版權(quán)說明:本文檔由用戶提供并上傳,收益歸屬內(nèi)容提供方,若內(nèi)容存在侵權(quán),請進(jìn)行舉報或認(rèn)領(lǐng)
文檔簡介
ElectricPowerIndustryStandardofthePeople'sRepublicofChina
ToreplaceDL/T5045-1995
PDL/T5045-2006
CodeforDesignofAshandSlag
DammingofFossilFuel
PowerPlants
火力發(fā)電廠灰渣筑壩設(shè)計(jì)規(guī)范
(英文版)
ISsuevate:May6,2006ImplementationDate:October1,2006
IssuedbytheNationalDevelopmentandReformCommissionofthePeople'sRepublicofChina
ICS29.100.01
P61
RecordNo.J525—2006
ElectricPowerIndustryStandardofthePeople'sF
PDL/T5045—2006
ToreplaceDL/T5045—1995
CodeforDesignofAshandSlag
DammingofFossilFuel
PowerPlants
IssueDate:May6,2006ImplementationDate:October1,2006
IssuedbytheNationalDevelopmentandReformCommissionofthePeople'sRepublicofChina
ElectricPowerIndustryStandardofthePeople'sRepublicofChina
PDL/T5045-2006
ToreplaceDL/T5045-1995
CodeforDesignofAshandSlag
DammingofFossilFuel
PowerPlants
Translationsponsoredby:ChinaElectricPowerPlanning&
EngineeringAssociation
Translatedby:SUNTHERConsultingCo.,Ltd.
Reviewedby:NortheastElectricPowerDesignInstitute
Ⅲ
DL/T5045—2006
Foreword
ThiscodeisarevisiontoDL/T5045—1995TechnicalRulesfor
DesignofAshandSlagDammingofFossilFuelPowerPlantsbased
ontherequirementoftheNoticeonIssuanceofPlanfor
SupplementingElectricPowerIndustryStandard2003issuedbytheGeneralOfficeofNationalDevelopmentandReformCommission
(FGBGY[2003]873)andisrenamedtheCodeforDesignofAshand
SlagDammingofFossilFuelPowerPlants.
Thiscodehasplayedapositiveroleinacceleratingthepowerconstructionandenhancingthedesignlevelandtechnicalstandardofashandslagdammingsinceitspromulgationin1995.Asnewrequirementshavecomeoutforthedesignofashandslagdamminginfossilfuelpowerplantswiththedeepeningofreformsandtechnicalprogressinpowerindustry,thiscodeistoberevisedaccordingly.
Themainrevisionsandmodificationsareasfollows:
——Followingareaddedinaccordancewiththerequirementsofrelevantcodes:
—Chapter2“NormativeReferences”.
——Section6.3“SeepageDrainageFacilitiesforSubdam”.
—Section6.4“AshandSlagDammingbyHydraulicFilling”.
——Clause6.5.3“Vibro-stonePilingMethodUsedinAsh-slagDamBaseTreatment”.
——Chapter10“RequirementsforConstructionQualityControl”.——Someotherclausesaremodified,perfectedandrefined.
—Therelevantcontentsinthiscodeareadjustedcommensurate
IV
DL/T5045—2006
withtherevisionstotheconcerneddesigncodes.
ThiscodereplacesDL/T5045—1995uponimplementation.
AppendixAtothiscodeisnormative,AppendixBisinformativeThiscodeisinitiatedbyChinaElectricityCouncil.
ThiscodeismanagedandinterpretedsolelybytheChinaElectricPowerPlanningandEngineeringStandardizationTechnicalCommittee.
ThiscodeisdraftedbytheNortheastElectricPowerDesignInstitute.
TheparticipantsindraftingthiscodeareShandongElectricPowerEngineeringConsultingInstitute,ShaanxiElectricPowerDesignInstitute,andCentralSouthernChinaElectricPowerDesignInstitute.
