1 / 17

4GFC Amplitude Budget Spreadsheet

4GFC Amplitude Budget Spreadsheet. Mike Jenkins. Summary of Contents (1 of 2):. Amplitude Budget Spreadsheet Details of Amplitude Budget penalties: Near End & Far End Voltage Relationships Interconnect Mismatch Penalty Examples: SMA Compliance Interconnect (measured)

chelsa
Download Presentation

4GFC Amplitude Budget Spreadsheet

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. 4GFC Amplitude Budget Spreadsheet Mike Jenkins T11/04-009v0

  2. Summary of Contents (1 of 2): • Amplitude Budget Spreadsheet • Details of Amplitude Budget penalties: • Near End & Far End Voltage Relationships • Interconnect Mismatch Penalty • Examples: • SMA Compliance Interconnect (measured) • XAUI Backplane (measured) • Amplitude Spreadsheet Values (simulated) T11/04-009v0

  3. Summary of Contents (2 of 2): • Formula for eye at far end of Compliance Interconnect is slightly pessimistic (but probably compensated by other real, eye-closing measurement effects) • Formula for impedance mismatch is slightly optimistic (i.e., eye closes more than predicted) • Formula for eye closure due to multi-reflection penalty appears to be very optimistic • With worst case variations in impedance of backplane, PCB (after beta-R point) & RX termination, eye closure can be extreme (305 mV out of Interconnect at beta R can reduce to 90 mV at alpha R) T11/04-009v0

  4. TX -> RX Amplitude BudgetDouble click to access live Excel spreadsheet(Measured examples on SMA CI & Backplane tabs) T11/04-009v0

  5. Compliance Interconnect Eye Opening (1 of 2) Near End Far End V1 V2 V3 V4 EMPH=1-V2/V1 Atten(f/2)=V4/V1 Atten(f/10)=V3/V2 T11/04-009v0

  6. Compliance Interconnect Eye Opening (2 of 2) V4 Far End V3 EYE EYE = 2*V4 – V3 = V1{2*Atten(f/2) – (1-EMPH)*Atten(f/10)} T11/04-009v0

  7. Interconnect Mismatch (1 of 2) rtr,bT = 2 ZI / (ZT+ZI) rtr,bR = 2 ZR / (ZI+ZR) TX bT bR ZI ZT ZR -12 dB > 20 LOG10 |(ZT-ZREF)/ (ZT+ZREF)| -12 dB > 20 LOG10 |(ZI-ZREF)/ (ZI+ZREF)| -12 dB > 20 LOG10 |(ZR-ZREF)/ (ZR+ZREF)| Q = 10-12/20 = 0.251 so max ZT, ZI, ZR = ZREF (1+Q)/(1-Q) = 1.671 ZREF = ZMAXand min ZT, ZI, ZR = ZREF (1-Q)/(1+Q)= 0.598 ZREF = ZMIN T11/04-009v0

  8. Worst case is ZT = ZMAX TX voltage measured with ZI = ZR = ZREF : rtr,bT = 2 ZR / (ZMAX+ZR) rtr,bR = 2 ZR / (ZR+ZR) = 1 In w/c system, ZI = ZMIN: rtr,bT = 2 ZMIN/(ZMAX+ZMIN) rtr,bR = 2 ZR / (ZMIN+ZR) Therefore, ratio of actual w/c voltage in system to voltage measured with ideal ZREF interconnect is: [2 ZMIN * 2 ZR * (ZMAX+ZR)]/ [2 ZR (ZMAX+ZMIN)(ZMIN+ZR)] = [2(1-Q)/(1+Q)] [2/(1-Q)] / [2(1+Q2)/(1-Q2)] [2/(1+Q)] = (1-Q2)/(1+Q2) Interconnect Mismatch (2 of 2) T11/04-009v0

  9. Measured example:SMA Compliance Interconnect zero length measurement thru Compliance Interconnect 1541 mVdpp 966 mVdpp 785 mVdpp 574 mVdpp EMPH = 1-966/1541 = 37.3% Att(F/2) = 574/1541 = -8.58 dB Att(F/10) = 785/966 = -1.80 dB T11/04-009v0

  10. Measured example:XAUI Backplane 1650 mVdpp 1034 mVdpp 828 mVdpp 524 mVdpp EMPH = 1-1034/1650 = 37.3% Att(F/2) = 524/1650 = -9.96 dB Att(F/10) = 828/1034 = -1.93 dB T11/04-009v0

  11. Simulated example:Amplitude Spreadsheet Values (Summary of 6 following slides) • 928 mVdpp with 38% pre-emphasis yielding 570 mVdpp near end eye Compares well with spreadsheet formula • (Same as #1) with TX termination at ZMAX (167W) Same. TX voltage adjusted to deliver same p-p thru higher R • (Same as #2) thru Compliance Interconnect 377 mVdpp eye compared with 310 mVdpp in spreadsheet (+22% error) • (Same as #3) with Interconnect at ZMIN (60W) 305 mVdpp eye compared with 274 mVdpp in spreadsheet (+11% error) • (Same as #4) with 4.2” of 167W (ZMAX) PCB trace added after beta R 188 mVdpp eye lower than 242 mVdpp in spreadsheet (-23% error) • (Same as #5) with RX termination at ZMIN (60W) 90 mVdpp eye opening Note: Percent errors are cumulative (e.g., +11% implies that formula in #4 partially compensated for +22% error due to formula in #3). T11/04-009v0

  12. #1 • P-P TX ampl (Min) • min TX Ampl • 38% Emphasis • nom ZT • 570 mV ~ (1-38%) x 928 mV T11/04-009v0

  13. #2 • P-P TX ampl (Min) • min TX Ampl • 38% Emphasis • max ZT • 570 mV ~ (1-38%) x 928 mV T11/04-009v0

  14. #3 • Min Compliance Interconnect Eye • min TX Ampl • 38% Emphasis • max ZT • Compliance Channel @ nom ZI • 377 mV compares with 311 mV in spreadsheet T11/04-009v0

  15. #4 • Interconnect mismatch (beta R) • min TX Ampl • 38% Emphasis • max ZT • Interconnect (same loss as CI) @ min ZI • 305 mV compares with 274 mV in spreadsheet T11/04-009v0

  16. #5 • Multi-reflection Penalty (1 of 2) • min TX Ampl • 38% Emphasis • max ZT • Interconnect (same loss as CI) @ min ZI • PCB (after beta R) @ max Z • ZR @ nomZ • 188 mV compares with 242 mV in spreadsheet • ?? T11/04-009v0

  17. #6 • Multi-reflection Penalty (2 of 2) • min TX Ampl • 38% Emphasis • max ZT • Interconnect (same loss as CI) @ min ZI • PCB (after beta R) @ max Z • ZR @ min Z • 90.4 mV compares with 242 mV in spreadsheet • ??? T11/04-009v0

More Related