Skip to content
Stan’s Legacy

Figure (3-8)

Variable Pulse Width

Also written Multi-coil Spool

How it is written

  • (3-8)

Drawings 4

On this figure 9

Where it is named · 8

Acceleration Control Circuit (30)

  1. … ets up a time variable (14a xxx 14n) of Figure (3-7) from optical circuits (8x) to another optical circuit (8xx) and/ or (8xxx) or to (8n) since the triggered low logic state (12) of Figure (3-7) and (3-8) moves in direct relationship to the displaced light-gate (9), as illustrated in Figure (3-12).

    Read it there →

  2. Figure (3-8)

    Read it there →

  3. … 4n) of Figure (3-7) by linearly moving (forward and/or reverse direction) "low" logic state signal (12) in a array of "high" logic state output signals (13a xxx 13n), as further illustrated in Figure (3-8) and Figure (3-12).

    Read it there →

  4. Figure (3-8)

    Read it there →

  5. As signal output (15) of figure (4) (14a xxx ... 12 ... xx14n) is being received by acceleration control circuit (30) of Figure (3-5) as to Figure (3-12), circuit (30) converts incoming time-response signal (14a xxx ... 12 ... xx14n) into a variable time-base unipolar pulse (16), as shown in Figure (3-8).

    Read it there →

  6. Circuit (30) electronically and automatically scans output signal-array (14axxx ... 12 ... xx14n) (15) until circuit (30) locates, momentarily registers, and translates response-time (14a xxx ... 12) into a variable unipolar pulse (17/18) of Figure (3-8).

    Read it there →

  7. Toggling-time (scanning-time) is directly synchronized to light gate (9) displacement which, in turns, circuit (30) further sets up and establishes a given pulse shape (16) of Figure (3-8).

    Read it there →

  8. Circuit (30) continues to increase pulse width (17axxxx) of Figure (3-8) as the monitored (detected by < scanning) toggling-time (14a xxxx ... 12) increases when logic-point (12) moves farther away from start-position (9a) to stop-position (9n), as further shown in Figure (3-13) as to Figure (3-12).

    Read it there →