2011美国数学建模竞赛A题优秀获奖论文.pdf
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1、A MathematicalModel in EvaluatingtheSnowboardHalf-pipeDesignTeam#9253February 14,20111Team#9253Page 2 of 19Contents1Introduction31.1Backgrounds.31.2Problem Restatement.42Notationsand Assumptions52.1Basic Terms and Variables.52.2ModelAssumptions.63The Model73.1Sliding Route.73.2ModelEquationsand Demo
2、nstration.74Discussionof the ModelResult114.1ConstraintConditions.114.2Vertical Air.124.3Twists:the MaximumAngle of Rotation.164.4Applicationin Practice.175ModelEvaluating17References19Team#9253Page 3 of 191Introduction1.1BackgroundsEven never paid any attentionto the snowboardsport before,people wo
3、uldbeshocked by the extreme attractive?ip tricks and spin maneuversperformedbyShaun White at the?rst sight.As one of the most famous talented snowboarderand WinterOlympichalf-pipechampions,Shaun Whiteis a legendin snow-board historynot just in name only.Apartfrom the superiornaturalgifts,per-fect te
4、chniquesand the large quantityof exercises,are there any else elementsmake Shaun White among the top snowboarders?“It sa mix of factors.Ultimately,though,White ssoaringperfor-mances all come down to raw energy.”replied by Louis Bloom?eld1Seeing from the angle of physics,the main laws and factors can
5、 be summa-rized as follows:?NewtonsLawsof Motion2:When snowboardersslidingon the half-pipe,these are the basic principlesthey are satis?ed with.?Gravity:The gravityacting on the centre of mass of snowboardershelps toslide downthe slope as well as to drag them back into groundafter takingoff from the
6、 lip.?Friction:There are two essential kinds of resistingforces,kineticfrictionand air resistance acting on snowboardsand players in the motion.Snow-boarders can wax the board to decrease the force of friction,while in othercondition,the frictioncan be used to help snowboardersto speed down.?Energy:
7、The conservationof energy allows players to store potentialgrav-ity energy by adjust ramp in height accordingto differentsituations.Analyzingin detail,we foundthat these factors can all be in?uencedby theshape design of a half-pipeif ignoringthe effects by qualitiesof snowboardandsnowboarders.When w
8、e start to search for informationand data,we foundthatthe originallyhalf-pipeswere simplya half sliced large pipe.Since the1980s,half-pipeshave had extendedwith a?at ground(the?at bottom)addedbetween the quarter-pipes3.Team#9253Page 4 of 19Then,there appearmanydesigns of half-pipessuch as the mini-p
9、ipe,theverthalf-pipeand super-pipe.Today s half-pipesused in snowboardingaregenerallymade in the shape of as the FederationInternationalede Ski(FIS)recommended4.Althoughit is widelybelievedthat the characterof a half pipe mainlyde-pends on the relationshipbetweenfour qualities:the transitionradiusan
10、d theheightof vert,the widthof?at bottomand slope angle of the pipe,we couldhardly?nd well organizedphysicaland mathematicalanalysis or comparisonson the differentshape of half-pipedesigns.1.2ProblemRestatementWith a?rst observationon the most popularhalf-pipesused nowadays,we pre-sume that there ex
11、its some connectionsamongthe designof a half-pipe,theverticalair,which refers to the maximumverticaldistance above the edge of thehalf-pipe,and the maximumturns can be achieved by a skilledsnowboarderinthe air.Actually,the theoreticaldemonstrationis rather simple.As every one cansee,the fact is obvi
12、ousto be foundupon?rst observationthat the highera s-nowboarderjump,the more air time he willgain to accomplishhis moves inthe air.Therefore,once we take the movementprocess startingfrom the time asnowboarderset out from the drop-inramp to the momenthe/her?ying out ofthe half-pipeat the?st time as a
