METHOD FOR DETECTING AND ADJUSTING POOR BACK DRILLS IN PRINTED CIRCUIT BOARDS
20230026067 · 2023-01-26
Inventors
- Michael Caprio (Monroe Township, NJ, US)
- Dwarkesh Patel (Piscataway, NJ, US)
- Hiren Patel (Hillsborough, NJ, US)
- Yubing Wong (Pennington, NJ, US)
- Donald Eric Thompson (Fremont, CA, US)
Cpc classification
G01R31/2812
PHYSICS
H05K2203/0207
ELECTRICITY
H05K1/0251
ELECTRICITY
H05K1/115
ELECTRICITY
H05K3/429
ELECTRICITY
International classification
Abstract
The present invention provides a method for detecting and adjusting failed back-drills in PCBs in the process of fabricating a PCB so that the failed back-drill can be screened out or repaired. This is accomplished, by after detecting poor back drills in a PCB, measuring the actual thickness of each PCB board. Next, the measured actual thickness of each PCB board is compared with .the theoretical thickness of each PCB board. The back drill depth for each area of the PCB board is then adjusted for its theoretical thickness and percent variation from the measured thickness.to adjust the poor back drill.
Claims
1. A method for detecting and adjusting poor or failed back-drills in printed circuit boards (PCBs), comprising: selecting a designed or configured printed circuit board; adding a shorting trace or a short to ground connection near a signal via where said connection is cut by a back-drill in said printed circuit board (PCB); and electrically testing said via to determine if said shorting trace electrically connects signal to ground which indicates that said back-drill has failed or is poor resulting in a lower bandwidth transmission line; measuring actual thickness of each PCB board; comparing measured actual thickness of each PCB board with .theoretical thickness of each PCB board; adjusting said back drill depth for in each area of said PCB board for its theoretical thickness and percent variation from said measured thickness.to adjust said poor back drill producing a back drill stub of approximately consistent length for each said PCB Board having a tight tolerance for high speed signal applications.
2. The method according to claim 1 wherein said adjusting said back drill depth step produces a back drill stub of approximately a same length 0.1 mil to 2 mil for each said PCB Board having a tolerance range of ±_1 mil for high speed signal applications 30 to 100 GHZ. 2.
2. The method according to claim 1 wherein said shorting trace has a stub length of approximately 10 mils plus or minus 5 mil back-drill.
3. The method according to claim 1 wherein said shorting trace is located on ground layers only.
4. The method according to claim 1 wherein said shorting trace is located on ground or power or signal layers.
5. The method according to claim 1 wherein said shorting trace is located on any layer including multiple layers or a layer closest to a signal trace approximately 5 mils past said signal trace within back-drill tolerances
6. The method according to claim 1 wherein said shorting trace is located on either a ground layers only, on ground or power layers, or on any layer including multiple layers or a layer closest to a signal trace within back-drill tolerances of plus or minus 3 mils.
7. The method according to claim 1 wherein said steps of claim 1 are software executed by including: selecting one or more design files for a PCB in a computer system; updating all back drill vias in said one or more selected design files to create an intentional short to ground for a PCB from said one or more selected design files comparing the PCB files before and after said intentional short to verify correct functionality comparing error checking output files to expected errors generated from said software wherein a shorting of a signal via to ground will create an error that will be detected by detection software in said computer system to ensure identification of unrelated errors beyond the expected errors from said intentional short.
8. The method according to claim 7 further comprising said computer system includes said detection software having a design rule check (DRC) that looks for nets that are shorted together and other error checking and includes adding the shorting trace at all back-drill locations and adjusting the layer said shorting trace is on by the tolerance of the back-drill and the depth or layer of the signal trace.
9. The method according to claim 8 wherein once the shorting traces are added the DRC errors will be displayed or shown by said computer system and said back-drill shorting trace 10 and DRC flags are predicted and screened out so that DRC flags for legitimate errors are caught and fixed.
10. The method according to claim 1 wherein said measured thickness is measured with a thickness measurement gauge.
11. The method according to claim 1 wherein said comparison is accomplished by one of either a computer, microprocessor or other software stored device that includes tabulation of theoretical thicknesses for said PCBs.
12. A method for adjusting detected poor or failed back-drills in printed circuit boards (PCBs), comprising: selecting a designed or configured of one of each printed circuit board; measuring actual thickness of each PCB board; comparing measured actual thickness of each PCB board with .theoretical thickness of each PCB board; and adjusting said back drill depth for in each area of said PCB board for its theoretical thickness and percent variation from said measured thickness to adjust correct said poor back drill producing a back drill stub of approximately consistent length for each said PCB Board having a tight tolerance for high speed signal applications.
13. The method accursing to claim 1 wherein said measured thickness is measured with a thickness measurement gauge.
14. The method according to claim 1 wherein said comparison is accomplished by one of either a computer, microprocessor or other software stored device including cloud storage, thumb wheel drives, hard discs, floppy discs, and back-up drives that includes tabulation of theoretical thicknesses for said PCBs.
