Claims
- 1. An electronic switching device configured to activate a detonation device upon receiving a first signal and a second signal, the electronic switching device comprising:
an energy source; charge switching circuitry electrically coupled to the energy source, the charge switching circuitry configured to control the charging of the energy source upon validation of the first signal; first fire circuitry electrically coupled to the energy source, the first fire circuitry configured to discharge the energy source; and signal verification circuitry electrically coupled to the first fire circuitry, the signal verification circuitry configured to allow the first fire circuitry to discharge the energy source upon validation of the second signal.
- 2. The electronic switching device of claim 1, wherein the energy source comprises capacitive circuitry.
- 3. The electronic switching device of claim 1, wherein the first fire circuitry is further configured to detachably couple to a first terminal of the detonation device and to discharge the energy source to the first terminal.
- 4. The electronic switching device of claim 3, further comprising second fire circuitry electrically coupled to the signal verification circuitry, the second fire circuitry configured to detachably couple to a second terminal of the detonation device and to activate the detonation device by allowing the energy source to discharge from the first terminal to the second terminal through the detonation device upon validation of the second signal.
- 5. The electronic switching device of claim 4, wherein the second fire circuitry comprises a delay element configured to control the timing of the activation of the detonation device.
- 6. The electronic switching device of claim 5, wherein the delay element comprises a field-effect transistor having a predetermined internal gate capacitance.
- 7. The electronic switching device of claim 1, further comprising a microcontroller electrically coupled to the energy source, the charge switching circuitry and the signal verification circuitry, wherein the microcontroller is configured to validate the first signal and the second signal.
- 8. The electronic switching device of claim 7, wherein the microcontroller is further configured to discharge the energy source to ground upon detecting at least one parameter that is invalid.
- 9. The electronic switching device of claim 8, wherein the at least one parameter is selected from the group comprising a voltage level of the first signal, a bandwidth of the first signal, a voltage level of the second signal, a bandwidth of the second signal, a built in test of the microcontroller, a voltage across the detonation device, a charge in the energy source, and an operating mode.
- 10. The electronic switching device of claim 9, further comprising status output circuitry electrically coupled to the microcontroller, the status output circuitry configured to provide information external to the electronic switching device that is related to the at least one parameter.
- 11. The electronic switching device of claim 7, further comprising voltage converting circuitry electrically coupled to the microcontroller, the voltage converting circuitry comprising:
a power supply configured to receive the first signal and to convert the first signal to a third signal, wherein the third signal is configured to provide power to the microcontroller; and lag circuitry configured to provide a fourth signal to the microcontroller when the third signal reaches a predetermined steady state level, wherein the fourth signal is configured to place the microcontroller in an operational mode.
- 12. The electronic switching device of claim 11, further comprising over-voltage protection circuitry configured to limit the voltage level of the third signal.
- 13. The electronic switching device of claim 11, further comprising visible indicia of the third signal.
- 14. The electronic switching device of claim 7, further comprising a detonator monitoring circuit electrically coupled to the microcontroller, the detonator monitoring circuit configured to measure a differential voltage across a first terminal and a second terminal of the detonation device.
- 15. The electronic switching device of claim 1, further comprising blocking circuitry electrically coupled to the signal verification circuitry, the blocking circuitry configured to receive the second signal and to limit a characteristic of the second signal as it is received by the electronic switching device, wherein the characteristic is selected from the group comprising a maximum voltage level of the second signal, a maximum current level of the second signal, and a noise level of the second signal.
- 16. A method for electronically switching a detonation device, the method comprising:
receiving a first signal; entering a first operational mode upon receiving the first signal; receiving a second signal; validating the second signal; and applying energy to the detonation device.
- 17. The method of claim 16, wherein entering the first operational mode comprises:
initializing a microcontroller; performing a first system check; and charging an energy source.
- 18. The method of claim 17, wherein initializing the microcontroller comprises:
converting the first signal to a third signal; powering the microcontroller with the third signal; generating a fourth signal configured to indicate a predetermined stable condition for the third signal; and enabling the microcontroller with the fourth signal.
- 19. The method of claim 17, wherein performing the first system check comprises performing at least one test selected from the group comprising:
validating the first signal; performing an internal built in test of the microcontroller; measuring the voltage across the detonation device; and measuring the charge of the energy source.
- 20. The method of claim 19, further comprising:
querying whether the at least one test passed; and if no, entering a second operational mode.
- 21. The method of claim 17, further comprising:
querying whether the energy source has a valid charge; if yes:
initializing an interrupt to permit the second signal to be validated; and performing a second system check; and if no, entering a second operational mode.
- 22. The method of claim 21, wherein performing the second system check comprises performing at least one test selected from the group comprising:
performing an internal built in test of the microcontroller; measuring the voltage across the detonation device; and measuring the charge of the energy source.
- 23. The method of claim 22, further comprising:
querying whether the at least one test passed; if yes, providing a status from the microcontroller; and if no, entering the second operational mode.
