SlideShare a Scribd company logo
1 of 29
PRESENTATION TOPIC
SHAFT DESIGN AND
SINKING
Presented By Under guidance of
Pramoda G Dr. Balasubramanian A
2nd semester, Geology Professor
Shaft Definitions
Shaft- A rotating member used to transmit power.
Axle- A stationary member used as support for rotating elements such as
wheels, idler gears, etc.
Spindle- A short shaft or axle (e.g., head-stock spindle of a lathe).
Stub shaft- A shaft that is integral with a motor, engine or prime mover
and is of a size, shape, and projection as to permit easy connection to
other shafts
Line shaft- A shaft connected to a prime mover and used to transmit
power to one or several machines
Jackshaft- (Sometimes called countershaft). A short shaft that connects a
prime mover with a line shaft or a machine
Flexible shaft- A connector which permits transmission of motion between
two members whose axes are at an angle with each other
What does it mean “shaft design”? shaft design ?
1. Material selection
2. Geometric layout
3. Stress and strength: static and fatigue
4. Deflection and rigidity: bending defl., torsional, twisting,
slope at bearings and shaft- supported elements, and shear
deflection due to transverse loading on short shafts.
5. Vibration: critical speed
Material selection
• Many shafts are made from low carbon, cold-drawn or hot-rolled
steel.
• Alloy steel: Nickel chromium and vanadium are steel Nickel, some
of the common alloying materials. However alloy steel is expensive.
• Shafts usually don’t need to be surface hardened unless they serve
as the actual journal of a bearing surface.
• Hardening of surface (wear resistant): case hardening and
carburizing ; cyaniding and nitriding.
Purpose of a Shafts
• To access an ore body .
• To transport men and material to from underground workings .
• For hoisting ore and waste from underground.
• Storage of nuclear waste
Shaft Cross Sections
1. Rectangular Shafts
Most shafts that were constructed in the 1900’s were of a rectangular cross-
section because of the shape of the pieces of equipment that were taken
down the shaft i.e. cages, skips, and counterweights were all square or
rectangular in nature and so it made a lot of sense to sink or mine
rectangular shafts. Breaking a square / rectangular shutter was however
problematic and this slowed down the rate of sinking.
2 Circular Shafts
Almost all the hard rock mines now have circular shafts because the
cross section provides good geometry for airflow and good rock
support characteristics. The circular shutter is ease to move when
doing concurrent lining resulting in faster work progress during
sinking operations. This is an important aspect when it comes to the
cash flow of the project.
3 Elliptical Shafts
Elliptical shafts were designed as an alternative to large circular
shafts by simply adding half moons along the main axis. This had the
effect of reducing the circular excavation and therefore the cost of
sinking the shaft.
• Identify possible mining layouts
• Define standard mining block (stope or panel size) per
layout
• Calculate steady state conditions per level
• Define steady state inputs/outputs requirements per level
• Determine minimum access dimensions to cater for
equipment and ventilation
• Calculate development requirements to get to steady state
• Simulate full level production from start of block to ore
body extremity
• Determine the maximum number of levels that will operate
simultaneously
Determining the rate of mining can be as follows:
1 Criteria for choosing a Vertical Shaft
A vertical shaft should be chosen under the following conditions:
• Ore body should be steep dipping
• Ideal for deep ore bodies
• Provides quick access to ore body
• Most economic hoisting method for depths exceeding 500m
• Quicker return on capital investment
2 Criteria for choosing a Decline or Inclined Shaft
A decline or inclined shaft should be considered under the
scenarios:
• Flat dipping ore body
• Shallow ore bodies
• Require high throughput
• Require low initial capital costs
• Want to avoid some of the environmental concerns
(headgear)
Choosing the Right Shaft
The size or dimensions of each shaft will differ according to the
intended duty for each unit. There are three types, namely:
vertical, decline and
inclined shafts.
a) Narrow tabular deposits (steep & flat dipping – gold,
platinum, etc)
b) Wide tabular deposits (coal, potash)
c) Massive deposits (copper, nickel, iron ore)
Different types of shafts
Shaft type Diameters (m) Depths (m)
Mining ventilation 1-6 50-1500
Mining ore passes 3-7 50-1500
Mining access shafts 5-10 50-1500
Water treatment shafts 1-3 20-100
Tunnel access shaft 5-20 10-50
Objectives
Introduction
Definition
Shaft collar
Shaft sinking methods
Down-the-hole shaft sinking method
Wood/steel piling
Open caisson
Cementing process
Freezing process
Types of shafts
Introduction
shaft sinking, excavation from the surface of an opening in the earth.
Shafts, which are generally vertical, are usually distinguished from tunnels,
which are horizontal.
Little difficulty is experienced in shaft sinking through solid rock, which
contains little water.
Shafts sunk in loose water-bearing soils and lined with cast iron or with concrete
masonry 1 to 2 ft (30-61 cm) thick, built in sections as the work advances.
