CN103576693B - Underwater robot three-dimensional path tracking and controlling method based on second order filter - Google Patents

Underwater robot three-dimensional path tracking and controlling method based on second order filter Download PDF

Info

Publication number
CN103576693B
CN103576693B CN201310553699.XA CN201310553699A CN103576693B CN 103576693 B CN103576693 B CN 103576693B CN 201310553699 A CN201310553699 A CN 201310553699A CN 103576693 B CN103576693 B CN 103576693B
Authority
CN
China
Prior art keywords
theta
centerdot
psi
upsi
robot
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN201310553699.XA
Other languages
Chinese (zh)
Other versions
CN103576693A (en
Inventor
王宏健
陈子印
边信黔
李娟�
严浙平
陈兴华
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Harbin Engineering University
Original Assignee
Harbin Engineering University
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Harbin Engineering University filed Critical Harbin Engineering University
Priority to CN201310553699.XA priority Critical patent/CN103576693B/en
Publication of CN103576693A publication Critical patent/CN103576693A/en
Application granted granted Critical
Publication of CN103576693B publication Critical patent/CN103576693B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Landscapes

  • Feedback Control In General (AREA)
  • Control Of Position, Course, Altitude, Or Attitude Of Moving Bodies (AREA)

Abstract

The present invention is to provide a kind of underwater robot three-dimensional path tracking and controlling method based on second order filter, filtering Backstepping is utilized to carry out underwater robot three-dimensional path tracing control, by introducing two second order filters set up based on underwater robot three-dimensional path pursuit movement error model, obtain attitude, speed, the virtual controlling amount of angular velocity and derivative thereof, control in conjunction with underwater human occupant dynamic model acquisition approach tracking control unit inputs, act on robot propeller and steering wheel, and then realize the tracking to three-dimensional path;And according to lyapunov energy function to position, gesture stability loop design filtering feedback compensation term, speed control loop is introduced integral element, constitute systematic error compensation loop, promote the precision of tracking system.