15. The method according to claim 1 wherein said high speed applications are 30 to 100 GHZ.
16. The method according to claim 1 wherein said high speed applications are 30 to 70 GHZ
17. The method according to claim 1 wherein said back drill depth for in each area of said PCB board for its theoretical thickness and percent variation from said measured thickness.to adjust said poor back drill producing a back drill stub of approximately a same length 0.1 mil to 2 mil for each said PCB Board having a tolerance range of ±1 mil for high speed signal applications.
18. The method according to claim 1 wherein said back drill depth for in each area of said PCB board for its theoretical thickness and percent variation from said measured thickness.to adjust said poor back drill producing a back drill stub of approximately a same length 3 mil to 5 mil for each said PCB Board having a tolerance range of ±3 mil for high speed signal applications.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0045] The referenced elements for the present invention include: [0046] 1. PCB 5. (FIG is replaced, see separately attached) [0047] 2. Via or hole 8. (hole that does not need to be back drilled) [0048] 3. Shorting trace or stub 10 [0049] 4. Signal level or trace or stripline 16 [0050] 5. Back-drill 15. [0051] 6. Ground/power plane 23. [0052] 7. Transmission line or signal path 11. [0053] 8. PCB thick area 5a. [0054] 9. PCB thin area 5b. [0055] 10. Measuring tools 50
[0056] Referring now to the drawings,
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[0062] The methodology of the claimed invention is preferably software implemented in the following steps: [0063] 1. Execute the program and select the design files [0064] 2. There are three sections [0065] Back Drill [0066] Compare IPC [0067] Compare Shorts [0068] 3. The first section “Back Drill” will update all back drill vias to create intentional short to ground [0069] 4. The second section “Compare IPC” will compare the board files before and after intentional short to verify correct functionality [0070] 5. The third section “Compare Shorts” compares the error checking output files to the expected errors that are generated from this software. The shorting of a signal via to ground will create a DRC error that other computer aided manufacturing software will detect. CAM 350 is an example of Gerber Computer Aided Manufacturing tool that will detect said errors. This section will make sure that other unrelated errors are separated from errors caused by this process [0071] B. Back-Drill program details [0072] 1. User implements the following parameters: [0073] a. Via stub length: This value is the minimum stub length before a short can be added (E.g. 10 mils) [0074] b. Ground net: This is the name of the ground net in the PCB design software. (E.g. “VSS”) [0075] c. Copper Web: This value is the copper web in the custom antipad allowing ground copper to flow in the back drill vias by default the tool will use a value of 5 mils. [0076] d. Copper Diameter: This is the copper diameter around the hole. [0077] Program steps include: [0078] 2. Execute program: [0079] a. Load PCB design file [0080] b. Loop through all back drilled via locations [0081] c. Start at trace depth, define this as position 0 [0082] d. Subtract “via stub length” from this position 0 (E.G. 0−10=−10) [0083] e. Start at this calculated position and look for closest “Ground net” copper plane while moving away from the trace location. (E.G. “VSS layer located at −16.5 mils”) [0084] f. Add shorting feature defined by “Ground Web” and “Copper Diameter” (E.G. see picture) [0085] g. Rename design file via name to customer name indicating anti-pad modification. <image.png> [0086] h. Create report file indicating changes made
[0087] The methodology of the present invention is assisted from tools improvements in a typical PCB design flow. All common PCB design tools have a design rule check, also known as DRC that looks for nets that are shorted together as well as other error checking. A program or script adds the shorting trace or stub 10 at all back-drill 15 locations and adjusts the depth of the shorting trace 10 by the tolerance of the back-drill 15 and the depth of the signal trace 6 to produce a back drill stub 10 of approximately consistent length for each said PCB Board having a tight tolerance for high speed signal applications. The back drill stub 10 produced is approximately a same length (0.1 mil to 2 mil optimum and preferably from 2 mil to 5 mil for each said PCB Board having a tolerance range of ______optimum plus/minus 1 mil and preferred is plus/minus 3 mil for high speed signal applications in a range of 30 to 100 GHZ optimal and preferably 30 to 70 GHZ.
[0088] Once the shorting traces 10 are added the common PCB design or Gerber files then computer added manufacturing, A.K.A. CAM, tools will show DRC errors. The back-drill shorting trace 10 DRC flags must be identified and screened out so DRC flags for legitimate errors are caught and fixed. It is understood that although copper web is preferably used any suitable electrically conductive metallic material can be used.
[0089] The present invention then proceeds to correct detected poor back-drills in each of the PCB boards 5 as shown in
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[0095] The measured thickness is measured with a thickness measurement gauge. The comparison is accomplished by one of either a computer, microprocessor or other software stored device that includes tabulation of theoretical thicknesses for the PCBs 5 including, but not limited to, cloud storage, thumb wheel drives, hard discs, floppy discs, and back-up drives.
[0096] While presently preferred embodiments have been described for purposes of the disclosure, numerous changes in the arrangement of method steps and apparatus parts can be made by those skilled in the art. Such changes are encompassed within the spirit of the invention as defined by the appended claims