requirement that lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered
at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes.
Pb-Free (RoHS Exempt): This component has a RoHS exemption for either 1) lead-based flip-chip solder bumps used between the die and
package, or 2) lead-based die adhesive used between the die and leadframe. The component is otherwise considered Pb-Free (RoHS
compatible) as defined above.
Green (RoHS & no Sb/Br): TI defines "Green" to mean Pb-Free (RoHS compatible), and free of Bromine (Br) and Antimony (Sb) based flame
retardants (Br or Sb do not exceed 0.1% by weight in homogeneous material)
(3)
MSL, Peak Temp. -- The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder
temperature.
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 1
IMPORTANT NOTICE
Texas Instruments Incorporated and its subsidiaries (TI) reserve the right to make corrections, modifications,
enhancements, improvements, and other changes to its products and services at any time and to discontinue
any product or service without notice. Customers should obtain the latest relevant information before placing
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and conditions of sale supplied at the time of order acknowledgment.
TI warrants performance of its hardware products to the specifications applicable at the time of sale in
accordance with TI’s standard warranty. Testing and other quality control techniques are used to the extent TI
deems necessary to support this warranty. Except where mandated by government requirements, testing of all
parameters of each product is not necessarily performed.
TI assumes no liability for applications assistance or customer product design. Customers are responsible for
their products and applications using TI components. To minimize the risks associated with customer products
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Use of such information may require a license from a third party under the patents or other intellectual property
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Reproduction of information in TI data books or data sheets is permissible only if reproduction is without
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Resale of TI products or services with statements different from or beyond the parameters stated by TI for that
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Following are URLs where you can obtain information on other Texas Instruments products and application
solutions:
Products
Applications
Audio
Amplifiers
amplifier.ti.com
www.ti.com/audio
Data Converters
dataconverter.ti.com
Automotive
www.ti.com/automotive
DSP
dsp.ti.com
Broadband
Digital Control
Military
www.ti.com/broadband
www.ti.com/digitalcontrol
www.ti.com/military
Interface
Logic
interface.ti.com
logic.ti.com
Power Mgmt
Microcontrollers
power.ti.com
Optical Networking
Security
www.ti.com/opticalnetwork
www.ti.com/security
www.ti.com/telephony
www.ti.com/video
microcontroller.ti.com
Low Power Wireless www.ti.com/lpw
Telephony
Video & Imaging
Wireless
www.ti.com/wireless
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Post Office Box 655303 Dallas, Texas 75265
Copyright 2006, Texas Instruments Incorporated
PTH03030WAST 替代型号
型号 | 制造商 | 描述 | 替代类型 | 文档 |
PTH03030WAZ | ARTESYN | DC-DC CONVERTERS POLA Non-isolated | 完全替代 |
![]() |
PTH03030WAZ | TI | 30-A, 3.3-V Input Non-Isolated Wide-Output Adjust Power Module | 完全替代 |
![]() |
PTH03030WAST 相关器件
型号 | 制造商 | 描述 | 价格 | 文档 |
PTH03030WAZ | ARTESYN | DC-DC CONVERTERS POLA Non-isolated | 获取价格 |
![]() |
PTH03030WAZ | TI | 30-A, 3.3-V Input Non-Isolated Wide-Output Adjust Power Module | 获取价格 |
![]() |
PTH03030WAZT | ARTESYN | DC-DC CONVERTERS POLA Non-isolated | 获取价格 |
![]() |
PTH03030WAZT | TI | 30-A, 3.3-V Input Non-Isolated Wide-Output Adjust Power Module | 获取价格 |
![]() |
PTH03050 | ARTESYN | DC-DC CONVERTERS POLA Non-isolated | 获取价格 |
![]() |
PTH03050 | EMERSON-NETWORKPOWER | DC-DC CONVERTERS POLA Non-isolated | 获取价格 |
![]() |
PTH03050W | TI | 6-A, 5-V Input Non-Isolated Wide-Output Adjust Power Module | 获取价格 |
![]() |
PTH03050W | SLPOWER | Non-Isolated PCB Mount | 获取价格 |
![]() |
PTH03050WAD | ARTESYN | DC-DC CONVERTERS POLA Non-isolated | 获取价格 |
![]() |
PTH03050WADT | ARTESYN | DC-DC CONVERTERS POLA Non-isolated | 获取价格 |
![]() |
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