Description

Underwater robot three-dimensional path tracking and controlling method based on second order filter
Technical field
The present invention relates to the motion control method of a kind of underwater robot, particularly relate to a kind of underwater robot three-dimensional path tracking and controlling method based on second order filter.
Background technology
The tracking control problem of underwater robot is always up study hotspot both domestic and external.Path trace problem requires nothing more than the movement locus of underwater robot and converges to expected path, and is not required when arriving where.Path tracking technique is by introducing the concept of virtual guide point on expected path, it is to avoid owing to the kinetic model of underwater robot is subject to environmental perturbation effect during track following, it is impossible to accurately obtain the expectation state, the problem causing tracking control system degradation.Path trace is compared to track following problem, owing to desired locations is not retrained by time conditions, thus not being easily caused controller output saturation signal, meeting engineering reality, having more actual application value.
Based on the Backstepping of system layer Recursive Design thought, the design for underwater robot three-dimensional tracking control system provides effective means.But, in the process of Backstepping Recursive Design controller, need the derivative of step by step calculation intermediate virtual controlled quentity controlled variable, it is then based on the thought input of equal value by design subsequent subsystem of feedback linearization, realize calming to prime subsystem, by continuous iteration until obtaining and finally truly controlling input.When the exponent number increase of system or the form of virtual controlling are complex, derivation process will become very loaded down with trivial details.Feedback oscillator Backstepping design three-dimensional curve path following control device is adopted for this present invention, part nonlinear terms are eliminated by the parameter of reasonable selection control, simplify the form of virtual controlling amount compared to tradition Backstepping design process, but remain a need for the analytical form of step by step calculation virtual controlling derivative.For overcoming in conventional Backstepping recursive process the deficiency to dummy pilot signal progressively derivation, document " TheUseofSlidingModestoSimplifytheBacksteppingControl " and " Theuseoflinearfilteringofsimplifiedintegratorbacksteppin gcontrolofnonlinearsystems " are respectively adopted sliding formwork wave filter and linear filter approaches the derivative of virtual controlling;Document " CommandFilteredBackstepping " proposes the Backstepping Trajectory Tracking Control (IEEETransactionsOnAutomaticControl.2009 based on design of filter, 54th volume the 6th phase), second order filter is adopted to approach dummy pilot signal, simplifying controller design process, based on singular perturbation theoretical proof, the error controlled between output of filtering track and conventional Backstepping can converge to zero point relatively small neighbourhood.Filtering Backstepping is applied in the Trajectory Tracking Control of land vehicle by document " LandVehicleControlUsingaCommandFilteredBacksteppingAppro ach ";Document " the depopulated helicopter Trajectory Tracking Control based on filtering Backstepping " (controls and decision-making .2012,27th volume the 4th phase) and document " the small-sized depopulated helicopter Trajectory Tracking Control of state constraint " (control theory and application .2012,29th volume the 6th phase) disclosed in helicopter Trajectory Tracking Control in, enormously simplify controller design process.There is presently no pertinent literature discussion to design based on the underwater robot three-dimensional path tracing control of wave filter.
Summary of the invention
The underwater robot three-dimensional path tracking and controlling method based on second order filter that the present invention proposes a kind of process simplification, tracking accuracy is high.
The detailed process based on the underwater robot three-dimensional path tracking and controlling method of second order filter of the present invention is:
Step 1. sets up fixed coordinate system, robot carrier coordinate system and Serret-Frenet (path reference) coordinate system, obtains expected path, and underwater robot starts path trace, completes the initialization of two second order filters;
Fixed sonar sensor that step 2. is carried by underwater robot, attitude transducer, gather underwater robot current location, attitude angle, angular velocity and speed data information, and in conjunction with the direction of expected path and speed, guide thought according to the angle of sight and calculate and obtain the desirable attitude control quantity ψ of underwater robotco、θco, and ideal velocity controlled quentity controlled variable uco
The involved desirable attitude control quantity ψ of underwater robotco、θco, and ideal velocity controlled quentity controlled variable ucoCalculation expression be:
ψ c o = - arcsin ( k 2 e / 1 + ( k 2 e ) 2 ) - - - ( 1 )
θ c o = arcsin ( k 3 h / 1 + ( k 3 h ) 2 ) - - - ( 2 )
uco=-k1s+urcosψcocosθco(3)
Wherein gain factor k1> 0, k2> 0, k3> 0 is angle of sight guidance law normalized parameter, and variable s, e and h represent robot and the forward direction of expected path reference point, transverse direction and vertical tracking error under robot carrier coordinate system respectively.
The desirable controlled quentity controlled variable ψ that step 3. will obtain in step 2co、θco、ucoInput, to the second order filter set up based on underwater robot three-dimensional path pursuit movement error model, obtains attitude and the rate controlling amount ψ of underwater robotc、θc、uc, and derivativeIn conjunction with robot motion variable ψ, θ, u, obtain filtering attitude and the speed Tracking margin of error With desirable angle rate controlling amount rco、qco
Involved underwater robot three-dimensional path pursuit movement error model is:
s · = r e - q h + u - u r cosψ e cosθ e e · = - r s + u r sinψ e cosθ e + v h · = q s - u r sinθ e + w - - - ( 4 )
ψ · e = r c o s θ - r F θ · e = q - q F - - - ( 5 )
Wherein ψe=ψ-ψF, θe=θ-θF,Robot longitudinal velocity u, lateral velocity v and vertical velocity w, yaw angle speed r and pitch velocity q, urFor the desired speed of virtual guide point on expected path to be designed, its direction is along the tangential direction of curved path;ψFFor urThe angle of velocity attitude and fixed coordinate system trunnion axis, θFFor urThe angle of velocity attitude and fixed coordinate system vertical axis;ψ be robot bow to angle, θ is robot Angle of Trim.
The underwater robot desirable angle rate controlling amount r that step 4. will obtain in step 3co、qcoInput, to another second order filter set up based on underwater robot three-dimensional path pursuit movement error model, obtains the angular velocity controlled quentity controlled variable r of underwater robotc、qc, and derivativeIn conjunction with robot angular movement variable r, q, obtain filtering angular velocity tracking error amount
