Adaptive control of electricity consumption
11916387 ยท 2024-02-27
Assignee
Inventors
Cpc classification
Y02B70/3225
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H02J3/144
ELECTRICITY
H02J3/14
ELECTRICITY
H02J2310/52
ELECTRICITY
H02J2310/64
ELECTRICITY
Y04S20/222
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G05B2219/2639
PHYSICS
H02J3/003
ELECTRICITY
International classification
H02J3/00
ELECTRICITY
Abstract
A method for controlling a process that draws power from an electrical power source operates by obtaining time-related electrical demand data from the electrical power source and adaptively adjusting at least one control parameter in a control algorithm for the process to reduce the cost of the electrical energy consumed. The time-related electrical demand data indicates at least diurnal variation, and optionally seasonal variation, in electrical power demand. The time-related electrical power demand data may also include real-time electrical power demand data from the electrical power source.
Claims
1. A system for controlling an adjustment process for a target system that draws power from an electrical power source, comprising: a plurality of devices for applying electrical power from the electrical power source to the target system to cause energy changes at the target system, each of the devices having a controller configured to operatively control application of the electrical power, and one or more sensors arranged to supply a feedback signal to the controller regarding energy state of the target system and the application of power; and a central controller, in communication with each controller of the plurality of devices, the central controller configured to receive time-related electrical energy demand data from the electrical power source, data from the controllers regarding the energy state of the target system, and implement a control algorithm which, when implemented: establishes a process value maximum and a process value minimum; monitors the energy state of the target system; where the energy state of the target system reaches or approaches the process value minimum at a first given instance of time while the time-related electrical energy demand data at the first given instance of time or a first corresponding instance of time is at or approaching a diurnal or seasonal low, commanding the controllers to draw power from the electrical source until the process value maximum is reached; and where the energy state of the target system reaches or approaches the process value minimum at a second given instance of time while the time-related electrical energy demand data at the second given instance of time or a second corresponding instance of time is at or approaching a diurnal or seasonal high, commanding the controllers to draw power from the electrical source until an energy value point is reached which is above the process value minimum but less than the process value maximum.
2. The system of claim 1, wherein the central controller receives and utilizes the electrical energy demand data in real-time from the electrical power source as an input for the control algorithm.
3. The system of claim 1 wherein: the process value control minimum comprises a temperature control minimum value and a pressure control minimum value; the process value control maximum comprises a temperature control maximum value and a pressure control maximum value; and the energy state of the target system is measured temperature values and pressure values.
4. The system of claim 1 wherein: the process value control minimum comprises a temperature control minimum value; the process value control maximum comprises a temperature control maximum value; and the energy state of the target system is measured temperature values.
5. The system of claim 4 wherein: the target system comprises a passageway for carrying a fluid; the plurality of devices comprise heating elements situated along the passageway and electrically connected to the electrical power source to produce heat; the one or more sensors are positioned to sense at least one of: the temperatures and the pressures of the passageway or the fluid therein; and the controller comprises a thermostat in electronic communication with the one or more sensors and the electrical power source.
6. The system of claim 4 wherein: the target system comprises a pipe for carrying a fluid; the plurality of devices comprise heat tracing lines situated along the pipe and electrically connected to the electrical power source; the one or more sensors are positioned to sense a temperature of an outer surface of the pipe; the controller comprises a thermostat in electronic communication with the one or more sensors and the electrical power source; the temperature control minimum is set above a freezing point for the fluid; and the temperature control maximum is set below a boiling point for the fluid.
7. The system of claim 1 wherein: the process value control minimum comprises a pressure control minimum value; the process value control maximum comprises a pressure control maximum value; and the energy state of the target system is measured pressure values.
8. The system of claim 1 wherein: the target system comprises any one of: a pool, a battery, and a pump.
9. The system of claim 1 wherein: the central controller is configured to monitor the energy state of the target system and adjustable command the controllers to draw power from the electrical source in substantially real time.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A better understanding of the inventive concept will be had by reference to the appended drawings, wherein identical reference numbers identify identical parts and wherein:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) As an illustrative example only,
(9) As is well-known, the demand for electrical power in most locations has a natural variation on a diurnal and seasonal basis.
(10) An important observation about the electrical demand curve is that the electrical grid cannot store energy. As demand rises, additional electrical energy needs to enter the grid from the suppliers, including additional suppliers. If the grid operates efficiently, each new marginal unit that is added to the grid enters at a per unit price that at least matches, if not exceeds, the unit price of the most recently added marginal unit. Assuming that to be the case, the demand curve of
(11) In a first aspect of the inventive concept, a controller using two point control is provided, for adaptive control, with an electrical energy demand curve as depicted in
(12) Just before noon, the temperature of the pipeline has dropped enough that the bottom setpoint is reached and energy is needed to prevent frost. Unfortunately, the energy demand/cost is at or near a local maximum, so the base setpoint is used to add a short burst of necessary, but not inexpensive, electrical energy. This avoids the frost issue and when the base setpoint temperature is reached, power is again turned off.
(13) With power turned off, the temperature of the pipeline again declines, with the rate of decline being influenced by local conditions around the pipeline. In this case, the bottom setpoint is reached about when the late afternoon local minimum of electrical demand/price is reached. Rather than advancing the setpoint to the high setpoint used between midnight and 6 am, an intermediate setpoint between the base setpoint and the high setpoint is used, so that the less expensive energy is used to raise the pipeline temperature high enough to hold through the evening local maximum.
(14) When heat is again required, the evening local maximum has passed and energy demand/cost is on a strong downward slope, headed for the overnight local minimum. Just as a high setpoint was used to warm the pipeline to the high setpoint during the overnight minimum, the pattern repeats and the control algorithm, aided by a model of the diurnal pattern, has adaptively reduced the cost of maintaining temperature in the pipeline.
(15) Attention is now directed for illustrative purposes to
(16) In an ideal version of the embodiment, a database of historic diurnal energy demand curves, based on the date, is used to implement the algorithm, and, in the most ideal version of the embodiment, a real time view of the energy demand, including trending slope information, is used to feed the controller for setpoint adjustments.
(17) While the inventive concept is described as implemented on a system of sequentially-arranged thermostats to control temperature in a pipeline, it will be understood by one of skill in the art that the same concept may be used to adaptively control electrical energy consumption in any process that has the ability to reservoir the work provided by the electrical energy for release over time, by adjusting a parameter that controls the amount of energy being demanded from the grid. Some of the potential applications include the maintenance of temperature in a pool, a central water heating system, a home compressor, charging of batteries, either directly or in a device such as a cell phone, or a pump for circulating water. The main issue is a tolerance of the system to altering the level of the control value or the time slot.