Damper of semi-active energy regenerative suspension based on hybrid excitation and its size determination method

US10633047B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10633047-B2
Application numberUS-201615739086-A
CountryUS
Kind codeB2
Filing dateAug 26, 2016
Priority dateAug 16, 2016
Publication dateApr 28, 2020
Grant dateApr 28, 2020

How to read this patent

A practical reading order for non-experts. Skip the full description unless you need deep technical detail.

  1. Title

    What the patent document calls the invention.

  2. Abstract

    A short plain-language summary of the technical disclosure.

  3. Assignees and inventors

    Who owns or filed the patent and who is credited as inventor.

  4. Key dates

    Filing, priority, publication, and grant dates set the timeline.

  5. First independent claim

    The legal scope of protection — read this for what is actually claimed.

  6. CPC / IPC classifications

    Technology tags used to group this patent with similar filings.

  7. Citations and related patents

    Prior art links and similar publications in this corpus.

Abstract

Official abstract text for this publication.

Provided is a damper for a semi-active energy regenerative suspension based on hybrid excitation. The damper includes: an upper lifting lug, a dustcover, a lower lifting lug, a hydraulic shock absorber, and a hybrid excitation mechanism, wherein the hydraulic shock absorber is configured to provide a constant viscous damping coefficient, and wherein the hybrid excitation mechanism is configured to generate an adjustable electromagnetic damping force, to transform the vibration energy into electrical energy, and to storage the electrical energy. Also provided is a method for determining the sizes of the damper. The damper which has a simple structure, balances the vibration isolation property and energy regenerative property of the vehicle suspension, and provides a fail-safe function. Furthermore, the method for determining the sizes of the damper is easy and practical to implement, has definite steps and produces drastically optimized results.

First claim

Opening claim text (preview).

The invention claimed is: 1. A method for determining the sizes of a damper for a semi-active energy regenerative suspension based on hybrid excitation, comprising the steps of: Step 1), deducing an analytical expression of an electromagnetic damping force and an analytical expression of an induced electromotive force of the damper for a semi-active energy regenerative suspension; Step 2), determining a rated data of the damper for a semi-active energy regenerative suspension according to particular working conditions and technical requirements of the damper for a semi-active energy regenerative suspension; and, determining an adjustable range of a hybrid damping force and a type of the hydraulic shock absorber; Step 3), determining a size of a permanent magnet according to a deduced analytical expression of the electromagnetic damping force of the damper for a semi-active energy regenerative suspension, wherein an excitation current in a DC excitation winding is assumed as zero; and determining a number of windings and wire diameter of a DC excitation winding according to an input range of a DC excitation current in the DC excitation winding; Step 4), optimizing overall dimensions of a motor by particle swarm optimization algorithm, wherein the electromagnetic damping force provided by unit excitation current is taken as an objective function, and wherein constraint conditions are as follows: magnetic density of each part of the motor does not exceed a maximum value of the magnetic density; boundary dimensions of the motor meet corresponding requirements; an excitation current is no more than 3 A; and the electromagnetic damping power is greater than the minimum value; and, substituting the above constraint conditions into the objective function with a penalty function, wherein the parameters set in the particle swarm optimization algorithm include a population size of the particle swarm, learning factors, inertia weights, an independent variable and a number of iterations; Step 5), substituting overall dimensions of the motor obtained as described above into the analytical expression of the electromagnetic damping force and the analytical expression of the induced electromotive force so as to obtain an analytic value of the electromagnetic damping force and an analytic value of energy recovered in the damper for a semi-active energy regenerative suspension; Step 6), comparing the rated data of step 2) and the analytic values calculated in step 5); and moving to a next step if the design requirements are met, or otherwise returning to step 3) if the design requirements are not met; Step 7), establishing a motor model according to initial sizes of each part of the motor as determined in step 3) and step 4) in a simulation software; simulating the linear motor based on hybrid excitation, and performing a finite element analysis; and, optimizing dimensions of a hybrid excitation mechanism via comparing a finite element value with the analytic value calculated in step 4),wherein the parameters to be optimized include a width of the permanent magnet, a length of DC excitation winding and a length of an air-gap between a stator and a mover in the motor; Step 8), obtaining optimized sizes of the hybrid excitation mechanism after being optimized; and, comparing performances of the damper for a semi-active energy regenerative suspension before and after optimization, wherein, if there is no significant improvement after optimization in term of the performances of the damper, return to step 6); and Step 9), determining final sizes of the damper for a semi-active energy regenerative suspension. 2. The method for determining the sizes of a damper for a semi-active energy regenerative suspension based on hybrid excitation according to claim 1 , wherein the analytical expression of the electromagnetic damping force deduced in the step 1) is F E = k f ⁢ k v ⁡ ( z . 2 - z . 1 ) R m + R l , wherein F E is the electromagnetic damping force of the damper for a semi-active energy regenerative suspension; k f is an electromagnetic damping force coefficient; k v is a voltage coefficient of winding; (ż 2 −ż 1 )is a relative velocity between the mover and the stator; R m is the motor internal resistance; and R l is the resistance of a loaded circuit. 3. The method for determining the sizes of a damper for a semi-active energy regenerative suspension based on hybrid excitation according to claim 1 , wherein the analytical expression of the induced electromotive force deduced in the step 1) is V emf = - m ⁢ ⁢ 2 ⁢ π ⁢ ⁢ r ⁢ A m ⁢ B m A coil ⁢ dx dt = - k v ⁡ ( z . 2 - z .

Assignees

Inventors

Classifications

  • having dampers accumulating utilisable energy, e.g. compressing air {(fluid springs with an accumulator B60G11/30)} · CPC title

  • F16F9/34Primary

    Special valve constructions ({F16F9/44, F16F9/50 take precedence; filtering details F16F9/3285} ; valves in general F16K); Shape or construction of throttling passages · CPC title

  • Design optimisation, verification or simulation (optimisation, verification or simulation of circuit designs G06F30/30) · CPC title

  • with armature and magnets on one member, the other member being a flux distributor · CPC title

  • B60G13/08Primary

    hydraulic · CPC title

Patent family

Related publications grouped by family.

External sources

Frequently asked questions

Answers are generated from the same data shown on this page.

What does patent US10633047B2 cover?
Provided is a damper for a semi-active energy regenerative suspension based on hybrid excitation. The damper includes: an upper lifting lug, a dustcover, a lower lifting lug, a hydraulic shock absorber, and a hybrid excitation mechanism, wherein the hydraulic shock absorber is configured to provide a constant viscous damping coefficient, and wherein the hybrid excitation mechanism is configured…
Who is the assignee on this patent?
Univ Jiangsu
What technology area does this patent fall under?
Primary CPC classification F16F9/34. Mapped technology areas include Mechanical Engineering.
When was this patent published?
Publication date Tue Apr 28 2020 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).