SlideShare a Scribd company logo
1 of 50
Download to read offline
Chapter 7
Spillways and Energy dissipaters
Prepared by:
Binu karki
Msc iWRM
1
Overflow or Ogee Spillway
2
Spillway
3
Requirements/Purpose of Spillway
• A spillway should have sufficient capacity to
serve as moderation of floods.
• Spillway should be hydrologically and
structurally safe.
i. Location of the spillway should provide safe
disposal of water without toe erosion.
ii. Spillway should provide safe and regulated
release of the surplus water in excess of
reservoir capacity.
• Spillway usually has energy dissipation work on
its downstream side.
4
5
Ogee spillway
6
Chute Spillway
7
Side channel Spillway
8
Shaft spillway/Glory Hole
Spillway
9
Shaft spillway/Glory Hole
Spillway
10
11
Straight drop/
Over-fall spillway
12
Tunnel spillway
13
Labyrinth Spillway: Lake Brazos
Labyrinth weir
14
Labyrinth Spillway
15
Stepped spillway
16
Service spillway/Auxiliary
spillway
:Warrangamba Dam, Australia
17
According to the function
Main Spillway
• Primary spillway
• Operates in general operation condition
• Designed to pass entire spillway design flood
• In most of dams, it is only spillway
Auxiliary Spillway
• Mostly provided in conjunction with smaller main
spillway
• Total capacity=capacity of (main spillway +
auxiliary spillway)
Emergency Spillway
• Comes in operation only during emergency which
may arise at any time and the same might not
have been considered in normal design of main
spillway.
18
Emergency Spillway:
Oroville Dam, California
19
Ungated Spillway
20
Gated Spillway
21
Orifice Spillway
22
Energy Dissipation: By
formation of Hydraulic Jump
23
Overflow or Ogee Spillway
• Constructed by using a portion of dam as overflow
section .
• Provided in valleys with sufficient width to
accommodate the required crest length.
• Might be either controlled or uncontrolled.
• Controlled spillway
i. Permanent gate (lifted automatically or
operationally) OR
ii. Provision of temporary planks(wooden) in small and
less important spillways
• Permanent crest gates increase total cost of dam BUT
they increase reservoir capacity 24
Overflow or Ogee Spillway
• The rate of discharge over entire length of the
spillway
Q=CLH15 OR q= Q/L=CH15
Where,
C=coefficient of discharge=2.15-2.2
L=effective length of weir(m)
H=measured head above crest(m)
q=discharge per meter length (m3/s/m)
Q=discharge(m3/s)
25
Overflow or Ogee Spillway Design
26
Overflow or Ogee Spillway Design
• Spillway crest needs careful design to stand
maximum flood.
• At design head (h=Hd),water flowing down the
spillway remains in contact with the surface and no
negative pressure gets developed on spillway
surface.
• If h>Hd ,negative pressure gets developed i.e
cavitation on spillway surface BUT no such problem
for h<= Hd
27
Cavitation Prevention measures
1. Additional quantity of concrete (Ramp) may be
put on the downstream face of the dam.
2. Corbel may be constructed on the upstream face
28
Overflow spillway profile
• Waterways Experiment Station,
USA (WES) prescribed following
spillway shape equation:
Xn=KHn-1y
Where,
X and y are the co-ordinates of the
crest profile
Origin is at highest point of crest
H is design head without approach
velocity head
K & n depend on slope of upstream
face
For vertical upstream face, K=2 and
n=1.85,the figure shows standard
WES spillway shape.
29
Overflow spillway profile
• Similarly, US Army Corps of Engineers have
recommended two equations each for
downstream and upstream profile of spillway
apex as:
Where, hD =design head over spillway
x and y are co-ordinates which are right angles to
each other taking apex as origin.
30
Energy Dissipaters
• The water flowing down from the spillways possess a large
amount of kinetic energy that is generated by virtue of its
losing the potential head from the reservoir level to the
level of the river on the downstream of the spillway.
• If this energy is not reduced, there are danger of scour to
the riverbed which may threaten the stability of the dam or