TheleadingauthorsofthiscodeareChenDezhi,WeiXiaodong,SunWen,RenYanchao,LiuJingyan,LiJingsheng,CuiKegang,QiuChenglong,JiChaochou,TongWeipeng,HuaZhongnan,GuoFengqi.
ThiscodeistranslatedbySUNTHERTranslation&SolutionsundertheauthorityofChinaElectricPowerPlanning&EngineeringAssociation.
I
DL/T5045—2006
Contents
Foreword Ⅲ
1Scope
1
2NormativeReferences
2
3TermsandDefinitions
3
4BasicDesignProvisions
6
4.1GeneralProvisions
6
4.2DesignCriterionandPhases
8
4.3BasicInformation
13
5PrimaryDam
15
5.1AxisofPrimaryDam
15
5.2HeightofPrimaryDam
15
5.3TypeSelectionofDam
17
5.4ConstructionMaterial
19
5.5FillingofDamBodies
21
5.6ConstructionofDamTop
23
5.7StructureofDamSlope
24
5.8SeepageDrainageFacilitiesofDamBodies
26
5.9ImpermeableMedia
28
5.10InvertedFilter
30
5.11JunctionsofDamBodywithGroundBase,BankSlopeand
BurialPipes
32
5.12TreatmentofDamFoundation
34
6Subdam
37
6.1SubdamHeightening
37
6.2MaterialandStructureofSubdams
38
Ⅱ
DL/T5045—2006
6.3SeepageDrainageFacilitiesforSubdam
40
6.4HydraulicFillingDammingofAshandSlag
40
6.5FoundationofSubdam
47
7PhreaticLinesofDamBodies
54
7.1ControlofPhreaticLineofDamBodies
54
7.2SeepageCalculationofDamBodies
54
8CalculationandAnalysisofDamBodies
56
8.1GeneralProvisions
56
8.2CalculationofAnti-slidingStabilityofDamBodies
57
8.3StaticandDynamicAnalysisforDamBodies
59
9DamSafetyMonitoringSystem
61
9.1GeneralProvisions
61
9.2Phreatic-lineMonitoringSystem
61
9.3DisplacementMonitoringSystem
62
10RequirementsforConstructionQualityControl
63
10.1GeneralRequirements
63
10.2RequirementsforFilling
65
10.3RequirementsforQualityControl
68
11RequirementsforOperationManagement
70
11.1GeneralProvisions
70
11.2EngineeringManagementofAshYard
70
11.3MonitoringofDamBodiesandPhreaticLines
71
11.4MonitoringofAshandSlagDischarging
72
11.5DrainageSystemMonitoring
73
AppendixA(Normative)MethodsforMeasuringShearing
StrengthIndexandSelectionThereof……75
AppendixB(Informative)CalculationPrincipleandRequired
TestDataforStaticandDynamic
AnalysisbyUsingGross
StressMethod
77
1
DL/T5045—2006
1Scope
Thiscodespecifiestheprinciplesandcriteriathatshallbefollowedwhenusingashandslagdammingtechniquetodesigndambodiesinwet-typeashstorageyardsofcoal-firedpowerplants.
Thiscodeisapplicablenotonlytothedesignofashdamsofvalleyashyardsthatemployhydraulicashhandlingtechnique,butalsotothedesignofashembankmentsinashyardsonthebeachesofrivers,lakesandsea(hereinafterreferredtoasbeachashyard)andashyardsonplains.Itisnotapplicabletothedesignofdry-typeashstorageyards.
Theprovisionsspecifiedhereinforashdamsarealsoapplicabletoashembankments,unlessspecificallyprescribedotherwise.
2
DL/T5045—2006
2NormativeReferences
Thefollowingnormativedocumentscontainprovisionswhich,throughreferenceinthistext,constituteprovisionsofthisstandard.Forthedatedreferences,alltheirsubsequentamendments(excludingerrorscorrected)orrevisededitionsshallnotapply.However,partieswhohavereachedagreementsbasedonthiscodeareencouragedtoinvestigatethepossibilityofusingthemostrecenteditionsofthesereferences.Forundatedreferences,theirlatesteditionsshallapplytothiscode.