Step 5. utilizes the filtering attitude and the speed Tracking margin of error that obtain in step 3And the filtering angular velocity tracking error amount obtained in step 4Resolving obtains underwater robot propeller thrust Fu, with diving-plane angle δs, vertical rudder angle δr, it is respectively acting on robot propeller and steering wheel, it is achieved three-dimensional path tracing control;
Involved underwater robot propeller thrust Fu, with diving-plane angle δs, vertical rudder angle δrExpression formula be:
F u = m 1 ( - k u u ~ - k i u ϵ 1 + u · c - u b s ) - f u δ s = b 1 - 1 [ m 4 ( - k q q ~ - k i q ϵ 2 + q · c - q b s ) - f q ] δ r = b 2 - 1 [ m 5 ( - k r r ~ - k i r ϵ 3 + r · c - r b s ) - f r ] - - - ( 6 )
Whereinfu、fqAnd frFor model nonlinear hydrodynamic force item;Ubs、qbsAnd rbsFor feedback compensation robust item;M1、m4、m5The additional mass respectively produced by fluid;Ku、kq、kr、kiu、kiqAnd kirIt is controller parameter;
Involved underwater human occupant dynamic model is:
u · = m 2 m 1 v r - m 3 m 1 w q - d 1 m 1 u + 1 m 1 F u + ω 1 v · = - m 1 m 2 v r - d 2 m 2 v + ω 2 w · = m 1 m 3 u q - d 3 m 3 w + g 1 + ω 3 q · = m 3 - m 1 m 5 u w - d 4 m 5 q - g 2 + 1 m 5 b 1 δ s + ω 4 r · = m 1 - m 2 m 6 u v - d 5 m 6 r + 1 m 6 b 2 δ r + ω 5 - - - ( 7 )
Wherein
m 1 = m - X u · , m 2 = m - Y v · , m 3 = m - Z w ·
m 5 = I y - M q · , m 6 = I z - N r ·
g1=(W-B) cos θ, g2=(zgW-zbB)sinθ
d1=Xu+Xu|u||u|,d2=Yv+Yv|v||v|
d3=Zw+Zw|w||w|,d4=Mq+Mq|q||q|
d5=Nr+Nr|r||r|
b 1 = u 2 M δ s , b 2 = u 2 N δ r
Wherein, m and m(·)Represent robot quality and the additional mass produced by fluid matasomatism, I respectivelyyFor the robot rotary inertia around y-axis, IzFor the robot rotary inertia around z-axis, X(·)、Y(·)、Z(·)、M(·)And N(·)For viscous fluid hydrodynamic force coefficient;ZgAnd zbThe respectively coordinate position of center of gravity and centre of buoyancy on vertical axis under carrier coordinate, W and B represents the gravity and buoyancy, d that robot is subject to respectively(·)For nonlinear dampling hydrodynamic force item,WithFor hydroplane and vertical rudder steerage coefficient, ω(·)It is expressed as interference effect item.
Step 6. utilizes the underwater robot attitude and rate controlling amount ψ that obtain in step 3c、θc、uc, filtering attitude and the speed Tracking margin of errorWith desirable angle rate controlling amount rco、qco, the angular velocity controlled quentity controlled variable r of the underwater robot obtained in integrating step 4c、qc, and filtering angular velocity tracking error amountStructure filtering error compensates loop;
Involved filtering error compensates the expression formula of error compensation robust item in loop:
ψ b s = g T ( ψ ~ ) B T u r υ x υ y υ z - - - ( 8 )
θ b s = g T ( θ ~ ) C T u r υ x υ y υ z - - - ( 9 )
u b s = 1 p 21 A T υ x υ y υ z - - - ( 10 )
r b s = 1 p 23 υ ψ c o s θ - - - ( 11 )
q b s = 1 p 22 υ θ - - - ( 12 )
Wherein, p21、p22、p23For the element in the dematrix of Lyapunov Equation;
A = 1 0 0 , B = cosθ e cosψ c - cosθ e sinψ c cosθ c sinψ c cosθ c cosψ c 0 0 , C = cosψ e cosθ c - cosψ e sinθ c sinψ e cosθ c - sinψ e sinθ c - sinθ c - cosθ c ,
g ( ψ ~ ) = c o s ψ ~ - 1 ψ ~ s i n ψ ~ ψ ~ , g ( θ ~ ) = c o s θ ~ - 1 θ ~ s i n θ ~ θ ~ , And meet lim ψ ~ → 0 g ( ψ ~ ) = 0 1 , lim θ ~ → 0 g ( θ ~ ) = 0 1 ;
Position filtering signal compensation error is
υ x υ y υ z = s ~ - ζ x s ~ - ζ y h ~ - ζ z - - - ( 13 )
Wherein position filtering compensates and dynamically measures ζx、ζyAnd ζzExpression formula is
ζ · x ζ · y ζ · z = rζ y - qζ z - rζ x qζ x - k x ζ x - k y ζ y - k z ζ z + s · c - s · c o e · c - e · c o h · c - h · c o + u r [ A B g ( ψ ~ ) C g ( θ ~ ) ] ζ u ζ ψ ζ θ - - - ( 14 )
And have ζx(0)=0, ζy(0)=0, ζz(0)=0;Sco、eco、hcoFor expectation position signalling, sc、ec、hcFor position control signal, ζu、ζψAnd ζθThe filtering compensation variable respectively constructed;
The attitude signal compensation dosage of wave filter output is:
υ ψ υ θ = ψ ~ - ζ ψ θ ~ - ζ θ - - - ( 15 )
Filtering attitude compensates Expression formula:
ζ · ψ = - k ψ ζ ψ + r c - r c o c o s θ + ζ r cos θ - - - ( 16 )
ζ · θ = - k θ ζ θ + ( q c - q c o ) + ζ q - - - ( 17 )
And have ζψ(0)=0, ζθ(0)=0, ζr=0, ζq=0.
Step 7. calculates current underwater robot position ηn=(x, y, z) with the turning point WP demarcatedk=(xk,yk,zk) between distanceIf less than the switching radius R set, then it represents that complete the tracing task in currently assigned path, otherwise continue step 2.
The present invention adopts filtering Backstepping to carry out underwater robot three-dimensional path tracing control, by designing second order filter, it is capable of the estimation to virtual controlling and its derivative signal, avoid the parsing derivation to virtual signal, introduce filtering compensation system and ensure the tracking accuracy of filtering signal, ensure that system tracking error converges on zero point based on Lyapunov stability theory, control performance is better than dynamic surface control.
The invention have the advantages that and effect:
1., by three-dimensional path tracking control problem, it is decomposed into the problem that position, attitude and speed loop are controlled respectively;
2. adopt the second order filter to obtain the filtering signal of virtual controlling and derivative form thereof, it is to avoid owing to needing the derivative form that step by step calculation intermediate virtual controls and the problem causing " item number expansion " in Backstepping design, to simplify controller design process;
3. by constructing filtering compensation system, it is ensured that the wave filter tracking accuracy to reference-input signal, it is achieved that system tracking error asymptotic convergence is to zero point;
4. the integral element introducing speed eliminates tracking signal steady-state error.
Accompanying drawing explanation
Fig. 1 provides the AUV three-dimensional path tracking control unit block diagram based on filtering Backstepping;
Fig. 2 robot three-dimensional path trace schematic diagram;
Fig. 3 second order filter structure chart;
Fig. 4 robot three-dimensional path trace track;
Fig. 5 robot three-dimensional path trace X/Y plane projects;
Fig. 6 robot three-dimensional path trace XZ plane projection;
Fig. 7 robot three-dimensional path trace curve of error;
Fig. 8 robot three-dimensional path trace speed responsive;
Fig. 9 robot three-dimensional path trace attitude angle responds;
Figure 10 robot three-dimensional path trace longitudinal velocity and compensation term;
Figure 11 robot three-dimensional path trace yaw angle speed and compensation term;
Figure 12 robot three-dimensional path trace pitch velocity and compensation term;
Figure 13 robot three-dimensional path trace bow is to angle and compensation term;
Figure 14 robot three-dimensional path trace Angle of Trim and compensation term;
Figure 15 robot three-dimensional path following control inputs.
Detailed description of the invention
Present invention is as follows based on the detailed description of the invention of the underwater robot three-dimensional path tracking and controlling method of second order filter:
1. Fig. 1 has marked the mutual relation of the status signal of AUV system, virtual controlling amount and filtering signal and derivative value thereof, forward loop obtains filtering signal and the derivative signal of virtual controlling mainly through second order filter, compensates the loop guarantee wave filter tracking accuracy to input signal by designing filtering error.
2. Fig. 3 is robot three-dimensional path trace schematic diagram, lkFor expected path, { I}, { B} and { F} represents fixed coordinate system, robot carrier coordinate system and Serret-Frenet coordinate system respectively;P point is expected path lkOn virtual guide, Q point represents robot centroid position, for given expected path lkFor For the path parameter determined, with lk{ F} is defined as coordinate system that { I} rotates ψ rotating around ζ axle and η for the moving coordinate system for initial point of upper virtual guide PFAnd θFAngle, then translation makes fixed coordinate system initial point O overlap with P point on path to obtain, and the anglec of rotation is defined as here
WhereinFirst underwater robot three-dimensional path pursuit movement error model is provided
s · = r e - q h + u - u r c o s ψ e c o s θ e e · = - r s + u r sinψ e cosθ e + v h · = q s - u r s i n θ e + w
ψ · e = r c o s θ - r F θ · e = q - q F - - - ( 4 )
Wherein variable s, e and h represent { forward direction of reference point, transverse direction and vertical tracking error on robot and expected path under B} coordinate system respectively, ψ and θ is the current bow of robot to angle and Angle of Trim, state variable u, v, w, q and r represent the longitudinal velocity of robot under carrier coordinate system, lateral velocity, vertical velocity, pitch velocity and yaw angle speed respectively;UrFor virtual target translational speed, wherein
Ignore the impact that robot three-dimensional is moved by rolling, set up following robot with five degrees of freedom kinetic model.
u · = m 2 m 1 v r - m 3 m 1 w q - d 1 m 1 u + 1 m 1 F u + ω 1 v · = - m 1 m 2 ur - d 2 m 2 v + ω 2 w · = m 1 m 3 u q - d 3 m 3 w + g 1 + ω 3 q · = m 3 - m 1 m 5 u w - d 4 m 5 q - g 2 + 1 m 5 b 1 δ s + ω 4 r · = m 1 - m 2 m 6 u v - d 5 m 6 r + 1 m 6 b 2 δ r + ω 5 - - - ( 5 )
Wherein
m 1 = m - X u · , m 2 = m - Y v · , m 3 = m - Z w ·
m 5 = I y - M q · , m 6 = I z - N r ·
g1=(W-B) cos θ, g2=(zgW-zbB)sinθ
d1=Xu+Xu|u||u|,d2=Yv+Yv|v||v|
d3=Zw+Zw|w||w|,d4=Mq+Mq|q||q|
d5=Nr+Nr|r||r|
b 1 = u 2 M δ s , b 2 = u 2 N δ r
Wherein, state variable u, v, w, q and r represents the longitudinal velocity of robot under carrier coordinate system, lateral velocity, vertical velocity, pitch velocity and yaw angle speed respectively;M and m(·)Represent robot quality and the additional mass produced by fluid matasomatism, I respectivelyyFor the robot rotary inertia around y-axis, IzFor the robot rotary inertia around z-axis, X(·)、Y(·)、Z(·)、M(·)And N(·)For viscous fluid hydrodynamic force coefficient;ZgAnd zbThe respectively coordinate position of center of gravity and centre of buoyancy on vertical axis under carrier coordinate, W and B represents the gravity and buoyancy, d that robot is subject to respectively(·)For nonlinear dampling hydrodynamic force item,WithFor hydroplane and vertical rudder steerage coefficient, control input Fu、δsAnd δrRepresent AUV propeller thrust, diving-plane angle and vertical rudder angle, ω respectively(·)It is expressed as interference effect item.
3. the design process of step 3 median filter is
The calculating process of complexity is introduced in order to avoid virtual controlling amount is directly resolved derivation, utilize the characteristic of second order filter, using the virtual controlling amount reference input as wave filter, by integration but not the process of differential obtains its filtering signal and derivative value, filter construction definition is as follows:
x 1 x · 2 = 0 1 - ω n 2 - 2 ζω n x 1 x 2 + 0 ω n 2 x ‾ - - - ( 6 )
Wherein x 1 x 2 T = x c x · c T , For the reference-input signal of wave filter, above formula is linear stationary system, it is seen that whenFor there being dividing value, then xcWithIt is continuous bounded signal, from input signalTo output signal xcTransmission function be
H ( s ) = X c ( s ) X ‾ ( s ) = ω n 2 s 2 + 2 ζω n s + ω n 2 - - - ( 7 )
Wherein ζ and ωnRepresent damping ratio and natural angular frequency respectively;If signalBandwidth lower than H (s), then error signalWill be only small, it is assumed that knownWhen bandwidth, by selecting sufficiently large natural angular frequency ωnJust it is obtained in that xcAnd xcAnd guarantee approximate errorOnly small.As can be seen from the above equation, signalBeing obtained by integral process but not additive process, this can greatly reduce based on measuring effect of noise in the control system of State Feedback Design, selects excessive ω simultaneouslynIncreasing again system high-frequency effect of noise, this is accomplished by considering, and selects rational ωnMeet control performance.
4., for position tracking loop in step 6, guide thought according to the angle of sight and provide the expectation angle of sight guidance law of path trace
And longitudinal velocity, and design attitude tracking filter compensate system process be
For the kinematic controller u of position tracking error system (3) design robot, attitude angle ψ and θ virtual controlling amount respectively
uco=-k1s+urcosψcocosθco(8)
ψ c o = - arcsin ( k 2 e / 1 + ( k 2 e ) 2 ) - - - ( 9 )
θ c o = arcsin ( k 3 h / 1 + ( k 3 h ) 2 ) - - - ( 10 )
Wherein gain factor k1> 0, k2> 0, k3> 0 is angle of sight guidance law normalized parameter, then system (3) becomes
s · = r e - q h - k 1 s e · = - r s - u r k 2 e 1 + ( k 2 e ) 2 1 1 + ( k 3 h ) 2 + v h · = q s - u r k 3 h 1 + ( k 3 h ) 2 + w - - - ( 11 )
For position tracking error systematic (3), construct lyapunov energy function
V 1 = 1 2 l 2 - - - ( 12 )
WhereinTo equation (12) derivation, formula (11) is substituted into
V · 1 = - k 1 s 2 - k 2 u r 1 1 + ( k 2 e ) 2 1 1 + ( k 3 h ) 2 e 2 - k 3 u r 1 1 + ( k 3 e ) 2 h 2 + e v + h w - - - ( 13 )
For avoiding Backstepping subsequent design needs θcoAnd ψcoEnter derivation, cause the deficiency of calculating " item number expansion ", define θc,And ψc,For ideal signal θcoAnd ψcoBy the filtering signal of second order filter and its derivative value, wave filter definition is as follows
θ · c θ ·· c = 0 1 - ω n 2 - 2 ζω n θ c θ · c + 0 ω n 2 θ c o - - - ( 14 )
The initial value θ of wave filterc(0)=θco(0);
ψ · c ψ ·· c = 0 1 - ω n 2 - 2 ζω n ψ c ψ · c + 0 ω n 2 ψ c o - - - ( 15 )
The initial value ψ of wave filterc(0)=ψco(0);
Here definition position filtering tracking error signal
s ~ e ~ h ~ = s - s c e - e c h - h c - - - ( 16 )
To formula (16) both sides derivation, formula (3) is substituted into
s ~ · e ~ · h ~ · = r e ~ - q h ~ - r s ~ q s ~ [ A A B g ( ψ ~ ) u r C g ( θ ~ ) u r ] u ~ ψ ~ θ ~ - - - ( 17 )
Wherein, definition filter tracking error is u ~ = u - u c , ψ ~ = ψ e - ψ c , θ ~ = θ e - θ c ,
A = 1 0 0 , B = cosθ e cosψ c - cosθ e sinψ c cosθ c sinψ c cosθ c cosψ c 0 0
C = cosψ c cosθ c - cosψ c sinθ c sinψ e cosθ c - sinψ e sinθ c - sinθ c - cosθ c
g ( ψ ~ ) = c o s ψ ~ - 1 ψ ~ sin ψ ~ ψ ~ , g ( θ ~ ) = c o s θ ~ - 1 θ ~ s i n θ ~ θ ~ , And meet lim ψ ~ → 0 g ( ψ ~ ) = 0 1 , lim θ ~ → 0 g ( θ ~ ) = 0 1 To the transposition of formula (16) left and right, increase and subtract one item missing s · c o e · c o h · c o T Obtain