Shaft sinking through rock is generally accomplished by blasting.
Diameter and depth depends upon the type of the shaft
Shafts are usually circular or rectangular.
Definition
Shaft: A vertical or inclined tunnel from surface for the conveyance of
men, materials, hoisting ore, pumping water and providing ventilation.
Sinking: The work in excavating a shaft.
Shaft sinking:
It may be described as an excavation of vertical or inclined tunnel from
surface for conveyance of men, materials, ventilation, pumping water, in
addition to hoisting ore and waste rock.
It is also called Shaft Construction or Shaft Mining.
Shaft collar
On the surface of an underground
mine, a collar is required for a shaft or
raise entry, Collars are also required
For ventilation shafts, service shafts,
and for all raises that reach surface.
collars are normally lined with
concrete
Methods of shaft
sinkingThere are different methods of shaft sinking/construction. Actually
three possible methods allowing a shaft to me sunk through highly
weathered over burden on the basis of Excavation and Wall support.
These are;
Down-the-hole Shaft sinking Methods
Remote Shaft sinking Methods
Raiseboring Method
Down-the-hole-Shaft
sinking method
1. Rock bolting & meshing
2. cast-in-place lining
3. pre-cast lining
1. Drilling & blasting
2. shaft-boring mucking
3. V-mole with pilot hole
Excavation method
Drilling & blasting:
A shaft is constructed by drilling holes and filling them with explosives.
Using this method, drilling and blasting can sink around 5-10 metres in one
blast.
This is very labour-intensive, unsafe and has high running costs.
The most viable alternative for shafts up to 100m in length.
Mucking:
The operation of loading broken rock by hand or machine, usually in shafts
tunnels.
Note: Muck, any useless material produced in mining.
mucking out cuttings from the bottom of the shaft.
Usually this would require some skip-hoisting, bucket-hoisting or clam-
grab equipment.
V-mole with pilot hole
The V-mole is an improvement on the concept of the shaft boring machine.
Before boring, a pilot-hole is drilled, to assist in both cuttings removal and
guiding the machine along the correct path.
The V-mole uses grippers to hold on to the side of the shaft .
The V-mole is a costly machine not suited for drilling short shafts.
Wall supporting methods
Rock bolting and meshing
A wire mesh is fastened to the walls with evenly spaced rock bolts.
Rock bolting is a commonly used, cheap method. The rock-bolts increase
normal stresses on joints so that shear failure along joints becomes more
difficult.
Often rock bolts and mesh are used as a basis for shotcreting.
Water in-flow during shotcreting severely reduces the quality of shotcrete.
Cast-in-place lining
It is possible to cast concrete rings as the shaft sink progresses.
This method provides a smooth, watertight and permanent lining for the
shaft.
The casing can be reinforced to cope with horizontal stresses (i.e. ring-
shaped reinforcement) making the casing elements more economical.
Pre-cast lining segments
In sands, mudstone and sandstone, steel, pre-stressed concrete or composite liners
with a smaller diameter (i.e. up to the 4.5 dia: )than the shaft are lowered after drilling
out the hole.
Concrete can then be poured behind the walls to create the lining.
Shaft sinking methods
a) Wood/Steel Piling
The first set of piles, forming a circle around
the shaft site is started at the surface. As
the piles are driven down, the ground is
excavated, and a circular crib is put in every
few feet. In this way the shaft is sunk in a
series of short wooden cylinders.
b) Open Caisson
In this method the shaft is started by
digging a shallow excavation and placing a
cutting shoe on the bottom of the pit. The
ground inside and just under the shoe is
excavated and the lining is built up as the
shoe sinks.
c) Cementation Process
Cavities and fissures are filled with quick-setting cement under high
pressure then allowed to set. Cement pumps are designed for
pressure as high as 5000 lb/sqin.
d) Freezing Process
This method was first used in 1883. The wet round is artificially frozen
and then blasted and excavated as though it were solid rock. From 20
50 holes are drilled on the circumference of a circle. Circulating pipes
placed in the holes and a calcium or magnesium chloride solution is
pumped through the pipes to freeze the ground.
CONCLUSION
• Shafts for a newly founded ore body or indeed existing ore
reserves.
• The methodology is cannot be avoid the optimization
process to come up with best economic option.
• Shaft must have adequate torsional strength to
transmit torque and not be over stressed.
• Shafts are mounted in bearings and transmit power
through devices such as gears, pulleys, cams and
clutches.
• Shaft must sustain a combination of bending and
torsional loads
REFERENCE
1. J.E Shigley and C.R Mischke , Mechanical Engineering
Design , McGraw Hill Publication, 5th Edition. 1989.
2. M.F Spotts, Design of Machine Elements, Prentice Hall
India Pvt. Limited, 6th Edition, 1991.
3. Khurmi, R.S. and Gupta J.K., Text book on Machine
Design, Eurasia Publishing House, New Delhi.
4. Sharma, C.S. and Purohit Kamalesh, Design of Machine
Elements, Prentice Hall of India, New Delhi, 2003.
Shaft