GB18599StandardforPollutionControlontheStorageandDisposalSiteforGeneralIndustrialSolidWastes
GB50286CodeforDesignofLeveeProject
GB50290TechnicalStandardforApplicationsofGeosynthetics
DL5073SpecificationsforSeismicDesignofHydraulicStructures
DL/T5129SpecificationsforRolledEarth-RockfillDamConstruction
JTJ213CodeofHydrologyforSeaHarbour
JTJ298CodeofDesignandConstructionofBreakwaters
SDJ280TechnicalSpecificationsforElectricPowerProjectConstructionandAcceptance(HydraulicStructures)
SL60TechnicalSpecificationsforSafetySupervisionofEarth-RockFillDams
SL237SpecificationofSoilTest
SL274DesignCodeforRolledEarth-RockFillDams
3
DL/T5045—2006
3TermsandDefinitions
Thefollowingtermsanddefinitionsapplytothiscode.
3.0.1
Ashdam
Hydraulicstructureusedtostoreashandretainwaterinvalleyashyard.
3.0.2
Ashembankment
Hydraulic(marine)structureusedtostoreashandretainwaterinplainandbeachashyards.
3.0.3
Dambody
Entireashdamconsistingofaprimarydam,subdamsanddepositedashandslag.
3.0.4
Primarydam
Initialdambodywhenashdambeingconstructedbystages.3.0.5
Subdam
Dambodyheightenedontopofdepositedashondamfrontwhenashdambeingconstructedbystages.
3.0.6
Ashandslag
Mixtureofpulverizedcoalashcollectedbyprecipitatorsandslagdischargedfrombottomofboilersinacoal-firedpowerplants.
4
DL/T5045—2006
3.0.7
Ashandslagdamming
Aby-stagedammingtechniquetograduallyheightendambodiesbybuildingsubdamsondepositedashondamfrontwithearth-rockmaterialorash-slagmaterialinashyard.
3.0.8
Ashandslagfilling-siltationdamming
Ashandslagdammingbyhydraulicfilling.
3.0.9
Terminaldamheight
Maximumpossibledamheightdeterminedbytakingintoaccountnaturaltopographyandgeologicalconditionsofashstorageyard,requirementsbypowerplantsandotherfactors.
3.0.10
Aggregatecapacity
Totalvolumeofash,slagandfloodthatcanbeaccommodatedbyashyardwithterminaldamheight.
3.0.11
Lengthofdrybank
Horizontaldistancefromthepointwherewatersurfacecrossesashsurfacetothepointwhereashsurfacecrossesupstreamslopeofdamonthecross-sectionperpendiculartodamaxis.
3.0.12
Limitedlengthofdrybank
Thelengthofdrybankthatcanbemaintainedtorestrictheightofphreaticlineandensuresafetyofdambodyduringoperation.
3.0.13
Ashstorageelevation
Elevationwheresurfaceofashdepositedinashstorageyard
5
DL/T5045—2006
joinsupstreamslopeofdam.
3.0.14
Limitedashstorageelevation
Maximumashstorageelevationpermittedbydamtopelevationineachdesignstage.
3.0.15
Subdamheight
Elevationdifferencebetweentwocontiguousdamtops3.0.16
Subdamplacementheight
Heightofsubdambuiltondepositedashsurface.
3.0.17
Damextraheight
Heightfromlimitedashstorageelevationtoashdamtop.3.0.18
Freeboard
Heightfromfloodstorageleveltoashdamtopunderlimitedashstorageelevationcondition.
6
DL/T5045—2006
4BasicDesignProvisions
4.1GeneralProvisions
4.1.1Theenvironmentalprotectionofashstorageyardsshallmeetthefollowingrequirements:
1Theashstorageyardsshallbeprovidedwithsafeandstabledambodiesthatcomplywithrelevantdesignstandardstopreventash,slagandashwaterfromflowingaway.
2Theashstorageyardsshallbeequippedwithreliabledrainagesystems,withdrainagestructuresbeinglocatedatadistancesufficienttoclarifyashwaterandabletorecycletheclarifiedashwater.