s · e · h · = s · c o e · c o h · c o + s ~ · e ~ · h ~ · + s · c - s · c o e · c - e · c o h · c - h · c o - - - ( 18 )
According to Tracking Control Design target, select ideal expectation position signalling s · c o e · c o h · c o T For
s · c o e · c o h · c o = - k x s ~ + s · c - k y e ~ + e · c - k z h ~ + h ~ c - - - ( 19 )
Definition angle filter tracking error signal is
u ~ ψ ~ θ ~ = u - u c ψ e - ψ c θ e - θ c - - - ( 20 )
Formula (19) and (17) are substituted into (18) arrange
s ~ · e ~ · h ~ · = r e ~ - q h ~ - r s ~ q s ~ + - k x s ~ - k y e ~ - k z h ~ + s · c - s · c o e · c - e · c o h · c - h · c o + [ A B g ( ψ ~ ) u r C g ( θ ~ ) u r ] u ~ ψ ~ θ ~ - - - ( 21 )
Definition filtering signal compensates error
υ x υ y υ z = s ~ - ζ x e ~ - ζ y h ~ - ζ z - - - ( 22 )
The wherein dynamic ζ of construction location filtering compensationx、ζyAnd ζzAs follows
ζ · x ζ · y ζ · z = rζ y - qζ z - rζ x qζ x - k x ζ x - k y ζ y - k z ζ z + s · c - s · c o e · c - e · c o h · c - h · c o + u r [ A B g ( ψ ~ ) C g ( θ ~ ) ] ζ u ζ ψ ζ θ - - - ( 23 )
Here ζx(0)=0, ζy(0)=0, ζz(0)=0.
5., for attitude angle tracking loop in step 6, the process of design angular velocity control law and attitude angle tracking filter compensation system is:
To filter tracking error type (20) derivation, attitude angle tracking error model formula (4) is substituted into
ψ ~ · = r c o s θ - r F - ψ · c = r c o + ( r c - r c o ) + r ~ cos θ - r F - ψ · c - - - ( 24 )
θ ~ · = q - q F - θ · c = q c o + ( q c - q c o ) + q ~ - q F - θ · c - - - ( 25 )
Wherein angular velocity tracking error is defined asHere ideal virtual control signal r is separately designedcoAnd qcoFor
r c o = c o s θ ( r F + ψ · c - k ψ ψ ~ - ψ b s ) - - - ( 26 )
q c o = q F + θ · c - k θ θ ~ - θ b s - - - ( 27 )
Here qcWithrcWithRespectively ideal signal qcoAnd rcoThe filtering signal obtained by second order filter and its derivative value, definition filter form is
q · c q ·· c = 0 1 - ω n 2 - 2 ζω n q c q · c + 0 ω n 2 q c o - - - ( 28 )
Wave filter initial condition qc(0)=qco(0);
r · c r ·· c = 0 1 - ω n 2 - 2 ζω n r c r · c + 0 ω n 2 r c o - - - ( 29 )
Wave filter initial condition rc(0)=rco(0);
Formula (26) and formula (27) are substituted into formula (24) and (25) obtain
ψ ~ · = - k ψ ψ ~ + ( r c - r c o ) + r ~ cos θ - ψ b s - - - ( 30 )
θ ~ · = - k θ θ ~ + ( q c - q c o ) + q ~ - θ b s - - - ( 31 )
Wherein kψ> 0 and kθ> 0 is controller parameter, ψbsAnd θbsFor calm item to be designed, here by definition compensation tracking error, the signal that wave filter is exported carries out feedback compensation
υ ψ υ θ = ψ ~ - ζ ψ θ ~ - ζ θ - - - ( 32 )
Here structure filtering compensation is dynamic
ζ · ψ = - k ψ ζ ψ + r c - r c o c o s θ + ζ r cos θ - - - ( 33 )
ζ · θ = - k θ ζ · θ + ( q c - q c o ) + ζ q - - - ( 34 )
Here initial condition ζψ(0)=0, ζθ(0)=0, ζr=0, ζq=0.
6. for speed control loop in step 6, introducing integral element and reduce steady-state error, the detailed process of design true control input is as follows:
For ensureing that tracking system exists the robustness under outer interference, introducing integral term increases the robustness of system, definition Here design robot three-dimensional path tracking control unit is
F u = m 1 ( - k u u ~ - k i u ϵ 1 + u · c - u b s ) - f u δ s = b 1 - 1 [ m 4 ( - k q q ~ - k i q ϵ 2 + q · c - q b s ) - f q ] δ r = b 2 - 1 [ m 5 ( - k r r ~ - k i r ϵ 3 + r · c - r b s ) - f r ] - - - ( 35 )
Wherein fu=m2vr-m3wq+d1u、fq=(m1-m3)uw+d4q-g2And fr=(m1-m2)uv+d5R is model nonlinear hydrodynamic force item, ubs、qbsAnd rbsIt is designed in step 6 for feedback compensation robust item to be designed.
7. in step 6, the detailed process of feedback control item design is as follows:
Firstly for positioning control system convolution (22) structure lyapunov energy function in step 2
V 1 = 1 2 ( υ x 2 + υ y 2 + υ z 2 ) - - - ( 36 )
To above formula derivation, formula (21) and (23) are substituted into formula (36) and obtains
V 1 = υ · x υ x + υ · y υ y + υ · z υ z = - k x υ x 2 - k y υ y 2 - k z υ z 2 + [ υ x υ y υ z ] [ A B g ( ψ ~ ) u r C g ( θ ~ ) u r ] υ u υ ψ υ θ = - k x υ x 2 - k y υ y 2 - k z υ z 2 + A T υ x υ y υ z υ u + g T ( ψ ~ ) B T u r υ x υ y υ z υ ψ + g T ( θ ~ ) C T u r υ x υ y υ z υ θ - - - ( 37 )
Wherein υu、υψ、υθDefinition is such as formula (32).
Then lyapunov energy function is constructed for posture tracing system convolution (32)
V 2 = 1 2 ( υ ψ 2 + υ θ 2 ) - - - ( 38 )
To above formula derivation, formula (30)~(34) are substituted into:
V · 2 = υ · ψ υ ψ + υ · 0 υ 0 = ( ψ ~ · - ζ · ψ ) υ ψ + ( θ ~ · - ζ · θ ) υ θ = ( - k ψ ψ ~ + r ~ cos θ - ψ b s + k ψ ζ ψ - ζ r cos θ ) υ ψ + ( - k θ θ ~ + q ~ - θ b s + k θ ζ θ - ζ q ) υ 0 = - k ψ υ ψ 2 - k θ υ θ 2 + υ q υ θ + υ r cos θ υ ψ - θ b s υ θ - ψ b s υ ψ - - - ( 39 )
Wherein υ u = u ~ - ζ u , υ r = r ~ - ζ r , υ q = q ~ - ζ q .
Again for speed control loop, formula (35) substitution formula (5) is obtained u, the error system of q and r is
u ~ · = - k u u ~ - k i u ϵ 1 - u b s q ~ · = - k q q ~ - k i q ϵ 2 - q b s r ~ · = - k r r ~ - k i r ϵ 3 - r b s - - - ( 40 )
Due to ζurq=0, what obtain filtering compensation error system here is dynamically
υ · u = - k u υ u - k i u ϵ 1 - u b s υ · q = - k q υ q - k i q ϵ 2 - q b s υ · r = - k r υ r - k i r ϵ 3 - r b s - - - ( 41 )
Due toSo system (41) can be rewritten as
ϵ ·· 1 = - k u ϵ · 1 - k i u ϵ 1 - u b s ϵ ·· 2 = - k q ϵ · 2 - k i q ϵ 2 - q b s ϵ ·· 3 = - k r ϵ · 3 - k i r ϵ 3 - r b s - - - ( 42 )
Definition error vector ε=[ε123]T,Then system (42) can be expressed as
E · = A E + B U - - - ( 43 )
WhereinKI=diag{-kiu,-kiq,-kir, KP=diag{-ku,-kq,-kr}
Last convolution (36), (43) and formula (38) structure lyapunov energy function
V 3 = V 1 + V 2 + 1 2 E T P E - - - ( 44 )
Wherein positive definite symmetric matrices P is the solution of linear Lyapunov Equation
ATP+PA=-Q (45)
Wherein P = P 1 0 3 × 3 0 3 × 3 P 2 , Pi=diag{pi1,pi2,pi3, i=1,2 is positive definite symmetric matrices, if selecting P1=KIP2, then Q = 0 3 × 3 0 3 × 3 0 3 × 3 2 K I P 2 ; Formula (44) is carried out derivation, formula (37), (39) and (43) is substituted into and arranges
V · 3 = V · 1 + V · 2 + E T P E · = - k x υ x 2 - k y υ y 2 - k z υ z 2 - k u υ u 2 - k ψ υ ψ 2 - k θ υ θ 2 - 1 2 E T Q E + A T υ x υ y υ z υ u + g T ( ψ ~ ) B T u r υ x υ y υ z υ ψ - ψ b s υ ψ + υ r cos θ υ ψ + g T ( θ ~ ) C T u r υ x υ y υ z υ θ + υ q υ θ - θ b s υ θ + E T P B U - - - ( 46 )
Formula (46) is further changed to
V · 3 = - k x υ x 2 - k y υ y 2 - k z υ z 2 - k u υ u 2 - k ψ υ ψ 2 - k θ υ θ 2 - 1 2 E T Q E + A T υ x υ y υ z υ u + g T ( ψ ~ ) B T u r υ x υ y υ z υ ψ + υ q υ θ + υ r cos θ υ ψ + g T ( θ ~ ) C T u r υ x υ y υ z υ θ - ψ b s υ ψ - θ b s υ θ - p 21 υ u u b s - p 22 υ q q b s - p 23 υ r r b s - - - ( 47 )
If design of feedback compensation term is
ψ b s = g T ( ψ ~ ) B T u r υ x υ y υ z - - - ( 48 )
θ b s = g T ( θ ~ ) C T u r υ x υ y υ z - - - ( 49 )
u b s = 1 p 21 A T υ x υ y υ z - - - ( 50 )
r b s = 1 p 23 υ ψ c o s θ - - - ( 51 )
q b s = 1 p 22 υ θ - - - ( 52 )
Formula (48) (48)~(52) (52) is substituted into formula (47) (47) arrange
V · 3 = - k x υ x 2 - k y υ y 2 - k z υ z 2 - k ψ υ ψ 2 - k θ υ θ 2 - 1 2 E T Q E ≤ 0 - - - ( 53 )
