Electronic Design

  
Reprints     Printer-Friendly    Email this Article    RSS        Font Size     What's This?


[Ideas For Design]
Precision Thermostat Uses TBH And AC Feed-Forward Compensation

W. Stephen Woodward  |   ED Online ID #4129  |   March 19, 2001


Precision temperature control with relatively high-power heaters driven directly from unregulated "120-V" ac lines is an efficient, inexpensive way to manage large thermal loads. A number of annoying complications can render this straightforward method problematic, however.

Among the worst of these troubles are the ubiquitous, random, and large variations in the ac mains. Variations in the RMS line voltage of ±5% (and worse) are ever present, which can make accurate temperature control very difficult. Every 1% twitch in RMS heater voltage will translate to a 2% lurch in square-law (VH2/RH) heating. Temperature regulation may go entirely to pot before thermal excursions resulting from these random power changes can be caught and corrected by an unaided thermal control loop. Two possible solutions for this problem are pre-regulating the heater supply (expensive for big loads) and compensating for the variations.

This thermostat serves in a thermal control application that offers a perfect example of intolerance for temperature-variation, high-resolution, and optical resonant cavities (etalons) used in tunable-laser development (see the figure). Etalons employ the principle of optical interference to precisely measure the wavelength of light in a laser beam. To do this accurately, the internal dimensions of the etalon must remain constant to within a tolerance of tens of nanometers. Despite the use of low thermal expansion materials in etalon fabrication, such extreme dimensional stability can only happen if the temperature of the etalon is rigidly controlled. For this reason, the design stability for this thermostat circuit is ±0.01°C.

The principles underlying this circuit's thermal control loop are described in "Take Back Half: A Novel Integrating Temperature-Control Algorithm," Electronic Design, Dec. 4, 2000, p. 132. Here, a Kelvin-connected platinum resistance temperature detector (PRTD), operates in conjunction with the bridge network and voltage reference VR1. Together they produce a temperature-sensitive voltage, VRTD, and a setpoint voltage, VP1.

The temperature-setpoint error voltage (VRTD − VP1) is input to the TBH integrator A1. After this, the integrator output is scaled by the adjustable R7 × C1 time-constant, buffered by A2, and output as I1 to pulse-width-modulator A4. Therefore, if VRTD < VP1 (i.e., temperature > setpoint), VC2 will ramp up. This causes the heater duty factor (HPWM) to ramp down and the heater, RH, to cool off. If VRTD > VP1 (i.e., temperature < setpoint), HPWM will ramp (and RH will heat) up.

Meanwhile, crossed-diodes Q2/Q3 and comparator A3 track the sign of the VP1 − VRTD difference. A3's output goes high when VP1 > VRTD and low when VP1 < VRTD. Temperature-setpoint crossings will cause the S2/S3 cross-connected CMOS switches to merge the charges on capacitors C2 and C1. This allows the TBH convergence-forcing bisection (described in the TBH article mentioned above) to go into effect.

Feed-forward compensation for potentially pesky 120-V variations occurs via sampling of the heater supply voltage (VH) by S1 and the R2/R4 network. Compensation is achieved by the A4 PWM oscillator. It closes a feedback loop through S1, which strives to adjust HPWM to maintain the charge balance on C4. For this to happen, I1, the heater power-control signal from the A1/A2 error-integrator, must be balanced by I2, the average current sourced to C4 by S1. Because I2 = HPWM(VH − 75)/R2, at balance HPWM = I1 × R2/(VH − 75). So for any given value of I1, HPWM is inversely proportional to (VH − 75).

HPWM then changes by −2% for each +1% deviation of VH from its nominal value of 150 V. For example, let RH = 100 Ω, VH = 150 V, and HPWM = 50%. Then PH = HPWM × VH2/RH = 0.5 × 1502/100 = 112.5 W. Now suppose VH were to suddenly increase by 10 V (VH = 160 V). Without the feed-forward compensation feature, PH would jump by more than 15 W to 0.5 × 1602/100 = 128 W. But instead, the feed-forward compensation kicks in to drop HPWM to 44%, limiting PH to 0.44 × 1602/100 = 112.6 W. Consequently, the unwanted PH excursion is reduced to an insignificant 0.1 W.


Reprints   Printer-Friendly  Email this Article  RSS    Font Size   What's This?


  • A Mid-Year Check On The Optimism Meter
  • Cadence’s Grab For Mentor In Flux
  • “Turbo” Technology Enhances RF Verification
  • Partnership Yields Concurrent Mechanical and PCB Design
  • Testbench Tool Exploits Distributed Compute Environments
  • Hardware/Software Co-Design Comes Of Age
  • Show Videos Take Center Stage On ElectronicDesign.com
  • Formal Verification Suite Takes In Wider View Of Designs
    1) Build A Smart Battery Charger Using A Single-Transistor Circuit
    (242 views today)
    2) Bob's Mailbox
    (120 views today)
    3) Smart Optics Push Camera Phones Out Of The “Dark” Ages
    (108 views today)
    4) Easily Convert Decimal Numbers To Their Binary And BCD Formats
    (101 views today)
    5) Trick A BJT-Based Converter Into Starting At Only 250 mV DC
    (89 views today)
    ALL TOP 20



    Reader Comments

    Please learn how to draw a schematic!!!!

    Anonymous -August 18, 2005

    POST YOUR COMMENTS HERE
    Name:

    Email:
    Your Comments:

    Enter the text from the image below


    Please refresh the page if you have trouble reading this text.

    Search Electronic Design
         
      
     
    Email Newsletter
    Sponsored By:
    Electronic Design UPDATE provides readers with late-breaking news, opinions from industry experts, and timely technology stories. It's a unique opportunity to get your product message in front of engineers, engineering managers, and corporate managers while they're reading about critical information online.

    Enter Email to Subscribe
      

    Electronic Design Europe Electronic Design China EEPN Power Electronics Auto Electronics Microwaves & RF RF Design
    Schematics Find Power Products Military Electronics Featured Vendors EE Events Free Design Resources