the neighboring river valley slopes.
• The various arrangements for suppressing or killing of the
high energy water at the downstream toe of the spillways
are called Energy Dissipaters.
• In general, energy dissipation can be achieved in two
ways:
By developing a hydraulic jump
By directing the jet of water using a deflector bucket.
31
1.Hydraulic Jump
• For hydraulic jump to
occur, the u/s flow
should be supercritical
i.e. Fr>1
• Type of jump depends
upon value of Fr
number.
32
Hydraulic Jump
33
Stilling Basin
• Use stilling basin to initiate jump.
• Allows dissipation of energy within a structure that
will minimize damage.
• Baffle blocks are used to make jump position more
stable.
• Chute Blocks and End sill are also used for control
of jump
34
Chute Blocks, Baffle Blocks and End Sill
35
Chute Blocks
• These are triangular blocks with their top
surface horizontal.
• They are installed at the toe of the spillway just
at upstream end of the stilling basin.
• These blocks stabilize the jump, improve jumps
performance and decrease the length of
hydraulic jump.
36
Baffle Blocks or Piers/Friction
Blocks
• They are installed on stilling basin floor between
chute blocks and end sill.
• They stabilize the formation of jump.
• They assist in dissipation of energy.
37
End Sill/Dentated Sills
• Provided at the end of stilling basin
• They diffuse residual portion of high velocity jet
reaching end of basin
• They help to reduce length of jump or basin
38
2.Roller Bucket /Flip Bucket type
energy dissipaters
• Used when tail water condition is
not favorable for adopting
hydraulic jump.
• Roller bucket is a spoon type
structure at the toe of spillway.
• This requires relatively short
structure in comparison to
hydraulic jump type stilling basin.
• The high velocity of water slides
down and get arrested by tail
water.
• For successful roller action, the
tail water depth has to be higher
than that required by hydraulic
jump type basin.
39
2.Roller Bucket /Flip Bucket type
energy dissipaters
• Main variables of design:
Radius of bucket & lip angle
• Radius=15-25 m
• Lip angle=20 to 40 degrees
• The optimum dimensions are
decided with model studies.
40
By directing jet of water through
deflector bucket: Flip bucket
41
By directing jet of water through
deflector bucket: Flip bucket
42
By directing jet of water through
deflector bucket: ski jump bucket
43
3.Ski-Jump Bucket type Energy
Dissipater
44
• Similar to roller bucket type in construction
• The water jet flows over the bucket and springs up
clearly in air and after a trajectory hits the river bed at
some distance away from the toe of the dam.
• Suitable when foundation rock is of good quality and
can withstand erosive action of plunging jet.
• Tailwater has to be low so that clear ski jump formation
can take place.
3.Ski-Jump Bucket type Energy
Dissipater
45
• It acts as ski-jump type bucket at certain discharges
and as a roller bucket at lower discharges.
• For example:
In Rihand Dam in India, bucket acts as ski at Q of
33m3/s/m and above BUT as roller below this value.
By directing jet of water through
deflector bucket: ski jump bucket
46
Design of Stilling Basin
47
Design of Stilling Basin
• Equation of flow over crest,𝑄 𝑑 =
2
3
𝐶 𝑑 2𝑔 ∗ 𝐿𝐻
3
2
Where,
L-Length of Crest
Qd-Design discharge
Cd-Coefficient of Discharge(assume 0.22)
H-Height of water above crest
• discharge per unit width, q=Q/B
• Since, Upstream specific energy=Specific energy
at 1 i.e. Eu=E1):H+h =y1+
𝑣1
2
2𝑔
• Fr1=
𝑣1
𝑔𝑦1
where, v1=
𝑄 𝑑
By1
48
Design of Stilling Basin
• Sequent depth
y2=
𝑦1
2
(−1 + 1 + 8𝐹𝑟1
2 )
• Length of Basin
Length=5(y2-y1)
• Tail water depth(yt or yn)
𝑄 𝑑 =
1
𝑛
𝐴𝑅
2
3 So
1
2
n=Manning’s rough coefficient
A-Area of flow(yn*B)
R-(
𝑦𝑛∗𝐵
2𝑦𝑛+𝐵
)
2
3
49
Design of Stilling Basin
• Find yc=(q2/g) Τ
1
3
If yn>yc-Hydraulic jump is formed
If yn<y2-ski-jump type energy dissipator
recommended/repelled jump is formed/further
excavation for stilling basin required
If yn>y2-submerged jump is formed
• Energy loss in the jump, ∆E
∆E=
𝑦2−𝑦1 3
4𝑦1𝑦2
50

