Mechanical Engineering Science

Wind Turbine Speed Compound Control of a New-Type Wind-Electric Hybrid Power Pumping Unit

ZHANGChunyou, WANGLihua

Abstract


Because the load of the oil beam pumping unit driven by pure electric motor changes sharply during operation, the power of the driving motor does not match and the energy efficiency is low. In this paper, a new type of wind-driven hydro-motor hybrid power system is proposed. The motor and the hydraulic motor are jointly driven, and the energy is recovered by a hydraulic pump with controllable displacement, so that the speed of the driving motor is relatively stable. In order to control the fan speed and keep up with the drastic changes of the outside wind speed, a control strategy of hybrid power system based on wind speed feed-forward compensation is proposed. Through simulation and experimental results, the following conclusions can be drawn: to begin with, the mathematic model is proved to be effective; next, simulation studies show that the proposed feed-forward control method can improve the response rate as well as reduce the response lag. This research can be a reference for the application of the feed-forward control method on the hybrid power system of beam pumping unit.system.


Keywords


beam pumping unit; hydraulic-motor hybrid system; feed-forward control method; Fuzzy-PID control

Full Text:

PDF

References


M.Z..; et al. The Detailed Calculation Model of the Friction between Sucker Rod and the Liquid in the Sucker Rod Pump Lifting System of Heavy Oil. Applied Mechanics & Materials,2014, 694.1:346-349.

S.W.;et al. The design and simulation of beam pumping unit.. International Conference on Automation and Computing IEEE, 2015:1-4.

L.Y.; et al. A Multifunction Energy-Saving Device With a Novel Power-Off Control Strategy for Beam Pumping Motors. IEEE Transactions on Industry Applications,2011,47.4:1605-1611.

D.S.; et al. The Dynamic Simulation Model and the Comprehensive Simulation Algorithm of the Beam Pumping System. International Conference on Mechanical and Automation Engineering IEEE, 2013:118-122.

G. S.G.; D.L. M. Inferring power consumption and electrical performance from motor speed in oil-well pumping units. Petroleum and Chemical Industry Conference, 1995. Record of Conference Papers. Industry Applications Society IEEE, 1997:277-283.

L. H.Q; et al. An Energy Saving System for a Beam Pumping Unit. Sensors (Basel, Switzerland) 16.5(2016):685.

L. H.; K.L. S; P. G. M.. Neural-network-based sensorless maximum wind energy capture with compensated power coefficient."IEEE transactions on industry applications 41.6 (2005): 1548-1556.

S. Y.;S.K.; M. B.. Feedback linearization control based particle swarm optimization for maximum power point tracking of wind turbine equipped by PMSG connected to the grid. International journal of hydrogen energy 41.45 (2016): 20950-20955.

R. H.; et al. A novel constant output powers compound control strategy for variable-speed variable-pitch wind turbines. IEEE Access 6 (2018): 17050-17059.

J. C., C.J., and Chunying Gong. Constant-bandwidth maximum power point tracking strategy for variable-speed wind turbines and its design details. IEEE Transactions on Industrial Electronics 60.11 (2012): 5050-5058.

A.K.; A. G.; et al. Current controller design for DFIG-based wind turbines using state feedback control. IET Renewable Power Generation (2019).

L.J.; et al. Feedforward transient compensation control for DFIG wind turbines during both balanced and unbalanced grid disturbances. IEEE Transactions on Industry Applications 49.3 (2013): 1452-1463.

V. N. W.;G. J.; and J. W.. Predictive control of an experimental wind turbine using preview wind speed measurements. Wind Energy 18.3 (2015): 385-398.




DOI: https://doi.org/10.33142/mes.v2i2.3162

Refbacks

  • There are currently no refbacks.


Copyright (c) 2020 Chunyou ZHANG, Lihua WANG

Creative Commons License
This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.