3Duringtheoperationofashstorageyards,thelimitedlengthofdrybankshallbemaintainedtoensurethesafetyofdambodies,whiletheashsurfaceofdrybankshallbewetted,whennecessary,bydivertingashwatertheretoorsprinklingwatertopreventdustpollution.
4Theashstorageyardsshallbecoveredwithsoilandreclaimedpromptlyoncetheyarefilledup.
5Whereanimpermeablelayerisnecessaryatthebottomofashstorageyardasrequiredbyenvironmentalimpactreport,itcanbeconstructedofrolledclayorgeomembrane.Verticalanti-seepagemeasurescanbetakenwheregeologicalconditionsarepermissible.
6ThepollutioncontrolcriteriaofashstorageyardsshallcomplywithGB18599.
4.1.2Ashandslagdammingshallmeetthefollowingrequirements:
1Thedambodiesshallmeettherequirementsofdesigncodeintermsofstability.
7
DL/T5045—2006
2Thedambodiesshallbeequippedwitheffectiveseepagedrainagefacilitiestolowerphreaticlinesandacceleratesolidificationofashandslag.
3Ashdischargingpipesshallbearrangedreasonablyindamfronttodischargeashevenlyanddepositcoarseashandslag.
4Theashstorageyardsshallbeequippedwithreliabledrainagesystemstodischargeashwaterandfloodpromptlyandformasufficientlengthofdrybank.
5Perfectandefficientorganizationsshallbesetuptoensuresatisfactoryconstructionqualityandsafeoperationthroughprofessionalmanagement.
4.1.3Inthedesignofashdams,typesofdamandseepagedischargefacilitiesshallbeselectedaccordingtoconstructionmaterial,methodandenvironmentalprotectionrequirements,anddamseepage&anti-slidingstabilitycalculationsandstaticanddynamicanalysisbeconductedforvariousoptionsbytakingintoaccountfactorssuchaslimitedashstorageelevation,lengthofdrybank,flood,earthquakeandetc.soastodetermineoptimalcrosssectionofdambodyandlimitedlengthofdrybank.
4.1.4Thestabilityofdownstreamdamslopesshallbecalculated
withfollowingoperatingconditions:
1Normaloperatingconditions.
1)Steadyseepageoccurringwithlimitedashstorageelevationandlimitedlengthofdrybank;
2)Steadyornon-steadyseepageoccurringwithlimitedashstorageelevationandlimitedlengthofdrybankincaseofdesignflood.
2Abnormaloperatingconditions.
1)Steadyornon-steadyseepageoccurringwithlimitedash
8
DL/T5045—2006
storageelevationandlimitedlengthofdrybankincaseofcheckflood;
2)Occurrenceofearthquakewithlimitedashstorageelevationandlimitedlengthofdrybank.
4.2DesignCriterionandPhases
4.2.1Thecapacityofashstorageyardsshallmeetthefollowingstipulations:
1Inplanningphase,ashstorageyardshallbeabletoholdashandslaggeneratedoveraperiodofabout20aoperationofpowerplantsascalculatedbasedonitsplannedcapacity,thusmeetingtherequirementsforpowerplantsestablishment.
2Indesignphase,designersshalldeterminetheinitiallandacquisitionforashstorageyardwhichshallbeabletoholdashandslaggeneratedoveraperiodofabout10aofoperationascalculatedbasedonthedesignedcapacityandcoaltypeofpowerplantsforthisphase.
3Incaseofashandslagdamming,thecapacityformedbyprimarydamshallbeabletoholdashandslaggeneratedoveraperiodofatleastthreeyearsascalculatedbasedonthedesignedcapacityandcoaltypeofpowerplantsforthisphase.Thecapacityformedbyeachsubdamaddedshouldbeabletostoreashandslagactuallydischargedtheretooveraperiodofabout3a.