More Related Content

What's hot

Design of Bord and Pillar method in coal mines
Design of Bord and Pillar method in coal minesDesign of Bord and Pillar method in coal mines
Design of Bord and Pillar method in coal minesaashutosh chhirolya
 
Armoured face conveyor
Armoured face conveyorArmoured face conveyor
Armoured face conveyorAnkit Narain
 
Mine transportation system
Mine transportation systemMine transportation system
Mine transportation systemajeetkm
 
Kope winder or friction winder ppt
Kope winder or friction winder pptKope winder or friction winder ppt
Kope winder or friction winder pptAMIT SAHU
 
Stoping and methods of Stoping.
Stoping and methods of Stoping.Stoping and methods of Stoping.
Stoping and methods of Stoping.Reeshav Pathak
 
Longwall mining (Multisling mining - Horizontal slicing) NIT ROURKELA
Longwall mining (Multisling mining - Horizontal slicing) NIT ROURKELALongwall mining (Multisling mining - Horizontal slicing) NIT ROURKELA
Longwall mining (Multisling mining - Horizontal slicing) NIT ROURKELAIndrajeetKumar110
 
Selection of longwall powered roof support
Selection of longwall powered roof supportSelection of longwall powered roof support
Selection of longwall powered roof supportUlimella Siva Sankar
 
LHD Load haul dump ppt
LHD Load haul dump pptLHD Load haul dump ppt
LHD Load haul dump pptguru brahmam
 
Haulage system in Mines
Haulage system in MinesHaulage system in Mines
Haulage system in Minesajeetkm
 
Mine locomotive ppt (under ground transport system )
Mine locomotive ppt (under ground transport system )Mine locomotive ppt (under ground transport system )
Mine locomotive ppt (under ground transport system )AMIT SAHU
 

What's hot (20)

Road Header and Bolter Miner
Road Header and Bolter MinerRoad Header and Bolter Miner
Road Header and Bolter Miner
 
Roof supports in coal mines
Roof supports in coal minesRoof supports in coal mines
Roof supports in coal mines
 
Topic 7-mining methods-part iii -surface mining- placer mining
Topic 7-mining methods-part iii -surface mining- placer miningTopic 7-mining methods-part iii -surface mining- placer mining
Topic 7-mining methods-part iii -surface mining- placer mining
 
Design of Bord and Pillar method in coal mines
Design of Bord and Pillar method in coal minesDesign of Bord and Pillar method in coal mines
Design of Bord and Pillar method in coal mines
 
Armoured face conveyor
Armoured face conveyorArmoured face conveyor
Armoured face conveyor
 
Caving Underground Mining Methods (longwall, Sublevel caving, & Block caving)
Caving Underground Mining Methods (longwall, Sublevel caving, &  Block caving)Caving Underground Mining Methods (longwall, Sublevel caving, &  Block caving)
Caving Underground Mining Methods (longwall, Sublevel caving, & Block caving)
 
Mine transportation system
Mine transportation systemMine transportation system
Mine transportation system
 
Lecture 4: Underground Mining
Lecture 4: Underground MiningLecture 4: Underground Mining
Lecture 4: Underground Mining
 
Surface mining planning and design of open pit mining
Surface mining planning and design of open pit miningSurface mining planning and design of open pit mining
Surface mining planning and design of open pit mining
 
Kope winder or friction winder ppt
Kope winder or friction winder pptKope winder or friction winder ppt
Kope winder or friction winder ppt
 
Stoping and methods of Stoping.
Stoping and methods of Stoping.Stoping and methods of Stoping.
Stoping and methods of Stoping.
 
