Claims
- 1. In an external defibrillator for applying a multiphasic defibrillation pulse to a patient through first and second electrodes when said first and second electrodes are coupled to a patient, said external defibrillator including an energy storage device having first and second leads, the output circuit comprising:
(a) a first leg coupled between the first lead of the energy storage device and the first electrode; (b) a second leg coupled between the second lead of the energy storage device and the second electrode; (c) a third leg coupled between the first lead of the energy storage device and the second electrode; (d) a fourth leg coupled between the second lead of the energy storage device and the first electrode; and (e) a plurality of semiconductor switches coupled within the legs of the output circuit, wherein only a single semiconductor switch is included in each leg of the output circuit.
- 2. The output circuit of claim 1, further comprising:
(i) causing said charging system to charge said energy storage device to an energy level sufficient to deliver approximately 200 or more joules; and (ii) forming said one or more output circuits of components capable of delivering a combined energy level of approximately 200 or more joules to the first and second electrodes for application to a patient.
- 3. The output circuit of claim 1, further comprising:
forming said one or more output circuits of components such that the current flow for the defibrillation pulse is gated on by a single switching element.
- 4. The output circuit of claim 1, further comprising:
(i) a charging system for charging said one or more energy storage devices to a combined energy level such that a current of at least approximately 200 amps may result if the first and second electrodes are shorted together; and (ii) forming said one or more output circuits of components such that at least one IGBT switch is coupled within the circuit path, the IGBT being driven with a gate voltage of at least approximately 20 volts so as to allow the IGBT to conduct the 200 amps and then continue to function.
- 5. The output circuit of claim 1, further comprising:
the control circuit implementing a self-test to verify the integrity of the one or more output circuits, the self-test activating one or more of the output switches and then monitoring for the absence of current in order to verify the integrity.
- 6. The output circuit of claim 1, further comprising:
the control circuit implementing a self-test to verify the integrity of the one or more output circuits, the, self-test monitoring the energy flow during the first phase of the multiphasic defibrillation pulse as part of a process for verifying the integrity of the one or more output circuits prior to the application of the next phase of the multiphasic defibrillation pulse, and providing a warning if the integrity is not verified.
- 7. The output circuit of claim 1, wherein each of the switches of the first, third, and fourth legs comprise a silicon controlled rectifier (SCR) having a gate, an anode, and a cathode, the gate being connected for receiving gate signals, the anode and cathode being connected in a circuit path that provides current through the SCR.
- 8. The output circuit of claim 7, wherein said control circuit includes a plurality of gate drive circuits, each of the plurality of gate drive circuits coupled to the gate of one of each of the SCRs.
- 9. The output circuit of claim 8, wherein a gate signal supplied by each gate drive circuit to the gate of each SCR biases the SCR in the conducting state, the SCR remaining biased in the conducting state as long as the gate signal is present.
- 10. The output circuit of claim 9, wherein at least one of the gate drive circuits produces a pulse train and supplies said pulse train to the gate of the associated SCR as a gate signal.
- 11. The output circuit of claim 7, wherein the switch in the second leg comprises an insulated gate bipolar transistor (IGBT), the IGBT having a gate, a collector, and an emitter, the gate being connected for receiving gate signals, the collector and emitter being connected in a circuit path to provide current through the IGBT.
- 12. The output circuit of claim 1, wherein the control circuit places switches in the first leg and the fourth leg in a conducting state to shunt energy from the energy storage capacitor.
- 13. The output circuit of claim 1, wherein the control circuit places the switches in the second leg and the third leg in a conducting state to shunt energy from the energy storage capacitor.
- 14. The output circuit of claim 1, further comprising a protective component coupled between the energy storage capacitor and the output circuit, the switches in the first, second, third, and fourth legs having a voltage across them that has a rise time that is determined by the amount of time it takes for the voltage across the switches to develop to a selected level, the protective component having both inductive and resistive properties so as to limit a current to, and a rise time of the voltage across at least one of the switches in the first, second, third, or fourth legs.
- 15. The output circuit of claim 1, further comprising a control circuit, wherein the control circuit controls the output circuit such that:
during a defibrillation mode, a defibrillation pulse is conducted to the first and second output leads, and during a pacing mode, a pacing pulse is conducted to the first and second output leads.
- 16. The circuit of claim 15, wherein one of the switches in one of the legs of the output circuit conducts pacing pulses during the pacing mode.
- 17. The circuit of claim 1, wherein the output switches are driven so that they are capable of conducting a least approximately 200 amperes of current.
- 18. The circuit of claim 1, wherein the output switches are driven so that they are capable of conducting defibrillation pulses of as high as 200 or more joules and as low as 50 or less joules.
- 19. The circuit of claim 1, wherein the output switches are driven so that they are capable of conducting external defibrillation pulses of as low as 1 joule.
- 20. An output circuit of an external defibrillator for applying defibrillation pulses to a patient, the output circuit comprising:
an H-bridge output circuit comprising first, second, third and fourth legs; and a plurality of semiconductor switches coupled within the legs of the H-bridge output circuit, wherein all of the switches of the H-bridge output circuit are contained within a single surface mountable package.
- 21. The output circuit of claim 20, wherein each leg of the H-bridge output circuit comprises only a single semiconductor switch.
- 22. The output circuit of claim 20, wherein each of the switches of the first, third, and fourth legs comprise a silicon controlled rectifier (SCR) having a gate, an anode, and a cathode, the gate being connected for receiving gate signals, the anode and cathode being connected in a circuit path that provides current through the SCR.
- 23. The output circuit of claim 20, wherein the switch in the second leg comprises an insulated gate bipolar transistor (IGBT), the IGBT having a gate, a collector, and an emitter, the gate being connected for receiving gate signals, the collector and emitter being connected in a circuit path to provide current through the IGBT.
- 24. The output circuit of claim 20, further comprising a control circuit, wherein the control circuit controls the output circuit such that:
during a defibrillation mode, a defibrillation pulse is generated, and during a pacing mode, a pacing pulse is generated.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of prior application Ser. No. 09/706,578, filed Nov. 3, 2000, which is a continuation of prior application Ser. No. 09/287,483, filed Apr. 6, 1999, now U.S. Pat. No. 6,175,765, which is a continuation-in-part of prior application Ser. No. 09/035,690, filed Mar. 5, 1998, now U.S. Pat. No. 6,041,254, which is a continuation-in-part of prior application Ser. No. 08/811,833, filed Mar. 5, 1997, now U.S. Pat. No. 5,824,017, priority from the filing dates of which is hereby claimed under 35 U.S.C. § 120.
Continuations (1)
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Continuation in Parts (3)
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