4.2.2TheaggregatecapacityofashstorageyardshallbecalculatedperFormula(4.2.2)asbelow:
V=Ver+W=(G-U)T/(pη)+W(4.2.2)
Where:
V—aggregatecapacityofashstorageyard,m3;
Ve—effectivecapacityofashstorageyard,m3;
W—pondageofashstorageyard,m3;
9
DL/T5045—2006
G—annualamountofashandslagcalculatedbasedondesigntypeofcoal,kg/a;
U—annual(average)amountofashandslagactuallyreclaimed,kg/a;
T—servicelifeofashstorageyard,a;
p—drydensityofashandslag,basedonactualdatameasuredduringtheoperationofashstorageyard(1000kg/m3ifnoactualdataisavailable),kg/m3;
η—effectivecapacityutilizationfactorofashstorageyard
4.2.3Thedesigncriterionofashdamsinvalleyashstorageyardsshallbedeterminedinaccordancewithfollowingrequirementsbasedonaggregatecapacityandterminaldamheightaswellasdegreeofhazardtoneighboringanddownstreamareasaftercollapse
1DesigncriterionforashandslagdamminginvalleyashyardsshallcomplywithTable4.2.3.
2Wheretherearemajorindustrialandminingenterprisesordenselypopulatedareasatthedownstream,designcriteriaforashdamsmayberaisedbyoneclassthroughdemonstration.
3Whenterminaldamheightisdifferentfromaggregatecapacityinclass,thehigherclassshallprevail.Ifthedifferenceislargerthanoneclass,theclassbelowthehigheroneshallbeadopted.
4ThedamtopofClassIashdamshallhaveatleast1.5mextraheight;andthoseofClassIⅡandIIashdams1.0m-1.5mextraheight.
5Theterminaldamheightisgenerallydeterminedaccordingtothenaturaltopographyandgeologicalconditionsofashstorageyard.Whereconditionsarefavorable,theterminaldamheightmaybedeterminedbasedonashstoragerequiredfor30adesignservicelifeoffuel-firedpowerplants.
DL/T5045-2006
石
Table4.2.3Designcriterionforashandslagdamminginvalleyashyards
DesignClass
IndexforClassification
RecurrenceInterval
ofFlood
a
Freeboard
m
Anti-slidingSafetyFactor
AggregateCapacity,V
×10*m3
Terminal
Dam
Height,H
m
DownstreamSlope
UpstreamSlope
DesignConditio
n
Check
Condition
DesignCondition
Check
Condition
NormalOperatingCondition
AbnormalOperatingCondition
NormalOperatingCondition
AbnormalOperatingCondition
I
V>1
H>70
100
500
1.5
0.7
1.30
1.10
1.15
1.00
0.I<V≤1
50<H≤70
50
200
1.0
0.5
1.25
1.05
1.15
1.00
II
V≤0.1
30<H≤50
30
100
0.7
0.4
1.20
1.05
1.45
1.00
11
DL/T5045—2006
6Incasetheterminaldamheightisfaroverdamheightdesignedforthisphase,ifthedesignclassofashdamistobedeterminedbasedonthedesigndamheightandcapacityforeachconstructionphase,anoverallplanningshallbeconductedfrominitialphaseuptotheterminaldamheight,soastoenabletheashdambuiltineachphasetomeetthesubsequenthighersecurityrequirements.
4.2.4Thedesigncriteriaforashembankmentsinbeachashyardsshallbedeterminedbasedontheircapacityinaccordancewiththefollowingrequirements,andbeinharmonywiththelocaldesigncriterionofleveeprojects.
1ThedesigncriteriaforashembankmentsbuiltwithashandslaginbeachashyardsshallbecompliantwithTable4.2.4.
2Theashembankmentsorwavewallsinbeachashyardsshallhaveatleast1.0mextraheight.
3Forseabeachashyards,theaccumulatedfrequencyofdesignwaveheightcanbeadoptedaccordingtothefollowing:
1)13%fordeterminationofelevationofembankmenttop;
2)13%fordeterminationofstabilityofslopearmorandbedarmor;
3)1%fordeterminationofstrengthandstabilityof
parapetsandquadrelsatembankmenttop.