- 24. The method of claim 21, wherein validating the second signal comprises:
querying whether the interrupt is valid; if no, reinitializing the interrupt; and if yes:
querying whether the second system check passed; and measuring the voltage and bandwidth of the second signal.
- 25. The method of claim 24, further comprising:
if the second system check failed, entering the second operational mode; if the voltage and bandwidth of the second signal are not within predefined limits, entering the second operational mode; and if the second system check passed and the voltage and bandwidth of the second signal are within the predefined limits:
energizing a first switch electrically coupled to a first terminal of the detonation device; energizing a second switch electrically coupled to a second terminal of the detonation device; and discharging the energy source from the first terminal to the second terminal through the detonation device.
- 26. The method of claim 25, wherein energizing the second switch comprises delaying the energy applied to the detonation device.
- 27. The method of claim 26, wherein delaying the energy comprises charging an internal capacitance of the second switch.
- 28. The method of claim 25, further comprising providing a status from the microcontroller after discharging the energy source.
- 29. The method of claim 20, wherein entering the second operational mode comprises:
discharging the energy source to ground; providing a status from the microcontroller; and reentering the first operational mode.
- 30. The method of claim 21, wherein entering the second operational mode comprises:
discharging the energy source to ground; providing a status from the microcontroller; and reentering the first operational mode.
- 31. An explosive device comprising:
a detonation device comprising a first terminal and a second terminal; and an electronic switching device configured to activate the detonation device, the electronic switching device comprising:
a first input configured to receive a first signal; a second input configured to receive a second signal; a microcontroller configured to validate the first signal and the second signal; and an energy source configured to discharge through the first terminal and the second terminal of the detonation device upon validation of the first signal and the second signal.
- 32. The explosive device of claim 31, wherein the detonation device comprises a semiconductor bridge device.
- 33. The explosive device of claim 31, wherein the first input and the second input each comprise surge suppression circuitry.
- 34. The explosive device of claim 31, wherein the energy source comprises capacitive circuitry.
- 35. The explosive device of claim 31, further comprising charge circuitry electrically coupled to the energy source, the charge circuitry configured to selectively charge and discharge the energy source.
- 36. The explosive device of claim 31, further comprising:
first fire circuitry electrically coupled to the first terminal of the detonation device, the first fire circuitry configured to selectively discharge the energy source to the first terminal; and signal verification circuitry electrically coupled to the microcontroller and the first fire circuitry, the signal verification circuitry configured to selectively allow the first fire circuitry to discharge the energy source upon validation of the second signal.
- 37. The explosive device of claim 36, further comprising second fire circuitry electrically coupled to the signal verification circuitry, the second fire circuitry configured to activate the detonation device by allowing the energy source to discharge from the first terminal to the second terminal through the detonation device upon validation of the second signal.
- 38. The explosive device of claim 37, wherein the second fire circuitry comprises a delay element configured to control the timing of the activation of the detonation device.
- 39. The explosive device of claim 38, wherein the delay element comprises a switching element having a predetermined internal capacitance configured to delay the activation of the transistor.
- 40. The explosive device of claim 31, wherein the microcontroller is further configured to discharge the energy source to ground upon detecting at least one parameter that is invalid.
- 41. The explosive device of claim 40, wherein the at least one parameter is selected from the group comprising a voltage level of the first signal, a bandwidth of the first signal, a voltage level of the second signal, a bandwidth of the second signal, a built in test of the microcontroller, a voltage across the detonation device, a charge in the energy source, and an operating mode.
- 42. The explosive device of claim 41, further comprising status output circuitry electrically coupled to the microcontroller, the status output circuitry configured to provide information external to the electronic switching device that is related to the at least one parameter.
- 43. The explosive device of claim 31, further comprising voltage converting circuitry electrically coupled to the microcontroller, the voltage converting circuitry comprising:
a power supply configured to receive the first signal and to convert the first signal to a third signal, wherein the third signal is configured to provide power to the microcontroller; and lag circuitry configured to provide a fourth signal to the microcontroller when the third signal reaches a predetermined steady state level, wherein the fourth signal is configured to enable the microcontroller.
- 44. The explosive device of claim 43, further comprising over-voltage protection circuitry configured to limit the voltage level of the third signal.
- 45. The explosive device of claim 43, further comprising visible indicia of the third signal.
- 46. The explosive device of claim 31, further comprising a detonator monitoring circuit electrically coupled to the microcontroller, the detonator monitoring circuit configured to measure a differential voltage across the first terminal and the second terminal of the detonation device.
- 47. The explosive device of claim 31, further comprising blocking circuitry electrically coupled to the microcontroller, the blocking circuitry configured to receive the second signal and to limit a characteristic of the second signal, wherein the characteristic is selected from the group comprising a maximum voltage level of the second signal, a maximum current level of the second signal, and a noise level of the second signal.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims the benefit of U.S. provisional patent application Serial No. 60/364,855 entitled ELECTRONIC SWITCHING SYSTEM AND RELATED METHOD, filed Mar. 13, 2002, the disclosure of which is hereby incorporated herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60364855 |
Mar 2002 |
US |