Above-mentioned theorem proving compensation tracking error system υiExponential Convergence, by the design process of second order filter it can be seen that when selecting suitable natural frequency ωn, xcoFor the reference-input signal of wave filter, wave filter is linear stationary system, it is seen that work as xcoFor there being dividing value, then xcWithIt is continuous bounded signal, if signal xcoBandwidth lower than design of filter bandwidth, then error signal | xco(t)-xc(t) | will be only small, due to ζiIt is single order stable linear system, so ζiNull value will be leveled off to, thus system tracking error exponential approach is in null value.Owing to introducing wave filter in controlling loop, the tracking accuracy of wave filter directly affects the control performance of system, and dynamic surface control, owing to not considering the tracking accuracy of filtering signal, is merely able to ensure that system tracking error converges to the neighborhood that initial point is less.Here by structure filtering compensation system, improve filtering signal tracking accuracy, ensure that closed loop system tracking error converges to zero point by stability analysis.
Simulating, verifying
It is exemplified below, the effectiveness of checking the inventive method:
Set up robot six degree of freedom simulation model according to hydrodynamic force coefficient, adopt Matlab environmental structure robot three-dimensional path following control analogue system.
For robot spiral dive operation, planning expectation three-dimensional curve path is (unit: m)
The initial position choosing robot is [x, y, z]T=[10 ,-5,1]TM (), initial bow is to for ψ=π/4 (rad), Angle of Trim θ=0 (rad), and robot initial speed is [u, v, w]T=0 (m/s), initial angular velocity q=0 (rad/s), r=0 (rad/s), controller parameter kx=ky=kz2=, kψ=kθ=5, ku=kq=kr=20, kiu=kiq=kir=10, p21=p22=p23=5.
In order to avoid virtual controlling amount directly being resolved derivation, introducing complicated calculating process, utilizing the characteristic of second order filter herein, it would be desirable to virtual controlling amount acoAs the reference input of wave filter, signalBeing obtained by integration but not the process of differential, this can greatly reduce based on measuring effect of noise in the control system of State Feedback Design, it is assumed that at known acoWhen bandwidth, by selecting sufficiently large natural angular frequency ωnJust it is obtained in that acWithAnd guarantee approximate error | αco(t)-αc(t) | only small;Select excessive ω simultaneouslynIncreasing again system high-frequency effect of noise, this is accomplished by considering, and selects rational ωnMeet control performance, choose ζ=0.9, ω heren=20;
Fig. 2~Figure 13 provides robot three-dimensional curved path tracing control simulation comparison result.
Fig. 2 is robot three-dimensional spiral dive path trace track, and Fig. 3 and Fig. 4 respectively robot three-dimensional path trace track is in the drop shadow curve of X/Y plane and XZ plane.It can be seen that due to conventional Backstepping be applied to true model based on the controller that mathematical models designs time, directly virtual controlling derivation is obtained its derivative obtains analytical form, effect is controlled poor when there is model uncertainty and measuring noise, and herein based on the gamma controller of design of filter, obtain the filter value of virtual controlling and derivative value by integral process but not additive process thus to measuring noise, there is certain filter action, by filtering compensation system, ensure that filter value the approaching time of day of ideal virtual controlled quentity controlled variable, and then compensate the condition responsive of nominal model and the deviation of true model condition responsive, model uncertainty is had good robustness, can be good at realizing tracing control, improve tracking accuracy.
Fig. 5 is tracking error curve in robot three-dimensional path following control, compared with conventional Backstepping controller, can be seen that the three-dimensional path controller designed herein improves the precision of path trace, shorten the redundancy voyage of robot, there is more stable control ability and ensure that robot follows the tracks of faster and converges to expected path, the tracking error is made finally to converge to zero, it was shown that controller has good tracking accuracy and response speed.
In Fig. 6 and Fig. 7 respectively robot three-dimensional, in path following control process, each state variable includes the change curve of linear velocity and attitude angle, can be seen that robot is less compared to longitudinal velocity at lateral velocity and vertical velocity along helix dive process, and for there being dividing value, conventional Backstepping design process cannot the measurement noise for the treatment of system state, and based on the controller of design of filter, the noise of measuring of system is had certain filter effect herein.
Fig. 8 is robot longitudinal velocity u, ideal virtual controlled quentity controlled variable ucoWith its filtering signal ucResponse curve, from partial enlarged drawing, can be seen that filtering signal ucFollow the tracks of ideal virtual signal u preferablyco, wave filter has certain filter action, u for the state u noise of measuring comprisedbsFor filtering compensation item, the u when following the tracks of system stabilitybsFinally stablize and converge on zero.Fig. 9 is robot yaw angle speed r, ideal virtual controlled quentity controlled variable rcoWith its filtering signal rcResponse curve, from partial enlarged drawing, can be seen that filtering signal rcFollow the tracks of ideal virtual signal r preferablyco, wave filter has certain filter action, r for the yaw angle speed r noise of measuring comprisedbsFor filtering compensation item, the r when following the tracks of system stabilitybsFinally converge to zero.
Figure 10 is robot pitch velocity q, ideal virtual controlled quentity controlled variable qcoWith its filtering signal qcResponse curve, from partial enlarged drawing, can be seen that filtering signal qcFollow the tracks of ideal virtual signal q preferablyco, wave filter has certain filter action, q for the yaw angle speed q noise of measuring comprisedbsFor filtering compensation item, the q when following the tracks of system stabilitybsFinal stable convergence is in zero.
Figure 11 and 12 respectively filter the robot yaw angle in Backstepping design and Angle of Trim, desirable control signal and filtering signal change curve, can be seen that filtering signal ψ from partial enlarged drawingcAnd θcFollow the tracks of ideal virtual signal ψ preferablycoAnd θco, wave filter has certain filter action for the noise of measuring comprised in yaw angle ψ and Angle of Trim θ, from filtering compensation item ψbsAnd θbsVariation tendency it can be seen that when follow the tracks of system stability time ψbsAnd θbsTo finally converge to zero point.
Figure 13 is the input response of robot three-dimensional path following control, and the method response curve of the present invention is more smooth as seen from the figure.