More Related Content

What's hot

Canal Regulation & Cross Drainage Works
Canal Regulation & Cross Drainage WorksCanal Regulation & Cross Drainage Works
Canal Regulation & Cross Drainage WorksGAURAV. H .TANDON
 
Diversion headworks
Diversion headworksDiversion headworks
Diversion headworksJimit Shah
 
Energy dissipation - irrigation engineering
Energy dissipation - irrigation engineeringEnergy dissipation - irrigation engineering
Energy dissipation - irrigation engineeringKavin Raval
 
Types of earth dams
Types of earth damsTypes of earth dams
Types of earth damssaibabu48
 
Design of Hydraulic Structures
Design of Hydraulic StructuresDesign of Hydraulic Structures
Design of Hydraulic StructuresGAURAV. H .TANDON
 
weir & barrage
weir & barrageweir & barrage
weir & barrageRaj Daxini
 
Unit 3 spillway
Unit 3 spillwayUnit 3 spillway
Unit 3 spillwayMood Naik
 
Spillways components and types
Spillways components and typesSpillways components and types
Spillways components and typesRajkumar G
 
Design of Hydraulic Structures
Design of Hydraulic StructuresDesign of Hydraulic Structures
Design of Hydraulic StructuresDamalla Rams
 
Force acting on gravity dam
Force acting on gravity damForce acting on gravity dam
Force acting on gravity damDivya Vishnoi
 
Design of Canal (Kennedy & Lacey Theory) & Diversion Headwork
Design of Canal (Kennedy & Lacey Theory) & Diversion HeadworkDesign of Canal (Kennedy & Lacey Theory) & Diversion Headwork
Design of Canal (Kennedy & Lacey Theory) & Diversion HeadworkRamanuj Jaldhari
 

What's hot (20)

Canal Regulation & Cross Drainage Works
Canal Regulation & Cross Drainage WorksCanal Regulation & Cross Drainage Works
Canal Regulation & Cross Drainage Works
 
Diversion headworks
Diversion headworksDiversion headworks
Diversion headworks
 
Energy dissipation - irrigation engineering
Energy dissipation - irrigation engineeringEnergy dissipation - irrigation engineering
Energy dissipation - irrigation engineering
 
Storage head works
Storage head worksStorage head works
Storage head works
 
Spillway
Spillway Spillway
Spillway
 
Hydraulic jump
Hydraulic jumpHydraulic jump
Hydraulic jump
 
Types of earth dams
Types of earth damsTypes of earth dams
Types of earth dams
 
Design of Hydraulic Structures
Design of Hydraulic StructuresDesign of Hydraulic Structures
Design of Hydraulic Structures
 
weir & barrage
weir & barrageweir & barrage
weir & barrage
 
Design of a channel Reach
Design of a channel ReachDesign of a channel Reach
Design of a channel Reach
 
Unit 3 spillway
Unit 3 spillwayUnit 3 spillway
Unit 3 spillway
 
Weirs on Permeable Foundations
Weirs on Permeable FoundationsWeirs on Permeable Foundations
Weirs on Permeable Foundations
 
Spillways components and types
Spillways components and typesSpillways components and types
Spillways components and types
 
Earthen Dam
Earthen DamEarthen Dam
Earthen Dam
 
Design of Hydraulic Structures
Design of Hydraulic StructuresDesign of Hydraulic Structures
Design of Hydraulic Structures
 
Force acting on gravity dam
Force acting on gravity damForce acting on gravity dam
Force acting on gravity dam
 
Design of Canal (Kennedy & Lacey Theory) & Diversion Headwork
Design of Canal (Kennedy & Lacey Theory) & Diversion HeadworkDesign of Canal (Kennedy & Lacey Theory) & Diversion Headwork
Design of Canal (Kennedy & Lacey Theory) & Diversion Headwork
 
Diversion Headworks
Diversion HeadworksDiversion Headworks
Diversion Headworks
 
ogee design
ogee designogee design
ogee design
 
Cross Drainage Works
Cross Drainage WorksCross Drainage Works
Cross Drainage Works
 

Similar to 050218 chapter 7 spillways and energy dissipators

Spillways and Diversion Headwork's
Spillways and Diversion Headwork'sSpillways and Diversion Headwork's
Spillways and Diversion Headwork'skartikchourasia
 
Spillways, Spillway capacity, flood routing through spillways, different type...
Spillways, Spillway capacity, flood routing through spillways, different type...Spillways, Spillway capacity, flood routing through spillways, different type...
Spillways, Spillway capacity, flood routing through spillways, different type...Denish Jangid
 
Ce 3205-lecture-08-spillways
Ce 3205-lecture-08-spillwaysCe 3205-lecture-08-spillways
Ce 3205-lecture-08-spillwayssaibabu48
 
Presentation1 hydro;ogy-SKK.pdf
Presentation1 hydro;ogy-SKK.pdfPresentation1 hydro;ogy-SKK.pdf
Presentation1 hydro;ogy-SKK.pdfShrutiLotliker
 
Spillways &amp; energy dissipator
Spillways &amp; energy dissipatorSpillways &amp; energy dissipator
Spillways &amp; energy dissipatorSAGAR RAUT
 
Spillway and its types
Spillway and its typesSpillway and its types
Spillway and its typesBilal Mirani
 
Chapter Five-CANAL APPURTENANT STRUCTURES.pdf
Chapter Five-CANAL APPURTENANT STRUCTURES.pdfChapter Five-CANAL APPURTENANT STRUCTURES.pdf
Chapter Five-CANAL APPURTENANT STRUCTURES.pdfAbdanurJihad
 
