Claims
- 1. In an apparatus for ejecting from an orifice drops of a fluid having a substantially constant ejection velocity over a range of drop ejection repetition rates, the apparatus conveying the fluid from a fluid manifold through an inlet channel to a pressure chamber and from the pressure chamber through a combined outlet channel to the orifice, the inlet channel having a first length and a first acoustic resonant frequency and the combined outlet channel having a second length and a second acoustic resonant frequency, an improvement for increasing the range of drop ejection rates comprising in combination:
- a transducer driver generating an electrical waveform that repeats over a range of drop ejection repetition rates ranging from about 1 kilohertz to about 15 kilohertz, each repetition of the electrical waveform having a predetermined spectral energy distribution that includes a peak of the spectral energy around a dominant resonant frequency of the fluid in the orifice and at least a 30 decibel reduction below the peak of the spectral energy around the first and second acoustic resonant frequencies, which are determined respectively by dividing a speed of sound in the fluid by two times the first length and four times the second length; and
- a piezoelectric transducer coupling each repetition of the electrical waveform to the pressure chamber to eject a drop of the fluid from the orifice at the substantially constant ejection velocity.
- 2. The apparatus of claim 1 in which the dominant resonant frequency is a Helmholtz resonance resulting from co-action among the pressure chamber, the inlet channel, the combined outlet channel, and the orifice.
- 3. The apparatus of claim 1 in which the apparatus further includes an offset channel port, an offset channel, and an outlet channel, and the combined outlet channel is formed from at least one of the offset channel port, the offset channel, and the outlet channel.
- 4. The apparatus of claim 1 in which the first length is about twice the second length, and the first and second acoustic resonant frequencies are substantially equal.
- 5. The apparatus of claim 1 in which the predetermined spectral energy distribution of each repetition of the electrical waveform is established by a bipolar pair of pulses separated by a wait period.
- 6. The apparatus of claim 1 in which the orifice is an ink-jet orifice and the fluid is ink.
- 7. In an ink jet for ejecting from an orifice drops of an ink having a dominant resonant frequency in the orifice and a substantially constant ejection velocity over a range of drop ejection repetition rates, the ink jet conveying the ink from a fluid manifold through an inlet channel to a pressure chamber and from the pressure chamber through a combined outlet channel to the orifice, the inlet channel having a first length and a first acoustic resonant frequency and the combined outlet channel having a second length and a second acoustic resonant frequency, a method for increasing the range of drop ejection rates comprising the steps of:
- determining the first acoustic resonant frequency by dividing a speed of sound in the ink by two times the first length;
- determining the second acoustic resonant frequency by dividing a speed of sound in the ink by four times the second length;
- designing an electrical waveform having a predetermined spectral energy distribution including a peak of the spectral energy around the dominant resonant frequency of the ink in the orifice and at least a 30 decibel reduction below the peak of the spectral energy around the first and second acoustic resonant frequencies;
- generating repetitions of the electrical waveform over a range of drop ejection repetition rates ranging from about 1 kilohertz to about 15 kilohertz; and
- coupling with a piezoelectric transducer each repetition of the electrical waveform into the pressure chamber to eject a drop of the ink from the orifice at the substantially constant ejection velocity.
- 8. The method of claim 7 in which the designing step includes viewing the electrical waveform with at least one of a spectrum analyzer and a fast-Fourier-transform displaying oscilloscope, and shaping the electrical waveform to achieve the predetermined spectral energy distribution.
- 9. The method of claim 7 in which each repetition of the generating step includes the steps of:
- forming an electrical pulse having a first relative voltage polarity and a first duration;
- waiting a predetermined time period; and
- forming an electrical pulse having a second relative voltage polarity and a second duration.
- 10. In an apparatus for ejecting from an orifice drops of a fluid having a substantially constant ejection velocity over a range of drop ejection repetition rates, the apparatus conveying the fluid from a fluid manifold through an inlet channel to a pressure chamber and from the pressure chamber through a combined outlet channel to the orifice, the inlet channel having a first length and a first acoustic resonant frequency and the combined outlet channel having a second length and a second acoustic resonant frequency, an improvement for increasing the range of drop ejection rates comprising in combination:
- a transducer driver generating an electrical waveform that repeats over a range of drop ejection repetition rates ranging from about 1 kilohertz to about 15 kilohertz, each repetition of the electrical waveform having a predetermined spectral energy distribution that includes a peak of the spectral energy around a resonant frequency of the fluid in the orifice and at least a 30 decibel reduction below the peak of the spectral energy around the first and second acoustic resonant frequencies, which are determined respectively by dividing a speed of sound in the fluid by two times the first length and four times the second length; and
- a piezoelectric transducer coupling each repetition of the electrical waveform to the pressure chamber to eject a drop of the fluid from the orifice at the substantially constant ejection velocity.
- 11. The apparatus of claim 10 in which the concentration of the energy input around the resonant frequency of the fluid in the orifice is selected to excite in the orifice a modal meniscus shape that is selected from a group consisting of a mode zero type, a mode one type and a mode two type.
- 12. The apparatus of claim 10 in which the resonant frequency is a Helmholtz resonance resulting from co-action among the pressure chamber, the inlet channel, the combined outlet channel, and the orifice.
- 13. The apparatus of claim 10 in which the apparatus further includes an offset channel port, an offset channel, and an outlet channel, and the combined outlet channel is formed from at least one of the offset channel port, the offset channel, and the outlet channel.
- 14. The apparatus of claim 10 in which the first length is about twice the second length, and the first and second acoustic resonant frequencies are substantially equal.
- 15. The apparatus of claim 10 in which the predetermined spectral energy distribution of each repetition of the electrical waveform is established by a bipolar pair of pulses separated by a wait period.
- 16. The apparatus of claim 10 in which the orifice is an ink-jet orifice and the fluid is ink.
RELATED APPLICATIONS
This application is a continuation of application Ser. No. 08/139,349 filed Oct. 19, 1993, now abandoned, which is a continuation-in-part of U.S. patent application Ser. No. 08/100,504 filed Jul. 30, 1993 for a METHOD AND APPARATUS FOR PRODUCING DOT SIZE MODULATED INK JET PRINTING now U.S. Pat. No. 5,495,272.
US Referenced Citations (9)
Continuations (1)
|
Number |
Date |
Country |
Parent |
139349 |
Oct 1993 |
|
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
100504 |
Jul 1993 |
|