Claims (5)

1. the underwater robot three-dimensional path tracking and controlling method based on second order filter, it is characterised in that comprise the steps of
Step 1. sets up fixed coordinate system, robot carrier coordinate system and Serret-Frenet coordinate system, obtains expected path, and underwater robot starts path trace, completes the initialization of two second order filters;
Fixed sonar sensor that step 2. is carried by underwater robot, attitude transducer, gather underwater robot current location, attitude angle, angular velocity and speed data information, and in conjunction with the direction of expected path and speed, guide thought according to the angle of sight and calculate and obtain the desirable attitude control quantity ψ of underwater robotco、θco, and ideal velocity controlled quentity controlled variable uco
The desirable controlled quentity controlled variable ψ that step 3. will obtain in step 2co、θco、ucoInput, to the second order filter set up based on underwater robot three-dimensional path pursuit movement error model, obtains attitude and the rate controlling amount ψ of underwater robotc、θc、uc, and derivativeIn conjunction with robot motion variable ψ, θ, u, obtain filtering attitude and the speed Tracking margin of error With desirable angle rate controlling amount rco、qco
The underwater robot desirable angle rate controlling amount r that step 4. will obtain in step 3co、qcoInput, to another second order filter set up based on underwater robot three-dimensional path pursuit movement error model, obtains the angular velocity controlled quentity controlled variable r of underwater robotc、qc, and derivativeIn conjunction with robot angular movement variable r, q, obtain filtering angular velocity tracking error amount
Step 5. utilizes the filtering attitude and the speed Tracking margin of error that obtain in step 3And the filtering angular velocity tracking error amount obtained in step 4Resolving obtains underwater robot propeller thrust Fu, with diving-plane angleVertical rudder angle δr, it is respectively acting on robot propeller and steering wheel, it is achieved three-dimensional path tracing control;
Step 6. utilizes the underwater robot attitude and rate controlling amount ψ that obtain in step 3c、θc、uc, filtering attitude and the speed Tracking margin of errorWith desirable angle rate controlling amount rco、qco, the angular velocity controlled quentity controlled variable r of the underwater robot obtained in integrating step 4c、qc, and filtering angular velocity tracking error amountStructure filtering error compensates loop;
Step 7. calculates current underwater robot position ηn=(x, y, z) with the turning point WP demarcatedk=(xk,yk,zk) between distanceIf less than the switching radius R set, then it represents that complete the tracing task in currently assigned path, otherwise continue step 2.
2. the underwater robot three-dimensional path tracking and controlling method based on second order filter according to claim 1, it is characterised in that the desirable attitude control quantity ψ of underwater robot involved in step 2co、θco, and ideal velocity controlled quentity controlled variable ucoCalculation expression be:
ψ c o = - a r c s i n ( k 2 e / 1 + ( k 2 e ) 2 ) - - - ( 1 )
θ c o = a r c s i n ( k 3 h / 1 + ( k 3 h ) 2 ) - - - ( 2 )
uco=-k1s+urcosψcocosθco(3)
Wherein gain factor k1> 0, k2> 0, k3> 0 is angle of sight guidance law normalized parameter, and variable s, e and h represent robot and the forward direction of expected path reference point, transverse direction and vertical tracking error under robot carrier coordinate system respectively.
3. the underwater robot three-dimensional path tracking and controlling method based on second order filter according to claim 1, it is characterised in that step 3, underwater robot three-dimensional path pursuit movement error model involved in 4 be:
s · = r e - q h + u - u r cosψ e cosθ e e · = - r s + u r sinψ e cosθ e + v h · = q s - u r sinθ e + w - - - ( 4 )
ψ · e = r c o s θ - r F θ · e = q - q F - - - ( 5 )
Wherein ψe=ψ-ψF, θe=θ-θF,Robot longitudinal velocity u, lateral velocity v and vertical velocity w, yaw angle speed r and pitch velocity q, urFor the desired speed of virtual guide point on expected path to be designed, its direction is along the tangential direction of curved path;ψFFor urThe angle of velocity attitude and fixed coordinate system trunnion axis, θFFor urThe angle of velocity attitude and fixed coordinate system vertical axis;ψ be robot bow to angle, θ is robot Angle of Trim.
4. the underwater robot three-dimensional path tracking and controlling method based on second order filter according to claim 1, it is characterised in that the underwater robot propeller thrust F related in step 5u, with diving-plane angle δs, vertical rudder angle δrExpression formula be:
F u = m 1 ( - k u u ~ - k i u ϵ 1 + u · c - u b s ) - f u δ s = b 1 - 1 [ m 4 ( - k q q ‾ - k i q ϵ 2 + q · c - q b s ) - f q ] δ r = b 2 - 1 [ m 5 ( - k r r ~ - k i r ϵ 3 + r · c - r b s ) - f r ] - - - ( 6 )
Whereinfu、fqAnd frFor model nonlinear hydrodynamic force item;Ubs、qbsAnd rbsFor feedback compensation robust item;M1、m4、m5The additional mass respectively produced by fluid;Ku、kq、kr、kiu、kiqAnd kirIt is controller parameter;
Involved underwater human occupant dynamic model is:
u · = m 2 m 1 v r - m 3 m 1 w q - d 1 m 1 u + 1 m 1 F u + ω 1
v · = - m 1 m 2 u r - d 2 m 2 v + ω 2
w · = m 1 m 3 u q - d 3 m 3 w + g 1 + ω 3 - - - ( 7 )
q · = m 3 - m 1 m 5 u w - d 4 m 5 q - g 2 + 1 m 5 b 1 δ s + ω 4
r · = m 1 - m 2 m 6 u v - d 5 m 6 r + 1 m 6 b 2 δ r + ω 5
Wherein
m 1 = m - X u · , m 2 = m - Y v · , m 3 = m - Z w ·
m 5 = I y - M q · , m 6 = I z - N r ·
g1=(W-B) cos θ, g2=(zgW-zbB)sinθ
d1=Xu+Xu|u||u|,d2=Yv+Yv|v||v|
d3=Zw+Zw|w||w|,d4=Mq+Mq|q||q|
d5=Nr+Nr|r||r|
b 1 = u 2 M δ s , b 2 = u 2 N δ r
Wherein, m and m(·)Represent robot quality and the additional mass produced by fluid matasomatism, I respectivelyyFor the robot rotary inertia around y-axis, IzFor the robot rotary inertia around z-axis, X(·)、Y(·)、Z(·)、M(·)And N(·)For viscous fluid hydrodynamic force coefficient;ZgAnd zbThe respectively coordinate position of center of gravity and centre of buoyancy on vertical axis under carrier coordinate, W and B represents the gravity and buoyancy, d that robot is subject to respectively(·)For nonlinear dampling hydrodynamic force item,WithFor hydroplane and vertical rudder steerage coefficient, ω(·)It is expressed as interference effect item.
5. the underwater robot three-dimensional path tracking and controlling method based on second order filter according to claim 1, it is characterised in that the filtering error related in step 6 compensates the expression formula of error compensation robust item in loop and is:
ψ b s = g T ( ψ ~ ) B T u r υ x υ y υ z - - - ( 8 )
θ b s = g T ( θ ~ ) C T u r υ x υ y υ z - - - ( 9 )
u b s = 1 p 21 A T υ x υ y υ z - - - ( 10 )
r b s = 1 p 23 υ ψ c o s θ - - - ( 11 )
q b s = 1 p 22 υ θ - - - ( 12 )
Wherein, p21、p22、p23For the element in the dematrix of Lyapunov Equation;
A = 1 0 0 , B = cosθ e cosψ c - cosθ e sinψ c cosθ c sinψ c cosθ c cosψ c 0 0 , C = cosψ c cosθ c - cosψ c sinθ c sinψ e cosθ c - sinψ e sinθ c - sinθ c - cosθ c ,
g ( ψ ~ ) = c o s ψ ~ - 1 ψ ~ s i n ψ ~ ψ ~ , g ( θ ~ ) = c o s θ ~ - 1 θ ~ s i n θ ~ θ ~ , And meet lim ψ ~ → 0 g ( ψ ~ ) = 0 1 , lim θ ~ → 0 g ( θ ~ ) = 0 1 ;
Involved position filtering signal compensation error is
υ x υ y υ z = s ~ - ζ x e ~ - ζ y h ~ - ζ z - - - ( 13 )
In formula, position filtering compensates and dynamically measures ζx、ζyAnd ζzExpression formula is
ζ · x ζ · y ζ · z = rζ y - qζ z - rζ x qζ x - k x ζ x - k y ζ y - k z ζ z + s · c - s · c o e · c - e · c o h · c - h · c o + u r A B g ( ψ ~ ) C g ( θ ~ ) ζ u ζ ψ ζ θ - - - ( 14 )
And have ζx(0)=0, ζy(0)=0, ζz(0)=0;Sco、eco、hcoFor expectation position signalling, sc、ec、hcFor position control signal;Kx=ky=kz=2;
The attitude signal compensation dosage of involved wave filter output is:
υ ψ υ θ = ψ ~ - ζ ψ θ ~ - ζ θ - - - ( 15 )
In formula, filtering attitude compensates Expression formula and is:
ζ · ψ = - k ψ ζ ψ + r c - r c o c o s θ + ζ r cos θ - - - ( 16 )
And have ζψ(0)=0, ζθ(0)=0, ζr=0, ζq=0;Kψ=kθ=5.
CN201310553699.XA 2013-11-11 2013-11-11 Underwater robot three-dimensional path tracking and controlling method based on second order filter Active CN103576693B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201310553699.XA CN103576693B (en) 2013-11-11 2013-11-11 Underwater robot three-dimensional path tracking and controlling method based on second order filter

