Parameter Matching Analysis of Hydraulic Hybrid Bergepanzers Based on RBF-Adaptive Artificial Immune Algorithm

Author:

Ning Chuming12ORCID,Chao Zhiqiang1,Li Huaying1,Han Shousong1

Affiliation:

1. Department of Vehicle Engineering China, Academy of Army Armored Force, Beijing, No. 21, Dujiakan, Fengtai District 100072, Beijing, P. R. China

2. Quartermaster Equipment Research Institute, Academy of Military Sciences PLA China, No. 69, Lumicang Hutong, Dongcheng District, 100010, Beijing, P. R. China

Abstract

Due to the multiple types of support tasks and high-energy efficiency equipment, energy saving research in a Bergepanzer has attracted much attention in recent years. A hydraulic hybrid system is an effective way for these problems of Bergepanzers. The initial problem is to optimize the parameter optimization-matching for a new hydraulic hybrid Bergepanzers (NHHB), which is a relatively complex and variable time-varying nonlinear system. In this paper, an RBF-adaptive artificial immune algorithm (RBF&AAIA) is presented to solve the parameter optimization-matching problem, and the performance of algorithm is analyzed. Finally, the RBF&AAIA is successfully used for the NHHB to optimize the parameters of key components for the minimum energy consumption of system, and the optimal parameter matching group is obtained.

Funder

National Natural Science Foundation of China

Publisher

World Scientific Pub Co Pte Lt

Subject

Artificial Intelligence,Computer Vision and Pattern Recognition,Software

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