4ThedesignofbeachashyardsshallcomplywiththerelevantstipulationsinJTJ213andJTJ298.
4.2.5Thedesigncriterionofashembankmentsinplainashyards
canbeasspecifiedin4.2.4.
4.2.6Thedesignofashandslagdammingshallincludeoverallplanning,designofprimarydamanddesignofsubdamheightening,andshallmeetthefollowingrequirements.
DL/T5045--2006
二
Table4.2.4Designcriteriaforashembankmentsbuiltwithashandslaginbeachashyards
DesignClass
AggregateCapacityY×10'm
RecurrenceInterva
ofDesign
High-water-level
OutsideEmbankment
a
RecurrenceInterval
ofStormyWaves
OutsideEmbankment
a
RecurrenceInterval
ofFoodInside
Embankment
a
SafetyHeightAddedonEmbankment
(orWaveWall)Top
m
Anti-slidingSafetyFactor
OuterSideofEmbankment
InnerSideofEmbankment
DownstreamSlope
UpstreamSlope
DesignCondition
CheckCondition
DesignCondition
CheckCondition
DesignCondition
CheckCondition
DesignCondition
CheckCondition
DesignCondition
CheckCondition
NormalOperatingCondition
AbnormaOperatingCondition
Norma
OperatingCondition
AbnormalOperatingCondition
IⅡ
V>0.1
50
100
50
50
50
200
0.4
0.0
1.0
0.5
1.25
1.05
1.15
1.00
Ⅲ
V≤0.1
30
100
50
50
30
100
0.4
0.0
0.7
0.4
1.20
1.05
1.15
1.00
13
DL/T5045—2006
1Intheoverallplanningofvalleyashstorageyard,ifnaturaltopographyandgeologicalconditionsarefavorableatplantsite,thedesignersshoulddeterminetheaggregatecapacityandterminaldamheightbasedontheashstoragerequiredfor30adesignservicelifeoffossilfuelpowergeneratingunits,andplanthesequence,scaleandlandacquisitionforeachconstructionstageaccordingly.Thedesignersshoulddeterminetheheightofprimarydamandwayofby-stageheighteningthroughtechnicalandeconomicalcomparison;andarrangetheseepagedischargesystem,drainagesystem,ash-waterrecyclingsystemandotherfacilitiesreasonably.Thesafetyofdrainagepipinginashstorageyardsshouldmeettherequirementswithterminalelevationofashstorage.
2Duringthedesignofprimarydam,thedesignersshoulddeterminethetypeandheightofprimarydamanddesignthedambodyandbaseinconjunctionwiththeplanningofsubdamheightening.
3Thesubdamheighteningshallbedesignedbystagesonbasisofgoodunderstandingofthecharacteristicsofashandslagtobeusedforsubdambase.Ifthesubdamisheightenedsuchthatitishigherthanthedesignheightofthefirst-stagesubdam,thedesignshallberecheckedbeforestartingnextheightening.
4.3BasicInformation
4.3.1Thesurveyandtestinvolvedwithprimarydamshallinclude,amongothers,topographicsurveyandsurveysinrespectofhydrometeorology,engineeringgeologyandhydrogeology,constructionmaterialinvestigationandtestsandinvestigationonconstructionconditions.
4.3.2Thedesignersshallbeacquaintedwiththebasicdesign
14
DL/T5045—2006
informationoforiginaldambodyanditsconstructionandoperationwhendesigningsubdams,andshouldsurveyandtestthegroundbase(thedepositedashandslag)ofsubdamtobeconstructedinthisphaseandtheconstructionmaterialstobeused,andinvestigateconstructionconditionsaccordingly.
4.3.3Thesurveyextentandthebasicinformationprovidedineachstageofsurveyshallcomplywithsurvey-relatedspecificationsandcodes.