WRE II canal structures
WRE II canal structuresWRE II canal structures
WRE II canal structuresMitaliShelke
 
Energy dissipators
Energy dissipatorsEnergy dissipators
Energy dissipatorsRahul Gupta
 
Cross drainage works irrigation engineering
Cross drainage works irrigation engineeringCross drainage works irrigation engineering
Cross drainage works irrigation engineeringAnuj Kumar
 
Regulating structure for canal flow
Regulating structure for canal flowRegulating structure for canal flow
Regulating structure for canal flowCivil engeeneer
 

Similar to 050218 chapter 7 spillways and energy dissipators (20)

Spillways and Diversion Headwork's
Spillways and Diversion Headwork'sSpillways and Diversion Headwork's
Spillways and Diversion Headwork's
 
Spillways, Spillway capacity, flood routing through spillways, different type...
Spillways, Spillway capacity, flood routing through spillways, different type...Spillways, Spillway capacity, flood routing through spillways, different type...
Spillways, Spillway capacity, flood routing through spillways, different type...
 
unit-3.pdf
unit-3.pdfunit-3.pdf
unit-3.pdf
 
SPILLWAYS.pdf
SPILLWAYS.pdfSPILLWAYS.pdf
SPILLWAYS.pdf
 
Spillways
SpillwaysSpillways
Spillways
 
Ce 3205-lecture-08-spillways
Ce 3205-lecture-08-spillwaysCe 3205-lecture-08-spillways
Ce 3205-lecture-08-spillways
 
4 spillways
4 spillways4 spillways
4 spillways
 
Presentation1 hydro;ogy-SKK.pdf
Presentation1 hydro;ogy-SKK.pdfPresentation1 hydro;ogy-SKK.pdf
Presentation1 hydro;ogy-SKK.pdf
 
Ch-3.pptx
Ch-3.pptxCh-3.pptx
Ch-3.pptx
 
Diversion head works
Diversion head worksDiversion head works
Diversion head works
 
Spillways &amp; energy dissipator
Spillways &amp; energy dissipatorSpillways &amp; energy dissipator
Spillways &amp; energy dissipator
 
Spillway and its types
Spillway and its typesSpillway and its types
Spillway and its types
 
Spillway
SpillwaySpillway
Spillway
 
Chapter Five-CANAL APPURTENANT STRUCTURES.pdf
Chapter Five-CANAL APPURTENANT STRUCTURES.pdfChapter Five-CANAL APPURTENANT STRUCTURES.pdf
Chapter Five-CANAL APPURTENANT STRUCTURES.pdf
 
WRE II canal structures
WRE II canal structuresWRE II canal structures
WRE II canal structures
 
Energy dissipators
Energy dissipatorsEnergy dissipators
Energy dissipators
 
Cross drainage works irrigation engineering
Cross drainage works irrigation engineeringCross drainage works irrigation engineering
Cross drainage works irrigation engineering
 
Regulating structure for canal flow
Regulating structure for canal flowRegulating structure for canal flow
Regulating structure for canal flow
 
Canal headworks
Canal headworksCanal headworks
Canal headworks
 
Chapter 10
Chapter 10Chapter 10
Chapter 10
 

More from Binu Karki

260118 chapter 6 fluid dynamics
260118 chapter 6 fluid dynamics260118 chapter 6 fluid dynamics
260118 chapter 6 fluid dynamicsBinu Karki
 
120218 chapter 8 momentum analysis of flow
120218 chapter 8 momentum analysis of flow120218 chapter 8 momentum analysis of flow
120218 chapter 8 momentum analysis of flowBinu Karki
 
080118 chapter 7 flow measurements
080118 chapter 7 flow measurements080118 chapter 7 flow measurements
080118 chapter 7 flow measurementsBinu Karki
 
080118 chapter 5 fluid kinematics
080118 chapter 5 fluid kinematics080118 chapter 5 fluid kinematics
080118 chapter 5 fluid kinematicsBinu Karki
 
020118 physical properties of liquid
020118 physical properties of liquid020118 physical properties of liquid
020118 physical properties of liquidBinu Karki
 
Chapter 10 similitude and physical modeling
Chapter 10 similitude and physical modelingChapter 10 similitude and physical modeling
Chapter 10 similitude and physical modelingBinu Karki
 
Chapter 8 hydraulic jump
Chapter 8 hydraulic jumpChapter 8 hydraulic jump
Chapter 8 hydraulic jumpBinu Karki
 
Chapter 6 energy and momentum principles
Chapter 6 energy and momentum principlesChapter 6 energy and momentum principles
Chapter 6 energy and momentum principlesBinu Karki
 
