SLTS262K October   2005  – May 2026 PTH08T210W

PRODUCTION DATA  

  1.   1
  2. Features
  3. Applications
  4. Description
  5. Pin Configuration and Functions
  6. Specifications
    1. 5.1 Absolute Maximum Ratings
    2. 5.2 Recommended Operating Conditions
    3. 5.3 Electrical Characteristics
    4. 5.4 Typical Characteristics
    5. 5.5 Typical Characteristics
  7. Detailed Description
    1. 6.1 Overview: TurboTrans™ Technology
    2. 6.2 Feature Description
      1. 6.2.1 Soft-Start Power Up
      2. 6.2.2 Remote Sense
  8. Application and Implementation
    1. 7.1 Typical Application
      1. 7.1.1 Detailed Design Procedure
        1. 7.1.1.1 Capacitor Recommendations
          1. 7.1.1.1.1 Input Capacitor (Required)
          2. 7.1.1.1.2 TurboTrans Output Capacitor
          3. 7.1.1.1.3 Non-TurboTrans Output Capacitor
          4. 7.1.1.1.4 Ceramic Capacitors
          5. 7.1.1.1.5 Tantalum, Polymer-Tantalum Capacitors
          6. 7.1.1.1.6 Capacitor Table
          7. 7.1.1.1.7 Designing for Fast Load Transients
        2. 7.1.1.2 TurboTrans™ Selection
          1. 7.1.1.2.1 RTT Resistor Selection
          2. 7.1.1.2.2 RTT Resistor Selection
          3. 7.1.1.2.3 RTT Resistor Selection
        3. 7.1.1.3 Adjusting the Output Voltage
        4. 7.1.1.4 Undervoltage Lockout (UVLO)
        5. 7.1.1.5 UVLO Adjustment
        6. 7.1.1.6 Output On/Off Inhibit
        7. 7.1.1.7 Overcurrent Protection
        8. 7.1.1.8 Overtemperature Protection (OTP)
        9. 7.1.1.9 Auto-Track™ Function
          1. 7.1.1.9.1 How Auto-Track™ Works
          2. 7.1.1.9.2 Typical Application
          3. 7.1.1.9.3 Notes on Use of Auto-Track™
  9. Device and Documentation Support
    1. 8.1 Receiving Notification of Documentation Updates
    2. 8.2 Support Resources
    3. 8.3 Trademarks
    4. 8.4 Electrostatic Discharge Caution
    5. 8.5 Glossary
  10. Revision History
  11. 10Mechanical, Packaging, and Orderable Information
    1. 10.1 Tape and Reel and Tray Drawings

TurboTrans™ Selection

Utilizing TurboTrans requires connecting a resistor, RTT, between the +Sense pin (pin 10) and the TurboTrans pin (pin 13). The value of the resistor directly corresponds to the amount of output capacitance required. All T2 products require a minimum value of output capacitance whether or not TurboTrans is used. For the PTH08T210W, the minimum required capacitance is 470 μF. When using TurboTrans, capacitors with a capacitance × ESR product below 10,000 μF × mΩ are required. (Multiply the capacitance (in μF) by the ESR (in mΩ) to determine the capacitance × ESR product.) See the Capacitor Selection section of the datasheet for a variety of capacitors that meet this criteria.

Figure 7-2 through Figure 7-7, show the amount of output capacitance required to meet a desired transient voltage deviation with and without TurboTrans for several capacitor types; Type A (e.g. ceramic), Type B (e.g. polymer-tantalum), and Type C (e.g. OS-CON). To calculate the proper value of RTT, first determine the required transient voltage deviation limits and magnitude of the transient load step. Next, determine what type of output capacitors to be used. (If more than one type of output capacitor is used, select the capacitor type that makes up the majority of the total output capacitance.) Knowing this information, use the chart in Figure 7-2 through Figure 7-7 that corresponds to the capacitor type selected. To use the chart, begin by dividing the maximum voltage deviation limit (in mV) by the magnitude of the load step (in Amps). This gives a mV/A value. Find this value on the Y-axis of the appropriate chart. Read across the graph to the 'With TurboTrans' plot. From this point, read down to the X-axis which lists the minimum required capacitance, CO, to meet the transient voltage deviation. The required RTT resistor value can then be calculated using Equation 1 or selected from the TurboTrans table. The TurboTrans tables include both the required output capacitance and the corresponding RTT values to meet several values of transient voltage deviation for 25% (7.5 A), 50% (15 A), and 75% (22.5 A) output load steps.

The chart can also be used to determine the achievable transient voltage deviation for a given amount of output capacitance. Selecting the amount of output capacitance along the X-axis, reading up to the 'With TurboTrans' curve, and then over to the Y-axis, gives the transient voltage deviation limit for that value of output capacitance. The required RTT resistor value can be calculated using Equation 1 or selected from the TurboTrans table.

As an example, let's look at a 12-V application requiring a 75 mV deviation during a 15 A, 50% load transient. A majority of 330 μF, 10 mΩ output capacitors will be used. Use the 12 V, Type B capacitor chart, Figure 7-4. Dividing 75 mV by 15 A gives 5 mV/A transient voltage deviation per amp of transient load step. Select 5 mV/A on the Y-axis and read across to the 'With TurboTrans' plot. Following this point down to the X-axis gives us a minimum required output capacitance of approximately 1300 μF. The required RTT resistor value for 1300 μF can then be calculated or selected from Figure 7-4. The required RTT resistor is approximately 10.2 kΩ.

To see the benefit of TurboTrans, follow the 5 mV/A marking across to the 'Without TurboTrans' plot. Following that point down shows that a minimum of 8200 μF of output capacitance is required to meet the same transient deviation limit. This is the benefit of TurboTrans. A typical TurboTrans application schematic is shown in Figure 7-1.

PTH08T210W Type
                        A Capacitor (Ceramic)
100 ≤ C(μF) × ESR (mΩ) ≤ 1000 12-V Input
Figure 7-2 Type A Capacitor (Ceramic)
PTH08T210W Type
                        A Capacitor (Ceramic)
100 ≤ C(μF) × ESR (mΩ) ≤ 1000 8-V Input
Figure 7-3 Type A Capacitor (Ceramic)
Table 7-2 Type A TurboTrans CO Values and Required RTT Selection Table
Transient Voltage Deviation (mV) 12 V Input 8 V Input
25%
Load Step
(7.5 A)
50%
Load Step
(15 A)
75%
Load Step
(22.5 A)
CO
Minimum Required Output Capacitance
(μF)
RTT
Required TurboTrans
Resistor (Ω)
CO
Minimum Required Output Capacitance
(μF)
RTT
Required TurboTrans
Resistor (Ω)
130 260 390 470 open 580 127 k
120 240 360 520 294 k 640 80.6 k
110 220 330 580 127 k 710 54.9 k
100 200 300 650 76.8 k 800 37.4 k
90 180 270 740 47.5 k 900 26.7 k
80 160 240 850 31.6 k 1050 17.8 k
70 140 210 1000 20.5 k 1250 11.3 k
60 120 180 1200 12.7 k 1500 6.65 k
50 100 150 1500 6.65 k 1900 2.55 k
40 80 120 2000 1.82 k 2600 0
30 60 90 4000 0 7800 0