15
DL/T5045—2006
5PrimaryDam
5.1AxisofPrimaryDam
5.1.1Theaxisofvalleyashyardsshallbedeterminedaccordingtothetopographyandgeologicalconditionsofdamsitesthroughtechnicalandeconomicalcomparisonbytakingintoaccountsuchfactorsassubdamheighteninginthefuture,drainagesystem,constructionconditions,andenvironmentalimpact.
5.1.2Theaxisofcofferdaminbeachorplainashyardsshallbedeterminedthroughtechnicalandeconomicalcomparisonintermsofenclosedareaandcofferdamheightbytakingintoaccountsuchfactorsasservicelifeofashstorageyard,topography,geology,waterlevelandstormywavesoftide(flood),occupiedland,subdamheighteninginthefuture,constructionconditionsandenvironmental
impact.
5.1.3Theaxisofcofferdamshallbeconnectedbycurvesatturningpoints,withtheradiusofcircularcurvesforbeachashyardsbeingnotlessthan30m;andthatforplainashyardsnotlessthan15m.
5.2HeightofPrimaryDam
5.2.1TheelevationofthetopofprimarydamsinvalleyashyardscanbecalculatedbyFormula(5.2.1-1)-Formula(5.2.1-3),whicheverislarger:
E=e+h?+A?(5.2.1-1)
E=e+h?+A?(5.2.1-2)
E=e+△?(5.2.1-3)
16
DL/T5045—2006
Where:
E—elevationofdamtop,m;
e—limitedashstorageelevationofashyard,thatis,theelevationofvolumeinashyardrequiredtostorethedesignamountofashandslagofpowerplants(takingintoaccountcapacityutilizationfactor),m;
h?—designdepthoffloodstorage,thatis,thedepthoccupiedbydesignfloodabovethelimitedashstorageelevationafterdesignfloodcontrolcalculation,m;
h?—checkdepthoffloodstorage,thatis,thedepthoccupiedbycheckfloodabovethelimitedashstorageelevationaftercheckfloodcontrolcalculation,m;
4?—designvalueoffreeboard(selectedfromTable4.2.3),m;A?—checkvalueoffreeboard(selectedfromTable4.2.3),m;A?—damextraheight,m.
5.2.2Theheightofprimarydamsinvalleyashyardscanbegenerallycalculatedanddeterminedbasedontheservicelifeofashstorageyard.Wherethedesignfloodvolumeofashstorageyardisverylargeandthetopographyisrelativelyspecial,theheightshouldbedeterminedthroughtechnicalandeconomicalcomparisoninthedesignphase.
5.2.3Theelevationofembankmenttopinbeachashyardsshallbecalculatedrespectivelyontheinnersideandoutersideofembankment,andthendeterminedaftercoordination
Withashstorageconditionsatinnerside,theelevationofembankmenttopcanbedeterminedasspecifiedin5.2.1.
Withfloodprotectionconditionsatouterside,theelevationofembankmenttopcanbecalculatedbyFormula(5.2.3)below:
E=HWL+R+4(5.2.3)
17
DL/T5045—2006
Where:
E—elevationofembankmenttop,m;
HWL—design(check)highwaterlevel,m;
R—heightofwaverunupatdesign(check)highwaterlevel,m;
△—design(check)valueofsafetyheightaddedonembankmenttop(selectedfromTable4.2.4),m.
5.2.4TheelevationofembankmenttopinplainashyardscanbedeterminedbyFormula(5.2.1-3).
5.3TypeSelectionofDam
5.3.1Thetypeofdamshallbeselectedbytakingintoaccountthe
followingfactors.
1Category,nature,reserves,distribution,burialdepth,theexploitationandtransportationconditionsoflocalmaterialsavailableforconstructingthedam;
2Requirementsforreducingtheheightofphreaticlineandacceleratingthesolidificationofashandslagbysubdamheighteninginthefuture;
3Geologicalcondition,seismicfortificationintensityandotherconditions;
4Downstreamenvironmentalconditionsandenvironmentalprotectionrequirements;
5Constructionprogress,constructionsite,constructionmachineriesandtechnicallevelofconstruction;
6Totalworkquantity,constructionperiod,andtotalconstruction
cost.