300118 chapter 9 powerhouse planning
300118 chapter 9 powerhouse planning300118 chapter 9 powerhouse planning
300118 chapter 9 powerhouse planningBinu Karki
 
300118 chapter 6 water conveyance a glimpse
300118 chapter 6 water conveyance a glimpse300118 chapter 6 water conveyance a glimpse
300118 chapter 6 water conveyance a glimpseBinu Karki
 
300118 chapter 5 run of river a glimpse
300118 chapter 5 run of river a glimpse300118 chapter 5 run of river a glimpse
300118 chapter 5 run of river a glimpseBinu Karki
 
300118 chapter 4 storage type glimpse
300118 chapter 4 storage type glimpse300118 chapter 4 storage type glimpse
300118 chapter 4 storage type glimpseBinu Karki
 
200118 chapter 8 hydromechanical
200118 chapter 8 hydromechanical200118 chapter 8 hydromechanical
200118 chapter 8 hydromechanicalBinu Karki
 
050218 chapter 10 microhydro plant
050218 chapter 10 microhydro plant050218 chapter 10 microhydro plant
050218 chapter 10 microhydro plantBinu Karki
 
Chapter 9:Uniform flow in mobile boundary channel
Chapter 9:Uniform flow in mobile boundary channelChapter 9:Uniform flow in mobile boundary channel
Chapter 9:Uniform flow in mobile boundary channelBinu Karki
 

More from Binu Karki (16)

260118 chapter 6 fluid dynamics
260118 chapter 6 fluid dynamics260118 chapter 6 fluid dynamics
260118 chapter 6 fluid dynamics
 
120218 chapter 8 momentum analysis of flow
120218 chapter 8 momentum analysis of flow120218 chapter 8 momentum analysis of flow
120218 chapter 8 momentum analysis of flow
 
080118 chapter 7 flow measurements
080118 chapter 7 flow measurements080118 chapter 7 flow measurements
080118 chapter 7 flow measurements
 
080118 chapter 5 fluid kinematics
080118 chapter 5 fluid kinematics080118 chapter 5 fluid kinematics
080118 chapter 5 fluid kinematics
 
020118 physical properties of liquid
020118 physical properties of liquid020118 physical properties of liquid
020118 physical properties of liquid
 
Chapter 10 similitude and physical modeling
Chapter 10 similitude and physical modelingChapter 10 similitude and physical modeling
Chapter 10 similitude and physical modeling
 
Chapter 8 hydraulic jump
Chapter 8 hydraulic jumpChapter 8 hydraulic jump
Chapter 8 hydraulic jump
 
Chapter 7 gvf
Chapter 7 gvfChapter 7 gvf
Chapter 7 gvf
 
Chapter 6 energy and momentum principles
Chapter 6 energy and momentum principlesChapter 6 energy and momentum principles
Chapter 6 energy and momentum principles
 
300118 chapter 9 powerhouse planning
300118 chapter 9 powerhouse planning300118 chapter 9 powerhouse planning
300118 chapter 9 powerhouse planning
 
300118 chapter 6 water conveyance a glimpse
300118 chapter 6 water conveyance a glimpse300118 chapter 6 water conveyance a glimpse
300118 chapter 6 water conveyance a glimpse
 
300118 chapter 5 run of river a glimpse
300118 chapter 5 run of river a glimpse300118 chapter 5 run of river a glimpse
300118 chapter 5 run of river a glimpse
 
300118 chapter 4 storage type glimpse
300118 chapter 4 storage type glimpse300118 chapter 4 storage type glimpse
300118 chapter 4 storage type glimpse
 
200118 chapter 8 hydromechanical
200118 chapter 8 hydromechanical200118 chapter 8 hydromechanical
200118 chapter 8 hydromechanical
 
050218 chapter 10 microhydro plant
050218 chapter 10 microhydro plant050218 chapter 10 microhydro plant
050218 chapter 10 microhydro plant
 
Chapter 9:Uniform flow in mobile boundary channel
Chapter 9:Uniform flow in mobile boundary channelChapter 9:Uniform flow in mobile boundary channel
Chapter 9:Uniform flow in mobile boundary channel
 

Recently uploaded

247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt
247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt
247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).pptssuser5c9d4b1
 
UNIT-II FMM-Flow Through Circular Conduits
UNIT-II FMM-Flow Through Circular ConduitsUNIT-II FMM-Flow Through Circular Conduits
UNIT-II FMM-Flow Through Circular Conduitsrknatarajan
 