Longwall mining (Multisling mining - Horizontal slicing) NIT ROURKELA
Longwall mining (Multisling mining - Horizontal slicing) NIT ROURKELALongwall mining (Multisling mining - Horizontal slicing) NIT ROURKELA
Longwall mining (Multisling mining - Horizontal slicing) NIT ROURKELA
 
Selection of longwall powered roof support
Selection of longwall powered roof supportSelection of longwall powered roof support
Selection of longwall powered roof support
 
LHD Load haul dump ppt
LHD Load haul dump pptLHD Load haul dump ppt
LHD Load haul dump ppt
 
DRILLING METHODS
DRILLING METHODSDRILLING METHODS
DRILLING METHODS
 
Haulage system in Mines
Haulage system in MinesHaulage system in Mines
Haulage system in Mines
 
Continuous miner
Continuous minerContinuous miner
Continuous miner
 
Mine locomotive ppt (under ground transport system )
Mine locomotive ppt (under ground transport system )Mine locomotive ppt (under ground transport system )
Mine locomotive ppt (under ground transport system )
 
Ppt mine machinery
Ppt mine machineryPpt mine machinery
Ppt mine machinery
 
Side discharge loader
Side discharge loaderSide discharge loader
Side discharge loader
 

Similar to Shaft

Shaft sinking
Shaft sinking Shaft sinking
Shaft sinking OmKaitade
 
Chapter 4.2 coffer dam, well foundation-final1
Chapter 4.2   coffer dam, well foundation-final1Chapter 4.2   coffer dam, well foundation-final1
Chapter 4.2 coffer dam, well foundation-final1DYPCET
 
Transmission tower
Transmission towerTransmission tower
Transmission towerKiran Hadiya
 
Tunneling exploration
Tunneling explorationTunneling exploration
Tunneling explorationjamali husain
 
Support Systems In Cut And Fill Method Of Stoping
Support Systems In Cut And Fill Method Of StopingSupport Systems In Cut And Fill Method Of Stoping
Support Systems In Cut And Fill Method Of Stopingem_vishal
 
oil & gas drilling preliminaries
oil & gas drilling preliminariesoil & gas drilling preliminaries
oil & gas drilling preliminariesKartikeya Pandey
 
Chapter 4.3 well foundation-final-ppt
Chapter 4.3   well foundation-final-pptChapter 4.3   well foundation-final-ppt
Chapter 4.3 well foundation-final-pptDYPCET
 
Wel Planing
Wel PlaningWel Planing
Wel Planingsaqib129
 
CHAPTER 5 DEEP FOUNDATION (2)7788788.ppt
CHAPTER 5 DEEP FOUNDATION (2)7788788.pptCHAPTER 5 DEEP FOUNDATION (2)7788788.ppt
CHAPTER 5 DEEP FOUNDATION (2)7788788.pptbryankalindo888
 
Tunnel Construction (VJTI MUMBAI)
Tunnel Construction (VJTI MUMBAI)Tunnel Construction (VJTI MUMBAI)
Tunnel Construction (VJTI MUMBAI)Mayur Rahangdale
 

Similar to Shaft (20)

Shaft sinking
Shaft sinking Shaft sinking
Shaft sinking
 
Shaft sinking 2
Shaft  sinking 2Shaft  sinking 2
Shaft sinking 2
 
Shaft sinking 1
Shaft sinking 1Shaft sinking 1
Shaft sinking 1
 
Chapter 4.2 coffer dam, well foundation-final1
Chapter 4.2   coffer dam, well foundation-final1Chapter 4.2   coffer dam, well foundation-final1
Chapter 4.2 coffer dam, well foundation-final1
 
Transmission tower
Transmission towerTransmission tower
Transmission tower
 
Tunneling exploration
Tunneling explorationTunneling exploration
Tunneling exploration
 
Support Systems In Cut And Fill Method Of Stoping
Support Systems In Cut And Fill Method Of StopingSupport Systems In Cut And Fill Method Of Stoping
Support Systems In Cut And Fill Method Of Stoping
 
oil & gas drilling preliminaries
oil & gas drilling preliminariesoil & gas drilling preliminaries
oil & gas drilling preliminaries
 
Tunnelling
TunnellingTunnelling
Tunnelling
 
Well foundation
Well foundationWell foundation
Well foundation
 
Chapter 4.3 well foundation-final-ppt
Chapter 4.3   well foundation-final-pptChapter 4.3   well foundation-final-ppt
Chapter 4.3 well foundation-final-ppt
 
Wel Planing
Wel PlaningWel Planing
Wel Planing
 
Well Foundation
Well FoundationWell Foundation
Well Foundation
 
u1t4tunneling.pptx
u1t4tunneling.pptxu1t4tunneling.pptx
u1t4tunneling.pptx
 
Basics of drilling 1
Basics of drilling 1Basics of drilling 1
Basics of drilling 1
 
CHAPTER 5 DEEP FOUNDATION (2)7788788.ppt
CHAPTER 5 DEEP FOUNDATION (2)7788788.pptCHAPTER 5 DEEP FOUNDATION (2)7788788.ppt
CHAPTER 5 DEEP FOUNDATION (2)7788788.ppt
 