5.3.2Thetypesofprimarydamcanbeselectedaccordingtothedifferenceofpermeabilitybetweenconstructionmaterialofdamandashandslagasfollows.
18
DL/T5045—2006
1Forhighlypermeabledams,thepermeabilitycoefficientofconstructionmaterialusedfordambodyshallbe50timesmorethanthatofashandslagormorethan1×10-2cm/s.
2Forwithlowlypermeabledams,thepermeabilitycoefficientofconstructionmaterialusedfordambodyshallbesimilartothatofashandslag.
3Forimpermeabledams,thepermeabilitycoefficientofconstructionmaterialusedfordambodyshallbe50timeslessthanthatofashandslag
溫馨提示
- 1. 本站所有資源如無特殊說明,都需要本地電腦安裝OFFICE2007和PDF閱讀器。圖紙軟件為CAD,CAXA,PROE,UG,SolidWorks等.壓縮文件請下載最新的WinRAR軟件解壓。
- 2. 本站的文檔不包含任何第三方提供的附件圖紙等,如果需要附件,請聯(lián)系上傳者。文件的所有權(quán)益歸上傳用戶所有。
- 3. 本站RAR壓縮包中若帶圖紙,網(wǎng)頁內(nèi)容里面會有圖紙預(yù)覽,若沒有圖紙預(yù)覽就沒有圖紙。
- 4. 未經(jīng)權(quán)益所有人同意不得將文件中的內(nèi)容挪作商業(yè)或盈利用途。
- 5. 人人文庫網(wǎng)僅提供信息存儲空間,僅對用戶上傳內(nèi)容的表現(xiàn)方式做保護(hù)處理,對用戶上傳分享的文檔內(nèi)容本身不做任何修改或編輯,并不能對任何下載內(nèi)容負(fù)責(zé)。
- 6. 下載文件中如有侵權(quán)或不適當(dāng)內(nèi)容,請與我們聯(lián)系,我們立即糾正。
- 7. 本站不保證下載資源的準(zhǔn)確性、安全性和完整性, 同時也不承擔(dān)用戶因使用這些下載資源對自己和他人造成任何形式的傷害或損失。
最新文檔
- 租客有老人小孩租房合同(2篇)
- 巜趙州橋 課件
- 西南林業(yè)大學(xué)《茶藝》2023-2024學(xué)年第一學(xué)期期末試卷
- 西京學(xué)院《設(shè)計(jì)表現(xiàn)》2023-2024學(xué)年第一學(xué)期期末試卷
- 探究水溫對金魚呼吸的影響
- 新人教版五年級上冊用字母表示數(shù)例3教程
- 西京學(xué)院《工程力學(xué)》2023-2024學(xué)年第一學(xué)期期末試卷
- 西京學(xué)院《安裝工程計(jì)量與計(jì)價》2021-2022學(xué)年第一學(xué)期期末試卷
- 西華師范大學(xué)《數(shù)字電子技術(shù)基礎(chǔ)》2022-2023學(xué)年期末試卷
- 描寫眼睛 課件
- 骨科復(fù)試問答題
- 新版慢病隨訪表3頁
- 《實(shí)踐論》讀書PPT課件
- 小產(chǎn)權(quán)拆遷安置回遷房買賣合同
- 青島版科學(xué)六年級上冊《齒輪》教學(xué)設(shè)計(jì)
- 《偷影子的人》PPT課件
- 江南大學(xué)鋼結(jié)構(gòu)設(shè)計(jì)期末復(fù)習(xí)題考題附答案
- 電力系統(tǒng)三維可視化技術(shù)及應(yīng)用
- 中學(xué)30+15高效課堂教學(xué)改革實(shí)施方案
- (完整版)師說寫作素材
- 陽光照耀著塔什庫爾干(二胡+鋼琴伴奏) 鋼琴伴奏譜 五線譜 伴奏譜 鋼琴譜 譜 正譜
評論
0/150
提交評論