The Most Attractive Pune Call Girls Budhwar Peth 8250192130 Will You Miss Thi...
The Most Attractive Pune Call Girls Budhwar Peth 8250192130 Will You Miss Thi...The Most Attractive Pune Call Girls Budhwar Peth 8250192130 Will You Miss Thi...
The Most Attractive Pune Call Girls Budhwar Peth 8250192130 Will You Miss Thi...ranjana rawat
 
Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...
Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...
Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...Dr.Costas Sachpazis
 
Microscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptxMicroscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptxpurnimasatapathy1234
 
AKTU Computer Networks notes --- Unit 3.pdf
AKTU Computer Networks notes ---  Unit 3.pdfAKTU Computer Networks notes ---  Unit 3.pdf
AKTU Computer Networks notes --- Unit 3.pdfankushspencer015
 
Extrusion Processes and Their Limitations
Extrusion Processes and Their LimitationsExtrusion Processes and Their Limitations
Extrusion Processes and Their Limitations120cr0395
 
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130Suhani Kapoor
 
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...ranjana rawat
 
UNIT - IV - Air Compressors and its Performance
UNIT - IV - Air Compressors and its PerformanceUNIT - IV - Air Compressors and its Performance
UNIT - IV - Air Compressors and its Performancesivaprakash250
 
Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...
Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...
Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...Dr.Costas Sachpazis
 
Introduction to Multiple Access Protocol.pptx
Introduction to Multiple Access Protocol.pptxIntroduction to Multiple Access Protocol.pptx
Introduction to Multiple Access Protocol.pptxupamatechverse
 
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur EscortsHigh Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur EscortsCall Girls in Nagpur High Profile
 
(PRIYA) Rajgurunagar Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(PRIYA) Rajgurunagar Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...(PRIYA) Rajgurunagar Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(PRIYA) Rajgurunagar Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...ranjana rawat
 
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...ranjana rawat
 
CCS335 _ Neural Networks and Deep Learning Laboratory_Lab Complete Record
CCS335 _ Neural Networks and Deep Learning Laboratory_Lab Complete RecordCCS335 _ Neural Networks and Deep Learning Laboratory_Lab Complete Record
CCS335 _ Neural Networks and Deep Learning Laboratory_Lab Complete RecordAsst.prof M.Gokilavani
 
Software Development Life Cycle By Team Orange (Dept. of Pharmacy)
Software Development Life Cycle By  Team Orange (Dept. of Pharmacy)Software Development Life Cycle By  Team Orange (Dept. of Pharmacy)
Software Development Life Cycle By Team Orange (Dept. of Pharmacy)Suman Mia
 
Coefficient of Thermal Expansion and their Importance.pptx
Coefficient of Thermal Expansion and their Importance.pptxCoefficient of Thermal Expansion and their Importance.pptx
Coefficient of Thermal Expansion and their Importance.pptxAsutosh Ranjan
 

Recently uploaded (20)

247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt
247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt
247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt
 
UNIT-II FMM-Flow Through Circular Conduits
UNIT-II FMM-Flow Through Circular ConduitsUNIT-II FMM-Flow Through Circular Conduits
UNIT-II FMM-Flow Through Circular Conduits
 
The Most Attractive Pune Call Girls Budhwar Peth 8250192130 Will You Miss Thi...
The Most Attractive Pune Call Girls Budhwar Peth 8250192130 Will You Miss Thi...The Most Attractive Pune Call Girls Budhwar Peth 8250192130 Will You Miss Thi...
The Most Attractive Pune Call Girls Budhwar Peth 8250192130 Will You Miss Thi...
 
Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...
Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...
Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...
 
Microscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptxMicroscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptx
 
AKTU Computer Networks notes --- Unit 3.pdf
AKTU Computer Networks notes ---  Unit 3.pdfAKTU Computer Networks notes ---  Unit 3.pdf
AKTU Computer Networks notes --- Unit 3.pdf
 
DJARUM4D - SLOT GACOR ONLINE | SLOT DEMO ONLINE
DJARUM4D - SLOT GACOR ONLINE | SLOT DEMO ONLINEDJARUM4D - SLOT GACOR ONLINE | SLOT DEMO ONLINE
DJARUM4D - SLOT GACOR ONLINE | SLOT DEMO ONLINE
 
Extrusion Processes and Their Limitations
Extrusion Processes and Their LimitationsExtrusion Processes and Their Limitations
Extrusion Processes and Their Limitations
 
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130
 
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
 
UNIT - IV - Air Compressors and its Performance
UNIT - IV - Air Compressors and its PerformanceUNIT - IV - Air Compressors and its Performance
UNIT - IV - Air Compressors and its Performance
 
Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...
Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...
Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...
 