13、 whole,the?yingout speed,which has a crucialin?uenceon the verticalair one athletecould achieve,dependingon the me-chanicalenergy one had in the initialstate and the heat energy one lost duringthe sliding,accordingto the law of the conservationof energy.Our objective is to optimizethe shape of the h
14、alf-pipeby discussingand an-alyzingthe?nal results proposedby our modelwithspeci?c constraints.We llbegin our mathematicalanalysis and developa detailedmodelto simulatetheslidingprocess in half-pipeusing physicaland mathematicaltheoryin the fol-lowingsections.Team#9253Page 5 of 19Figure 1:The Cross-
15、Section of Half-pipe2Notationsand Assumptions2.1Basic Terms and VariablesFirst,wed like to explainsome basic terms whichare widelyused to describethe shape of the half-pipein our paper on(?g.1).And the followingpart de?nes importantvariables which are widelyused inthis paper while some additionalpar
16、ametersonly con?ned to particularsectionsmay be de?ned later.the slope angle of a half-pipe the intersectionangle of the directionof v0and X-axisthe intersectionangle of the normaldirectionand Y-axis when slidingin thegroovel the length of a half-pipeh the height of the vertR the radius of the piped
17、 the widthof the?at bottomof the pipeHthe height from the?oor to crown of a pipev0the entry velocityof the snowboarderTeam#9253Page 6 of 19v2the projectionof v0to the Y-Z planevBthe instantvelocityof point BvCthe instantvelocityof point CvDthe taking-offvelocityfthe force of frictionfrthe projection
18、of f to the Y-Z planeNthe normalforce acting on the snowboarder the coef?cient of frictionwfthe workof frictionforce in slidingvmaxthe maximumvelocityin the process of slidingG the gravitationalaccelerationacting on snowboardersGmaxThe maximumgravitationalacceleration that snowboarderscan bear witha
19、 good control of balance2.2ModelAssumptionsAs our observationis not focusingon the snowboardersbut concentratingonanalyzingthe characteristicsof the half-pipe,we considerthe snowboardersata giventechnicallevel to simplifyour model.The followinglist containsthespeci?c informationand statement of the
20、technicallevel.?The weightof the snowboarder/boardis uniformdistributed,meanwhilethe board and playerare alwaysconglutinatetogetherin the simulatedprocess.?If ignoringthe twistand positionchanges in centre of gravity(COG),wecan assume the two as one mass point,whichcoincides withthe COG.?Snowboarder
21、senter a U-shapedpipe witha given speed v0as long as theentry ramp is well designed.Besides,in our analysis,we also made several key assumptionson half-pipesfor simplicity:Team#9253Page 7 of 19?The half-pipeis coveredwith?rmsnowand the surface of the pipeisplane.?Generallythe snowboardersstart from
22、the same height relative to the pipein competition.At this point,all their energy is in the form of gravitationalpotentialenergy.?The effects of environmentalconditionssuch as the geographylocationand climate whichcan not be in?uencedby the shape design of the half-pipe are out of our consideration.
23、?we assume that the half-pipeis set in a vacuumspace.by neglectingtheminorcontributionsof the air drag either.?We willonlyinvestigatethe semi-circularconcave half-pipein our mod-el.The purposebuiltramphalf-pipewillbe discussed in the discussionsection of our paper if time allows.3The Model3.1Sliding
24、RouteBased on the analysis on how slide skills on the“U”course affects taking-offheightby XiaojianTian and WeiguangChen from Dept.of PE in HarbinPhys-ical EducationInstitute5,we assume that the snowboarderenteringinto thegroove at a speed of v0and slidingwitha given route(?g.2),whichis widelybelieve
25、dto lead to minimumenergy loss,in the pipe before the?rst taking-offhappens.In addition,consideringthe loss in energyand the deteriorationinvigor in the followingtime,the air height and twists afterwardsis generallyde-creasing every time the player?ies,we will demonstratethe process from whenthe sno
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