Tunnel Construction (VJTI MUMBAI)
Tunnel Construction (VJTI MUMBAI)Tunnel Construction (VJTI MUMBAI)
Tunnel Construction (VJTI MUMBAI)
 
Tunnel Engineering.pptx
Tunnel Engineering.pptxTunnel Engineering.pptx
Tunnel Engineering.pptx
 
pile_foundation_1.ppt
pile_foundation_1.pptpile_foundation_1.ppt
pile_foundation_1.ppt
 
Pile foundation
Pile foundationPile foundation
Pile foundation
 

More from Pramoda Raj

Aerial photography.pptx
Aerial photography.pptxAerial photography.pptx
Aerial photography.pptxPramoda Raj
 
Siwalik- Stratigraphy
Siwalik- StratigraphySiwalik- Stratigraphy
Siwalik- StratigraphyPramoda Raj
 
Waves and their significance
Waves and their significanceWaves and their significance
Waves and their significancePramoda Raj
 
Karst topography
Karst topographyKarst topography
Karst topographyPramoda Raj
 
Glacial processes and their land forms.
Glacial processes and their land forms.Glacial processes and their land forms.
Glacial processes and their land forms.Pramoda Raj
 
Upsc geologist syllabus exam pattern
Upsc geologist syllabus exam patternUpsc geologist syllabus exam pattern
Upsc geologist syllabus exam patternPramoda Raj
 
Role of non government organizations in disaster management
Role of non government organizations in disaster managementRole of non government organizations in disaster management
Role of non government organizations in disaster managementPramoda Raj
 
Disaster Management System in India - Notes
Disaster Management System in India - Notes Disaster Management System in India - Notes
Disaster Management System in India - Notes Pramoda Raj
 
Role of non government organizations in disaster management
Role of non government organizations in disaster managementRole of non government organizations in disaster management
Role of non government organizations in disaster managementPramoda Raj
 
Disaster management system in India
Disaster management system in IndiaDisaster management system in India
Disaster management system in IndiaPramoda Raj
 
International organizations in disaster management
International organizations in disaster managementInternational organizations in disaster management
International organizations in disaster managementPramoda Raj
 
Geological factor for canal alignment
Geological factor for canal alignmentGeological factor for canal alignment
Geological factor for canal alignmentPramoda Raj
 
Major extinction events
Major extinction eventsMajor extinction events
Major extinction eventsPramoda Raj
 
Coastal erosion and engineering aspect
Coastal erosion and engineering aspectCoastal erosion and engineering aspect
Coastal erosion and engineering aspectPramoda Raj
 
Sampling techniques
Sampling techniquesSampling techniques
Sampling techniquesPramoda Raj
 

More from Pramoda Raj (20)

Aerial photography.pptx
Aerial photography.pptxAerial photography.pptx
Aerial photography.pptx
 
Siwalik- Stratigraphy
Siwalik- StratigraphySiwalik- Stratigraphy
Siwalik- Stratigraphy
 
Hydrogeology
HydrogeologyHydrogeology
Hydrogeology
 
Waves and their significance
Waves and their significanceWaves and their significance
Waves and their significance
 
coastal erosion
coastal erosioncoastal erosion
coastal erosion
 
Karst topography
Karst topographyKarst topography
Karst topography
 
Glacial processes and their land forms.
Glacial processes and their land forms.Glacial processes and their land forms.
Glacial processes and their land forms.
 
Dams
Dams Dams
Dams
 
Upsc geologist syllabus exam pattern
Upsc geologist syllabus exam patternUpsc geologist syllabus exam pattern
Upsc geologist syllabus exam pattern
 
Role of non government organizations in disaster management
Role of non government organizations in disaster managementRole of non government organizations in disaster management
Role of non government organizations in disaster management
 
Disaster Management System in India - Notes
Disaster Management System in India - Notes Disaster Management System in India - Notes
Disaster Management System in India - Notes
 
Role of non government organizations in disaster management
Role of non government organizations in disaster managementRole of non government organizations in disaster management
Role of non government organizations in disaster management
 
Disaster management system in India
Disaster management system in IndiaDisaster management system in India
Disaster management system in India
 
International organizations in disaster management
International organizations in disaster managementInternational organizations in disaster management
International organizations in disaster management
 
Geological factor for canal alignment
Geological factor for canal alignmentGeological factor for canal alignment
Geological factor for canal alignment
 
Major extinction events
Major extinction eventsMajor extinction events
Major extinction events
 
Coastal erosion and engineering aspect
Coastal erosion and engineering aspectCoastal erosion and engineering aspect
Coastal erosion and engineering aspect
 
