BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a block diagram of the present invention for interactive control by computer between the generator and the building to which it provides electric power.
FIG. 2 is a block diagram which illustrates the transmission of generator data, building electric load data, and remote plus local advisory data to the interactive control computer.
FIG. 3 illustrates the remote control of the generator output and building load from a web-enabled interface, a powerline-enabled interface, a phoneline-enabled interface, a wireless-enabled interface, or from some combination of said interfaces.
DETAILED DESCRIPTION OF THE INVENTION
Turning now to the drawings for a detailed description of the present invention, the backup generator 1 as shown in FIG. 1 is connected to interactive control computer 2 which controls the application of electric power to the various loads 4 in the building or building complex 3. Only a single generator is shown in the drawing, but in some cases more than one generator will be present depending on the power requirements of the building site and the other details of a given system implementation. Also, the electrical loads 4 as shown include only electric motors, refrigeration, and heating, ventilation, and air conditioning (HVAC). While these are typically the largest loads to be controlled, other electric loads present in the building complex 3 also may be interactively controlled.
Backup generator 1 is equipped with an array of sensors which gather all of the data necessary to intelligently and interactively control the electric power output of the generator for a variety of purposes and under a variety of conditions. As shown in FIG. 2, interactive control computer 2, hereinafter referred to as ICC 2, receives from a large variety of sensors the necessary signals to dynamically adjust the operating parameters of the system. Among these sensors are those providing signals from the engine providing the mechanical power to operate the generator. Sensor 5 sends an engine fault 13 signal to ICC 2 when appropriate. Sensor 7 relays engine coolant temperature 16 to ICC 2 and thereby allows the important coolant temperature change rate 22 to be calculated, either by an imbedded microcontroller in that signal path or directly by ICC 2. Similarly, sensor 8 measures the ambient temperature 16 in the environment where the generator and its engine are located, allowing the ambient temperature change rate 23 to be calculated, either by an imbedded microcontroller in that signal path or directly by ICC 2. Sensor 9 relays available fuel 17 to fuel bum rate subsystem 24, which in combination with sensor 10 relaying generator power 18 to block 24 enables calculation of the fuel burn rate, either by an imbedded microcontroller in that signal path or directly by ICC 2. Sensors 11 and 12 in FIG. 2 measure the building electrical load 19 and utility and building management advisory updates 20, respectively.
When sensor 6 signals the loss of electrical power via block 14, failure alarm 21 is generated which signals ICC 2 to begin providing backup power to building 3, applying a prearranged initial backup power protocol. Utility company and building management updates and advisories 20 can in a variety of situations produce an override alarm 25, which serves to modify the backup power protocol, changing it to match changed conditions, with directives from the local level or from updates received from a remote site.
As depicted in FIG. 3, the controlling functions of ICC 2 can be modified from receipt of signals from a variety of sources via remote control module 27, including a wireless link 28, a landline telephone link 29, a utility powerline signaling means, or any of a variety of means linking ICC 2 to the internet.
The same computerized management decision making information and/or automatic control may be used for distribution centers, production facilities with critical processes, and any manufacturing, mining, or retail establishment which has a wide variety of electrical loads to be managed.