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201310553699.XA CN103576693B (en) 2013-11-11 2013-11-11 Underwater robot three-dimensional path tracking and controlling method based on second order filter

Publications (2)

Publication Number Publication Date
CN103576693A CN103576693A (en) 2014-02-12
CN103576693B true CN103576693B (en) 2016-06-29

Family

ID=50048695

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201310553699.XA Active CN103576693B (en) 2013-11-11 2013-11-11 Underwater robot three-dimensional path tracking and controlling method based on second order filter

Country Status (1)

Country Link
CN (1) CN103576693B (en)

Families Citing this family (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104483977B (en) * 2014-10-11 2016-11-30 国家电网公司 The dynamic surface control method without velocity feedback of a kind of steering wheel The Cloud Terrace and controller
CN105676674B (en) * 2016-04-20 2017-08-25 北京航空航天大学 Unmanned plane front-wheel steer control method based on instruction wave filter
CN105867382B (en) * 2016-05-12 2018-08-31 哈尔滨工程大学 A kind of ship power-positioning control system based on equivalent interference compensation
CN106773713B (en) * 2017-01-17 2020-02-07 北京航空航天大学 High-precision nonlinear path tracking control method for under-actuated marine vehicle
CN106950974B (en) * 2017-04-19 2020-07-28 哈尔滨工程大学 Three-dimensional path understanding and tracking control method for under-actuated autonomous underwater vehicle
CN108363400B (en) * 2018-01-29 2020-12-22 哈尔滨工程大学 Under-actuated AUV three-dimensional control area stabilization control method based on virtual anchoring
CN108762280B (en) * 2018-04-12 2021-09-28 哈尔滨工程大学 UUV (unmanned underwater vehicle) remote navigation path planning method based on energy consumption optimization and considering ocean circulation influence
CN111290414A (en) * 2018-12-10 2020-06-16 中国科学院沈阳自动化研究所 Underwater equipment control method and device based on attitude control
CN109693774B (en) * 2018-12-29 2020-11-03 中国科学院声学研究所 Method and system for controlling track of underwater vehicle
CN109634308B (en) * 2019-01-16 2020-07-07 中国海洋大学 Speed model assisted underwater intelligent navigation method based on dynamics
CN110427040B (en) * 2019-07-16 2022-07-15 哈尔滨工程大学 Depth backstepping control method of under-actuated cable-free underwater robot based on dynamic surface sliding mode
CN111623777B (en) * 2020-05-12 2021-10-15 清华大学 Contour line tracking method based on field intensity information
CN111522351B (en) * 2020-05-15 2021-05-18 中国海洋大学 Three-dimensional formation and obstacle avoidance method for underwater robot
CN112631277B (en) * 2020-12-08 2022-01-18 中山大学 Balance control method and system for four-legged robot standing posture conversion
CN112527018B (en) * 2020-12-26 2023-02-07 九江职业技术学院 Three-dimensional stabilization control method for under-actuated autonomous underwater vehicle
CN112859853B (en) * 2021-01-08 2022-07-12 东南大学 Intelligent harvesting robot path control method considering time delay and environmental constraints
CN117369481B (en) * 2023-12-05 2024-02-20 南京邮电大学 Unmanned underwater vehicle obstacle avoidance tracking control method under condition limitation

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101825903A (en) * 2010-04-29 2010-09-08 哈尔滨工程大学 Water surface control method for remotely controlling underwater robot
CN102385316A (en) * 2011-09-16 2012-03-21 哈尔滨工程大学 Deepening controlling method of underactuated automatic underwater vehicle based on neural network back stepping method
CN102722177A (en) * 2012-06-27 2012-10-10 哈尔滨工程大学 Autonomous underwater vehicle (AUV) three-dimensional straight path tracking control method with PID (Piping and Instruments Diagram) feedback gain
CN102768539A (en) * 2012-06-26 2012-11-07 哈尔滨工程大学 AUV (autonomous underwater vehicle) three-dimension curve path tracking control method based on iteration

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH0776680B2 (en) * 1991-04-17 1995-08-16 防衛庁技術研究本部長 Control method for twin-steering vehicle
US20060058931A1 (en) * 2004-09-15 2006-03-16 Honeywell International Inc. Collision avoidance involving radar feedback

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101825903A (en) * 2010-04-29 2010-09-08 哈尔滨工程大学 Water surface control method for remotely controlling underwater robot
CN102385316A (en) * 2011-09-16 2012-03-21 哈尔滨工程大学 Deepening controlling method of underactuated automatic underwater vehicle based on neural network back stepping method
CN102768539A (en) * 2012-06-26 2012-11-07 哈尔滨工程大学 AUV (autonomous underwater vehicle) three-dimension curve path tracking control method based on iteration
CN102722177A (en) * 2012-06-27 2012-10-10 哈尔滨工程大学 Autonomous underwater vehicle (AUV) three-dimensional straight path tracking control method with PID (Piping and Instruments Diagram) feedback gain

Also Published As

Publication number Publication date
CN103576693A (en) 2014-02-12

Similar Documents

Publication Publication Date Title
CN103576693B (en) Underwater robot three-dimensional path tracking and controlling method based on second order filter
CN102768539B (en) AUV (autonomous underwater vehicle) three-dimension curve path tracking control method based on iteration
CN102722177B (en) Autonomous underwater vehicle (AUV) three-dimensional straight path tracking control method with PID (Piping and Instruments Diagram) feedback gain
CN105676641B (en) The design method of Nonlinear Robust Controller based on contragradience and sliding formwork control
Xiang et al. Smooth transition of AUV motion control: From fully-actuated to under-actuated configuration
CN107024863A (en) A kind of UUV Trajectory Tracking Control methods for avoiding differential from exploding
CN105929842A (en) Underactuated UUV plane trajectory tracking control method based on dynamic speed adjustment
CN102343985B (en) Satellite time optimal posture maneuvering method with reaction flywheel
CN104950898B (en) A kind of full rank non-singular terminal Sliding Mode Attitude control method of reentry vehicle
CN108008720A (en) The fuzzy sliding mode Trajectory Tracking Control and method of a kind of wheeled mobile robot
CN103576689B (en) A kind of spacecrafts rendezvous six degree of freedom relation control method
CN103412491A (en) Method for controlling index time-varying slide mode of flexible spacecraft characteristic shaft attitude maneuver
CN107168312A (en) A kind of space tracking tracking and controlling method of compensation UUV kinematics and dynamic disturbance
CN105159306A (en) Four-rotor aircraft sliding-mode control method based on global stability
CN109634307A (en) A kind of compound Track In Track control method of UAV navigation
CN107807657B (en) Flexible spacecraft attitude self-adaptive control method based on path planning
CN105425812B (en) Unmanned aerial vehicle automatic landing trajectory control method based on dual models
CN109857100B (en) Composite track tracking control algorithm based on inversion method and fast terminal sliding mode
CN104950899A (en) Method for controlling postures of aircraft converged at fixed time
CN106292294A (en) Shipborne UAV auto landing on deck based on model reference self-adapting control controls device
CN105652880B (en) Non-linear anti-saturation for the big spatial domain flight of aircraft highly instructs generation method
CN111857165B (en) Trajectory tracking control method of underwater vehicle
CN106054884A (en) L1 adaptive ship power positioning double-loop control system based on neural network
CN115639830B (en) Air-ground intelligent agent cooperative formation control system and formation control method thereof
Gu et al. Trajectory planning and tracking control of a ground mobile robot: A reconstruction approach towards space vehicle

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
SE01 Entry into force of request for substantive examination
SE01 Entry into force of request for substantive examination
C14 Grant of patent or utility model
GR01 Patent grant