Geotextiles
GeotextilesGeotextiles
Geotextiles
 
Hazard mapping
Hazard mappingHazard mapping
Hazard mapping
 
Sampling techniques
Sampling techniquesSampling techniques
Sampling techniques
 

Recently uploaded

Standard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power PlayStandard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power PlayEpec Engineered Technologies
 
Hazard Identification (HAZID) vs. Hazard and Operability (HAZOP): A Comparati...
Hazard Identification (HAZID) vs. Hazard and Operability (HAZOP): A Comparati...Hazard Identification (HAZID) vs. Hazard and Operability (HAZOP): A Comparati...
Hazard Identification (HAZID) vs. Hazard and Operability (HAZOP): A Comparati...soginsider
 
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoorTop Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoordharasingh5698
 
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756dollysharma2066
 
Design For Accessibility: Getting it right from the start
Design For Accessibility: Getting it right from the startDesign For Accessibility: Getting it right from the start
Design For Accessibility: Getting it right from the startQuintin Balsdon
 
Unleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leapUnleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leapRishantSharmaFr
 
VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...
VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...
VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...SUHANI PANDEY
 
A Study of Urban Area Plan for Pabna Municipality
A Study of Urban Area Plan for Pabna MunicipalityA Study of Urban Area Plan for Pabna Municipality
A Study of Urban Area Plan for Pabna MunicipalityMorshed Ahmed Rahath
 
ONLINE FOOD ORDER SYSTEM PROJECT REPORT.pdf
ONLINE FOOD ORDER SYSTEM PROJECT REPORT.pdfONLINE FOOD ORDER SYSTEM PROJECT REPORT.pdf
ONLINE FOOD ORDER SYSTEM PROJECT REPORT.pdfKamal Acharya
 
Employee leave management system project.
Employee leave management system project.Employee leave management system project.
Employee leave management system project.Kamal Acharya
 
DC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equationDC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equationBhangaleSonal
 
notes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.pptnotes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.pptMsecMca
 
KubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghlyKubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghlysanyuktamishra911
 

Recently uploaded (20)

(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
 
Standard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power PlayStandard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power Play
 
Hazard Identification (HAZID) vs. Hazard and Operability (HAZOP): A Comparati...
Hazard Identification (HAZID) vs. Hazard and Operability (HAZOP): A Comparati...Hazard Identification (HAZID) vs. Hazard and Operability (HAZOP): A Comparati...
Hazard Identification (HAZID) vs. Hazard and Operability (HAZOP): A Comparati...
 
Call Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort ServiceCall Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
 
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoorTop Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
 
FEA Based Level 3 Assessment of Deformed Tanks with Fluid Induced Loads
FEA Based Level 3 Assessment of Deformed Tanks with Fluid Induced LoadsFEA Based Level 3 Assessment of Deformed Tanks with Fluid Induced Loads
FEA Based Level 3 Assessment of Deformed Tanks with Fluid Induced Loads
 
(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7
(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7
(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7
 
Water Industry Process Automation & Control Monthly - April 2024
Water Industry Process Automation & Control Monthly - April 2024Water Industry Process Automation & Control Monthly - April 2024
Water Industry Process Automation & Control Monthly - April 2024
 
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak HamilCara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
 
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756
 
Design For Accessibility: Getting it right from the start
Design For Accessibility: Getting it right from the startDesign For Accessibility: Getting it right from the start
Design For Accessibility: Getting it right from the start
 
Unleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leapUnleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leap
 
VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...
VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...
VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...
 
A Study of Urban Area Plan for Pabna Municipality
A Study of Urban Area Plan for Pabna MunicipalityA Study of Urban Area Plan for Pabna Municipality
A Study of Urban Area Plan for Pabna Municipality
 
ONLINE FOOD ORDER SYSTEM PROJECT REPORT.pdf
ONLINE FOOD ORDER SYSTEM PROJECT REPORT.pdfONLINE FOOD ORDER SYSTEM PROJECT REPORT.pdf
ONLINE FOOD ORDER SYSTEM PROJECT REPORT.pdf
 
Employee leave management system project.
Employee leave management system project.Employee leave management system project.
Employee leave management system project.
 
