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06/04/09 - USPTO Class 200 |  1 views | #20090139844 | Prev - Next | About this Page  200 rss/xml feed  monitor keywords

Tunable electrical transient generator for electromagnetic pulser

USPTO Application #: 20090139844
Title: Tunable electrical transient generator for electromagnetic pulser
Abstract: A dielectric insulated mechanical switch is coupled to a capacitive energy storage arrangement and a pulse forming network. The dielectric insulated mechanical switch is immersed in a dielectric substance. A controller is coupled to the dielectric insulated mechanical switch. The controller is programmed to selectively open and close the dielectric insulated mechanical switch so as to supply energy stored in the capacitive energy storage device to the pulse forming network and thereby form a high voltage energy pulse. (end of abstract)



USPTO Applicaton #: 20090139844 - Class: 200 6119 (USPTO)

Tunable electrical transient generator for electromagnetic pulser description/claims


The Patent Description & Claims data below is from USPTO Patent Application 20090139844, Tunable electrical transient generator for electromagnetic pulser.

Brief Patent Description - Full Patent Description - Patent Application Claims
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This application is a continuation of application having Ser. No. 11/523,879 entitled “Tunable Electrical Transient Generator for Electromagnetic Pulser” filed Sep. 20, 2006 naming Charles Crane as inventor, the contents of which are incorporated herein by reference in their entirety.

FIELD OF THE INVENTION

The field of the invention relates to electromagnetic pulse generation and, more specifically, to generating high voltage electrical pulses for testing and other purposes.

BACKGROUND OF THE INVENTION

Electrical pulses can be generated in a number of different ways and are used for a variety of purposes. Electrical pulses, for example, are used for testing purposes in different civilian and military applications. Typically, a high voltage pulse is developed in these arrangements and applied to a device or network under test. Thereafter, the results of the test can be analyzed and modifications/alterations can be made to the circuitry under test, based upon the test results.

Electromagnetic pulse generation typically involves tens of thousands of kilo volt transients injected into a test device or network with rise rates in the nanosecond to microsecond range, and pulse widths of hundreds of nanoseconds to milliseconds. In one example of an approach for generating pulses, a capacitor is charged to a set voltage and then discharged rapidly into a pulse forming network of inductors and resistors that shape the output pulse into the desired amplitude and wave form.

In some previous approaches, mechanical spring or actuator electrode switches discharged the energy stored in the capacitor into the pulse forming network by physically contacting the switch contacts with one another, much like a light switch, but at a much faster rate. Unfortunately, in air, the two contacts arced over short distances prior to the actual touching, thereby causing severe degradations in the rise rate of the pulse. These variations made previous mechanical switches unsuitable for high voltage pulse forming applications.

In other previous approaches, electromagnetic pulse generation systems used pressurized, non-contacting spark gap switches to generate fast rise rate pulses. Pressurized gas spark gaps can hold off the required voltage and, when triggered by a second high voltage sourced, ionize the insulating gas and create a plasma discharge channel through which the capacitor discharges into the pulse forming network generating an electromagnetic pulse. Unfortunately, previous pressurized spark gap switches operate in a very limited area of hold off voltages making these types of switches unsuitable for many applications.

BRIEF DESCRIPTION OF THE DRAWINGS

FIG. 1 is a block diagram of a system for generating a high voltage electromagnetic pulse according to various embodiments of the present invention;

FIG. 2 is a perspective drawing of a system for generating a high voltage electromagnetic pulse according to various embodiments of the present invention;

FIG. 3a is a perspective view of a switch for generating a high voltage electromagnetic pulse according to various embodiments of the present invention;

FIGS. 3b and 3c are top and side views of the switch of FIG. 3a according to various embodiments of the present invention;

FIG. 4 is a circuit diagram of another example of a system for generating an electromagnetic pulse according to the present invention; and

FIG. 5 is a graph of current at the switch versus time according to various embodiments of the present invention.



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