Introduction to Multiple Access Protocol.pptx
Introduction to Multiple Access Protocol.pptxIntroduction to Multiple Access Protocol.pptx
Introduction to Multiple Access Protocol.pptx
 
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur EscortsHigh Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur Escorts
 
(PRIYA) Rajgurunagar Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(PRIYA) Rajgurunagar Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...(PRIYA) Rajgurunagar Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(PRIYA) Rajgurunagar Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
 
Roadmap to Membership of RICS - Pathways and Routes
Roadmap to Membership of RICS - Pathways and RoutesRoadmap to Membership of RICS - Pathways and Routes
Roadmap to Membership of RICS - Pathways and Routes
 
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...
 
CCS335 _ Neural Networks and Deep Learning Laboratory_Lab Complete Record
CCS335 _ Neural Networks and Deep Learning Laboratory_Lab Complete RecordCCS335 _ Neural Networks and Deep Learning Laboratory_Lab Complete Record
CCS335 _ Neural Networks and Deep Learning Laboratory_Lab Complete Record
 
Software Development Life Cycle By Team Orange (Dept. of Pharmacy)
Software Development Life Cycle By  Team Orange (Dept. of Pharmacy)Software Development Life Cycle By  Team Orange (Dept. of Pharmacy)
Software Development Life Cycle By Team Orange (Dept. of Pharmacy)
 
Coefficient of Thermal Expansion and their Importance.pptx
Coefficient of Thermal Expansion and their Importance.pptxCoefficient of Thermal Expansion and their Importance.pptx
Coefficient of Thermal Expansion and their Importance.pptx
 