DC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equationDC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equation
 
notes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.pptnotes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.ppt
 
Call Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort ServiceCall Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
 
KubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghlyKubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghly
 

Shaft

  • 1. PRESENTATION TOPIC SHAFT DESIGN AND SINKING Presented By Under guidance of Pramoda G Dr. Balasubramanian A 2nd semester, Geology Professor
  • 2. Shaft Definitions Shaft- A rotating member used to transmit power. Axle- A stationary member used as support for rotating elements such as wheels, idler gears, etc. Spindle- A short shaft or axle (e.g., head-stock spindle of a lathe). Stub shaft- A shaft that is integral with a motor, engine or prime mover and is of a size, shape, and projection as to permit easy connection to other shafts Line shaft- A shaft connected to a prime mover and used to transmit power to one or several machines Jackshaft- (Sometimes called countershaft). A short shaft that connects a prime mover with a line shaft or a machine Flexible shaft- A connector which permits transmission of motion between two members whose axes are at an angle with each other
  • 3. What does it mean “shaft design”? shaft design ? 1. Material selection 2. Geometric layout 3. Stress and strength: static and fatigue 4. Deflection and rigidity: bending defl., torsional, twisting, slope at bearings and shaft- supported elements, and shear deflection due to transverse loading on short shafts. 5. Vibration: critical speed Material selection • Many shafts are made from low carbon, cold-drawn or hot-rolled steel. • Alloy steel: Nickel chromium and vanadium are steel Nickel, some of the common alloying materials. However alloy steel is expensive. • Shafts usually don’t need to be surface hardened unless they serve as the actual journal of a bearing surface. • Hardening of surface (wear resistant): case hardening and carburizing ; cyaniding and nitriding.
  • 4. Purpose of a Shafts • To access an ore body . • To transport men and material to from underground workings . • For hoisting ore and waste from underground. • Storage of nuclear waste Shaft Cross Sections 1. Rectangular Shafts Most shafts that were constructed in the 1900’s were of a rectangular cross- section because of the shape of the pieces of equipment that were taken down the shaft i.e. cages, skips, and counterweights were all square or rectangular in nature and so it made a lot of sense to sink or mine rectangular shafts. Breaking a square / rectangular shutter was however problematic and this slowed down the rate of sinking.
  • 5. 2 Circular Shafts Almost all the hard rock mines now have circular shafts because the cross section provides good geometry for airflow and good rock support characteristics. The circular shutter is ease to move when doing concurrent lining resulting in faster work progress during sinking operations. This is an important aspect when it comes to the cash flow of the project. 3 Elliptical Shafts Elliptical shafts were designed as an alternative to large circular shafts by simply adding half moons along the main axis. This had the effect of reducing the circular excavation and therefore the cost of sinking the shaft.
  • 6. • Identify possible mining layouts • Define standard mining block (stope or panel size) per layout • Calculate steady state conditions per level • Define steady state inputs/outputs requirements per level • Determine minimum access dimensions to cater for equipment and ventilation • Calculate development requirements to get to steady state • Simulate full level production from start of block to ore body extremity • Determine the maximum number of levels that will operate simultaneously Determining the rate of mining can be as follows:
  • 7. 1 Criteria for choosing a Vertical Shaft A vertical shaft should be chosen under the following conditions: • Ore body should be steep dipping • Ideal for deep ore bodies • Provides quick access to ore body • Most economic hoisting method for depths exceeding 500m • Quicker return on capital investment 2 Criteria for choosing a Decline or Inclined Shaft A decline or inclined shaft should be considered under the scenarios: • Flat dipping ore body • Shallow ore bodies • Require high throughput • Require low initial capital costs • Want to avoid some of the environmental concerns (headgear)
  • 8. Choosing the Right Shaft The size or dimensions of each shaft will differ according to the intended duty for each unit. There are three types, namely: vertical, decline and inclined shafts. a) Narrow tabular deposits (steep & flat dipping – gold, platinum, etc) b) Wide tabular deposits (coal, potash) c) Massive deposits (copper, nickel, iron ore)
  • 9. Different types of shafts Shaft type Diameters (m) Depths (m) Mining ventilation 1-6 50-1500 Mining ore passes 3-7 50-1500 Mining access shafts 5-10 50-1500 Water treatment shafts 1-3 20-100 Tunnel access shaft 5-20 10-50
  • 10.
  • 11. Objectives Introduction Definition Shaft collar Shaft sinking methods Down-the-hole shaft sinking method Wood/steel piling Open caisson Cementing process Freezing process Types of shafts
