SOLAR DRIVE CONTROL SYSTEM FOR OIL PUMP JACKS
20180328354 ยท 2018-11-15
Inventors
Cpc classification
F04B17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A system for supplementing the electric power needed by a pump jack electric motor, thereby reducing the electric power purchased from the local utility or power supplier. The system comprises a solar photovoltaic system, or other forms of renewable energy, and regenerated power from the electric motor or drive. The system can be both on-grid and off-grid. Battery banks and capacitor banks may be used to store energy.
Claims
1. An apparatus, comprising: a regenerative variable frequency drive configured to generate energy from vertical reciprocating motion of a pump jack during normal operation of the pump jack, the regenerative variable frequency drive comprising a DC buss; and a DC capacitor bank configured to be electrically connected to the DC buss of the regenerative variable frequency drive, wherein when the DC capacitor bank is electrically connected to the DC buss of the regenerative variable frequency drive, at least a portion of energy required to operate the pump jack to produce petroleum hydrocarbons is obtained from the generated energy from the vertical reciprocating motion of the pump jack, further wherein said generated energy is stored in the DC capacitor bank, and removed from the DC capacitor bank to the DC buss of the regenerative variable frequency drive.
2. The apparatus as recited in claim 1, wherein the capacitor bank is configured to output the stored energy as direct current, and the regenerative variable frequency drive is configured to convert the direct current output from the capacitor bank to alternating current.
3. The apparatus as recited in claim 2, wherein the capacitor bank is configured to be electrically connected to the DC buss through a DC interconnection box.
4. The apparatus as recited in claim 1, wherein the capacitor bank is coupled to the DC buss.
5. The apparatus as recited in claim 4, wherein the capacitor bank outputs the stored energy as direct current, and the regenerative variable frequency drive converts the direct current output from the capacitor bank to alternating current.
6. The apparatus as recited in claim 5, wherein the capacitor bank is electrically connected to the DC buss through a DC interconnection box.
7. The apparatus as recited in claim 1, wherein the regenerative variable frequency drive is configured to couple to an electrical power grid, such that at least a portion of the energy required to operate the pump jack to produce petroleum hydrocarbons is provided by the electrical power grid.
8. A method comprising the steps of: electrically connecting a DC capacitor bank to a DC buss of a regenerative variable frequency drive that is configured to provide energy to a pump jack to operate the pump jack, and is further configured to generate energy from vertical reciprocating motion of the pump jack during normal operation of the pump jack, wherein the step of electrically connecting causes the DC capacitor bank to receive and store energy from the reciprocating motion of the pump jack during normal operation of the pump jack, and output the stored energy to the DC buss of the regenerative variable frequency drive, such that at least a portion of the energy provided to the pump jack to operate the pump jack is provided by the DC capacitor bank.
9. The method as recited in claim 8, wherein the step of electrically connecting causes the DC capacitor bank to output direct current to the DC buss, and the regenerative variable frequency drive is configured to convert the direct current to alternating current.
10. The method as recited in claim 8, wherein the step of electrically connecting comprises electrically connecting the DC capacitor bank to the DC buss through a DC interconnection box.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
[0010]
[0011]
DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
[0012] In various exemplary embodiments, the present invention comprises a system for supplementing the electric power needed by a pump jack electric motor, thereby reducing the electric power purchased from the local utility or power supplier. In one embodiment, the system comprises a solar photovoltaic system and regenerated power from the electric motor or drive. The system can be both on-grid and off-grid.
[0013] In an on-grid embodiment, as seen in
[0014] As seen in
[0015] As seen in
[0016] In several embodiments, the regenerative capabilities of the drive must meet or exceed all utility requirements for power filtering and harmonic issues that are required for direct connection of the drive to the utility with respect to the driver supplying power back to the utility. The regenerative drive must meet or exceed all utility requirements concerning direct interconnection guidelines for small generator interconnect agreements. For both of the above examples, the parameters for the VFD may be adjusted to increase the amount of regenerated energy and optimize the power usage of the pump jack.
[0017] While the above discussion was in the context of solar power, other forms of renewable energy sources may be used, including, but not limited to, wind and hydro-electric. These may be used separately, or in combination.
[0018] In an off-grid embodiment with combined renewable energy sources, as seen in
[0019] The capacitor bank is the storage bank for regenerated power from the motor, and allows the regenerated power to be stored and reused. In one embodiment, the bank comprises nickel oxide hydroxide high amperage capacitors.
[0020] Energy needed to run the pump jack motor is pulled from the capacitor bank 40, with additional energy as needed pulled from the battery bank 30, through a DC interconnection box 44. The interconnection box allows for level flow of DC power back to the capacitor bank, but stopping any reverse flow to the battery bank. The interconnection box is connected to inverter 202, which inverts 480V AC single phase to 650V DC (as described above for the direct connection embodiment).
[0021] In another embodiment where the system is connected to the power grid as well, the power grid also may be a source of energy to make up any difference. The battery bank and capacitor bank are sized by the load needed to operate the respective pump jack drive or motor. The VFD 200 controls the speed of the motor, and acts as inverter for on-grid and off-grid configurations.
[0022] Thus, it should be understood that the embodiments and examples described herein have been chosen and described in order to best illustrate the principles of the invention and its practical applications to thereby enable one of ordinary skill in the art to best utilize the invention in various embodiments and with various modifications as are suited for particular uses contemplated. Even though specific embodiments of this invention have been described, they are not to be taken as exhaustive. There are several variations that will be apparent to those skilled in the art.