2022
DOI: 10.1177/00202940221113588
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Warning model of new energy vehicle under improving time-to-rollover with neural network

Abstract: The probability of electric vehicle rollover accident can be effectively reduced by shortening the prediction time interval and improving the prediction accuracy. Based on a multilayer neural network, an improved time-to-rollover method is presented in this paper. Firstly, the force model of vehicle rollover is established and analyzed where the structure and mass of a battery box have an important influence on the occurrence of rollover. Then, the rollover indexes considering hyperparameters are divided into … Show more

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Cited by 11 publications
(9 citation statements)
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“…to assess the danger of rollover [8]. If the value of this indicator fluctuates around the zero point, the car will be more stable.…”
Section: Plos Onementioning
confidence: 99%
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“…to assess the danger of rollover [8]. If the value of this indicator fluctuates around the zero point, the car will be more stable.…”
Section: Plos Onementioning
confidence: 99%
“…However, if only the parameters on the right side of Eq ( 1 ), such as h , t w , a y , g , and ϕ , are used, the calculation will be inaccurate because the mass and stiffness of the suspension system are ignored. The LTR index is also used for the dynamic model with three DOFs, which is shown in the paper by Chao et al According to Chao et al, the values of LTR ranged from -1 to +1, and they divided these values into five respective steps to assess the danger of rollover [ 8 ]. If the value of this indicator fluctuates around the zero point, the car will be more stable.…”
Section: Introductionmentioning
confidence: 99%
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“…The influence of belt and carcass elasticity and transient conditions should be considered in more complex moving situations. [58][59][60] Substitute equations ( 19) to ( 27) into ( 16), (17), and ( 18), and we get:…”
Section: Roll Modelmentioning
confidence: 99%
“…16 Another criterion called time to rollover is developed by Chao et al to help evaluate the phenomenon of vehicle rollover in real time. 17 According to Chao et al, this index can be further improved by using the artificial neural network algorithm. In addition, the risk of rolling over is also reflected in the threshold of lateral acceleration.…”
Section: Introductionmentioning
confidence: 99%