  • 12. Introduction shaft sinking, excavation from the surface of an opening in the earth. Shafts, which are generally vertical, are usually distinguished from tunnels, which are horizontal. Little difficulty is experienced in shaft sinking through solid rock, which contains little water. Shafts sunk in loose water-bearing soils and lined with cast iron or with concrete masonry 1 to 2 ft (30-61 cm) thick, built in sections as the work advances. Shaft sinking through rock is generally accomplished by blasting. Diameter and depth depends upon the type of the shaft Shafts are usually circular or rectangular.
  • 13. Definition Shaft: A vertical or inclined tunnel from surface for the conveyance of men, materials, hoisting ore, pumping water and providing ventilation. Sinking: The work in excavating a shaft. Shaft sinking: It may be described as an excavation of vertical or inclined tunnel from surface for conveyance of men, materials, ventilation, pumping water, in addition to hoisting ore and waste rock. It is also called Shaft Construction or Shaft Mining.
  • 14. Shaft collar On the surface of an underground mine, a collar is required for a shaft or raise entry, Collars are also required For ventilation shafts, service shafts, and for all raises that reach surface. collars are normally lined with concrete Methods of shaft sinkingThere are different methods of shaft sinking/construction. Actually three possible methods allowing a shaft to me sunk through highly weathered over burden on the basis of Excavation and Wall support. These are; Down-the-hole Shaft sinking Methods Remote Shaft sinking Methods Raiseboring Method
  • 15. Down-the-hole-Shaft sinking method 1. Rock bolting & meshing 2. cast-in-place lining 3. pre-cast lining 1. Drilling & blasting 2. shaft-boring mucking 3. V-mole with pilot hole
  • 16. Excavation method Drilling & blasting: A shaft is constructed by drilling holes and filling them with explosives. Using this method, drilling and blasting can sink around 5-10 metres in one blast. This is very labour-intensive, unsafe and has high running costs. The most viable alternative for shafts up to 100m in length.
  • 17. Mucking: The operation of loading broken rock by hand or machine, usually in shafts tunnels. Note: Muck, any useless material produced in mining. mucking out cuttings from the bottom of the shaft. Usually this would require some skip-hoisting, bucket-hoisting or clam- grab equipment.
  • 18.
  • 19. V-mole with pilot hole The V-mole is an improvement on the concept of the shaft boring machine. Before boring, a pilot-hole is drilled, to assist in both cuttings removal and guiding the machine along the correct path. The V-mole uses grippers to hold on to the side of the shaft . The V-mole is a costly machine not suited for drilling short shafts.
  • 20. Wall supporting methods Rock bolting and meshing A wire mesh is fastened to the walls with evenly spaced rock bolts. Rock bolting is a commonly used, cheap method. The rock-bolts increase normal stresses on joints so that shear failure along joints becomes more difficult. Often rock bolts and mesh are used as a basis for shotcreting. Water in-flow during shotcreting severely reduces the quality of shotcrete.
  • 21.
  • 22. Cast-in-place lining It is possible to cast concrete rings as the shaft sink progresses. This method provides a smooth, watertight and permanent lining for the shaft. The casing can be reinforced to cope with horizontal stresses (i.e. ring- shaped reinforcement) making the casing elements more economical.
  • 23.
  • 24. Pre-cast lining segments In sands, mudstone and sandstone, steel, pre-stressed concrete or composite liners with a smaller diameter (i.e. up to the 4.5 dia: )than the shaft are lowered after drilling out the hole. Concrete can then be poured behind the walls to create the lining.
  • 25. Shaft sinking methods a) Wood/Steel Piling The first set of piles, forming a circle around the shaft site is started at the surface. As the piles are driven down, the ground is excavated, and a circular crib is put in every few feet. In this way the shaft is sunk in a series of short wooden cylinders. b) Open Caisson In this method the shaft is started by digging a shallow excavation and placing a cutting shoe on the bottom of the pit. The ground inside and just under the shoe is excavated and the lining is built up as the shoe sinks.
  • 26. c) Cementation Process Cavities and fissures are filled with quick-setting cement under high pressure then allowed to set. Cement pumps are designed for pressure as high as 5000 lb/sqin. d) Freezing Process This method was first used in 1883. The wet round is artificially frozen and then blasted and excavated as though it were solid rock. From 20 50 holes are drilled on the circumference of a circle. Circulating pipes placed in the holes and a calcium or magnesium chloride solution is pumped through the pipes to freeze the ground.
  • 27. CONCLUSION • Shafts for a newly founded ore body or indeed existing ore reserves. • The methodology is cannot be avoid the optimization process to come up with best economic option. • Shaft must have adequate torsional strength to transmit torque and not be over stressed. • Shafts are mounted in bearings and transmit power through devices such as gears, pulleys, cams and clutches. • Shaft must sustain a combination of bending and torsional loads
  • 28. REFERENCE 1. J.E Shigley and C.R Mischke , Mechanical Engineering Design , McGraw Hill Publication, 5th Edition. 1989. 2. M.F Spotts, Design of Machine Elements, Prentice Hall India Pvt. Limited, 6th Edition, 1991. 3. Khurmi, R.S. and Gupta J.K., Text book on Machine Design, Eurasia Publishing House, New Delhi. 4. Sharma, C.S. and Purohit Kamalesh, Design of Machine Elements, Prentice Hall of India, New Delhi, 2003.