050218 chapter 7 spillways and energy dissipators

  • 1. Chapter 7 Spillways and Energy dissipaters Prepared by: Binu karki Msc iWRM 1
  • 2. Overflow or Ogee Spillway 2
  • 4. Requirements/Purpose of Spillway • A spillway should have sufficient capacity to serve as moderation of floods. • Spillway should be hydrologically and structurally safe. i. Location of the spillway should provide safe disposal of water without toe erosion. ii. Spillway should provide safe and regulated release of the surplus water in excess of reservoir capacity. • Spillway usually has energy dissipation work on its downstream side. 4
  • 5. 5
  • 11. 11
  • 14. Labyrinth Spillway: Lake Brazos Labyrinth weir 14
  • 18. According to the function Main Spillway • Primary spillway • Operates in general operation condition • Designed to pass entire spillway design flood • In most of dams, it is only spillway Auxiliary Spillway • Mostly provided in conjunction with smaller main spillway • Total capacity=capacity of (main spillway + auxiliary spillway) Emergency Spillway • Comes in operation only during emergency which may arise at any time and the same might not have been considered in normal design of main spillway. 18
  • 23. Energy Dissipation: By formation of Hydraulic Jump 23
  • 24. Overflow or Ogee Spillway • Constructed by using a portion of dam as overflow section . • Provided in valleys with sufficient width to accommodate the required crest length. • Might be either controlled or uncontrolled. • Controlled spillway i. Permanent gate (lifted automatically or operationally) OR ii. Provision of temporary planks(wooden) in small and less important spillways • Permanent crest gates increase total cost of dam BUT they increase reservoir capacity 24
  • 25. Overflow or Ogee Spillway • The rate of discharge over entire length of the spillway Q=CLH15 OR q= Q/L=CH15 Where, C=coefficient of discharge=2.15-2.2 L=effective length of weir(m) H=measured head above crest(m) q=discharge per meter length (m3/s/m) Q=discharge(m3/s) 25
  • 26. Overflow or Ogee Spillway Design 26
  • 27. Overflow or Ogee Spillway Design • Spillway crest needs careful design to stand maximum flood. • At design head (h=Hd),water flowing down the spillway remains in contact with the surface and no negative pressure gets developed on spillway surface. • If h>Hd ,negative pressure gets developed i.e cavitation on spillway surface BUT no such problem for h<= Hd 27
  • 28. Cavitation Prevention measures 1. Additional quantity of concrete (Ramp) may be put on the downstream face of the dam. 2. Corbel may be constructed on the upstream face 28
  • 29. Overflow spillway profile • Waterways Experiment Station, USA (WES) prescribed following spillway shape equation: Xn=KHn-1y Where, X and y are the co-ordinates of the crest profile Origin is at highest point of crest H is design head without approach velocity head K & n depend on slope of upstream face For vertical upstream face, K=2 and n=1.85,the figure shows standard WES spillway shape. 29
  • 30. Overflow spillway profile • Similarly, US Army Corps of Engineers have recommended two equations each for downstream and upstream profile of spillway apex as: Where, hD =design head over spillway x and y are co-ordinates which are right angles to each other taking apex as origin. 30
  • 31. Energy Dissipaters • The water flowing down from the spillways possess a large amount of kinetic energy that is generated by virtue of its losing the potential head from the reservoir level to the level of the river on the downstream of the spillway. • If this energy is not reduced, there are danger of scour to the riverbed which may threaten the stability of the dam or the neighboring river valley slopes. • The various arrangements for suppressing or killing of the high energy water at the downstream toe of the spillways are called Energy Dissipaters. • In general, energy dissipation can be achieved in two ways: By developing a hydraulic jump By directing the jet of water using a deflector bucket. 31
  • 32. 1.Hydraulic Jump • For hydraulic jump to occur, the u/s flow should be supercritical i.e. Fr>1 • Type of jump depends upon value of Fr number. 32
  • 34. Stilling Basin • Use stilling basin to initiate jump. • Allows dissipation of energy within a structure that will minimize damage. • Baffle blocks are used to make jump position more stable. • Chute Blocks and End sill are also used for control of jump 34
  • 35. Chute Blocks, Baffle Blocks and End Sill 35
  • 36. Chute Blocks • These are triangular blocks with their top surface horizontal. • They are installed at the toe of the spillway just at upstream end of the stilling basin. • These blocks stabilize the jump, improve jumps performance and decrease the length of hydraulic jump. 36
  • 37. Baffle Blocks or Piers/Friction Blocks • They are installed on stilling basin floor between chute blocks and end sill. • They stabilize the formation of jump. • They assist in dissipation of energy. 37
  • 38. End Sill/Dentated Sills • Provided at the end of stilling basin • They diffuse residual portion of high velocity jet reaching end of basin • They help to reduce length of jump or basin 38
  • 39. 2.Roller Bucket /Flip Bucket type energy dissipaters • Used when tail water condition is not favorable for adopting hydraulic jump. • Roller bucket is a spoon type structure at the toe of spillway. • This requires relatively short structure in comparison to hydraulic jump type stilling basin. • The high velocity of water slides down and get arrested by tail water. • For successful roller action, the tail water depth has to be higher than that required by hydraulic jump type basin. 39
  • 40. 2.Roller Bucket /Flip Bucket type energy dissipaters • Main variables of design: Radius of bucket & lip angle • Radius=15-25 m • Lip angle=20 to 40 degrees • The optimum dimensions are decided with model studies. 40
  • 41. By directing jet of water through deflector bucket: Flip bucket 41
  • 42. By directing jet of water through deflector bucket: Flip bucket 42
  • 43. By directing jet of water through deflector bucket: ski jump bucket 43
  • 44. 3.Ski-Jump Bucket type Energy Dissipater 44 • Similar to roller bucket type in construction • The water jet flows over the bucket and springs up clearly in air and after a trajectory hits the river bed at some distance away from the toe of the dam. • Suitable when foundation rock is of good quality and can withstand erosive action of plunging jet. • Tailwater has to be low so that clear ski jump formation can take place.
  • 45. 3.Ski-Jump Bucket type Energy Dissipater 45 • It acts as ski-jump type bucket at certain discharges and as a roller bucket at lower discharges. • For example: In Rihand Dam in India, bucket acts as ski at Q of 33m3/s/m and above BUT as roller below this value.
  • 46. By directing jet of water through deflector bucket: ski jump bucket 46
  • 47. Design of Stilling Basin 47
  • 48. Design of Stilling Basin • Equation of flow over crest,𝑄 𝑑 = 2 3 𝐶 𝑑 2𝑔 ∗ 𝐿𝐻 3 2 Where, L-Length of Crest Qd-Design discharge Cd-Coefficient of Discharge(assume 0.22) H-Height of water above crest • discharge per unit width, q=Q/B • Since, Upstream specific energy=Specific energy at 1 i.e. Eu=E1):H+h =y1+ 𝑣1 2 2𝑔 • Fr1= 𝑣1 𝑔𝑦1 where, v1= 𝑄 𝑑 By1 48
  • 49. Design of Stilling Basin • Sequent depth y2= 𝑦1 2 (−1 + 1 + 8𝐹𝑟1 2 ) • Length of Basin Length=5(y2-y1) • Tail water depth(yt or yn) 𝑄 𝑑 = 1 𝑛 𝐴𝑅 2 3 So 1 2 n=Manning’s rough coefficient A-Area of flow(yn*B) R-( 𝑦𝑛∗𝐵 2𝑦𝑛+𝐵 ) 2 3 49
  • 50. Design of Stilling Basin • Find yc=(q2/g) Τ 1 3 If yn>yc-Hydraulic jump is formed If yn<y2-ski-jump type energy dissipator recommended/repelled jump is formed/further excavation for stilling basin required If yn>y2-submerged jump is formed • Energy loss in the jump, ∆E ∆E= 𝑦2−𝑦1 3 4𝑦1𝑦2 50