Showing posts with label benefits of screw piling. Show all posts
Showing posts with label benefits of screw piling. Show all posts

Wednesday, 25 January 2017

CAN’T SEE WOOD FOR THE TREES? WHY NOT SCREW?

by Rodney Appleby, New Business Manager

Often in the feasibility stage the pros and cons of bored piles vs timber piles vs UC piles vs pad
foundations get weighed up and compared.  Ultimately, the decisions we make have to work on a technical level… and then be economically viable.
                        
Piling can literally be as easy as drilling a hole and filling it with concrete! But the times it’s not that easy (as in 99% of the time), if you’ve not done your homework, and you chose the wrong technique, you will be riding the horse of pain off into a lonely sunset.
Let’s say you decided timber piles (both driven and concrete encased) were the way to go… They’re generally very cost effective, and relatively simple to install.  But did you consider screw piles?  And why, or when, would a screw pile be a superior option to timber? 

MATERIAL COST: 
On the face of it, and in 95% of cases, there is no contest when comparing $/kg of timber to steel.  So how can a screw pile compete?  Well, there’s more to bread than just flour, yeast, and water.
To make up for the imbalance in material cost – you need to think smart!

DESIGN LOADS:
A timber pile is very limited!  Typically loads of 100-200kN in compression, and dodgy in tension where you would rely on skin friction and then get a very sudden failure. Comparatively a screw pile can take over 4,000kN in compression, and over 3,000kN in tension. 
The structural properties of steel over timber are huge!  Combine this with a big helix sitting at the toe of our piles (and up to 5 of them on 1 pile!) and it’s clear this is a key point of difference!  SCREW PILES CAN TAKE MUCH MUCH BIGGER LOADS.
Now you can re-design a two timber piles for one screw pile ratio solution (2 for 1), 3:1, or 4:1.  We’ve seen as much as a 6:1 ratio alternative.  It also introduces another benefit, as less piles means less pile caps – which in turn drives the cost down.  Now the screw pile solution can provide an overall benefit compared to timber.
Bigger loads per pile = less piles = less pile caps = less cost

PLANT, NOISE & VIBRATION: 
The plant to install screw piles is very similar compared to that of a timber pile.  Large excavators ensure that the plant to install either solution is rather compact and nimble. However the drop-hammer attachments for timber piles provides more noise and vibration to operate. CLUNK! CLUNK! CLUNK!  All project long!  You’ll really feel that vibration particularly as the pile hits the hard layer.  Vibrator attachments for temporary casings also create additional noise and vibration.
Compare this to installing a screw pile – where there is literally more noise and vibration when tracking to the pile position than the installation process itself.  This is why screw piles are a preferred solution to electricity, oil and gas industries – where sensitive and very expensive plant cannot afford the risk of any vibratory damage.
Screw Piles = less noise and vibration (and risk) per day timber.

ENVIRONMENTAL & TMP:
Often contractors will pre-drill a starter hole to help stand the timber pole upright.  If so, make sure you’ve allowed to handle the spoil, and cart it off site.  Erosion and sediment control is a major with wet surfaces.  It gets tracked out on to the road, and into drains. Silt fences, wheel washing (man + waterblaster), and traffic management isn’t cheap over the life of a project.
Contaminated spoil? New Work Safe H&S rules require the client, consultant and contractor to actively manage this risk. Tip fees, additional PPE, handling, cartage must now be budgeted for.
Screw piles = no spoil = no ground water = no silt controls = no potential environmental incident.
Screw piles = no spoil = no unforeseen contamination variations = no H&S incidents.
Screw piles = less trucks + no spoil = no wheel-washing = less TMP $$ & no potential incident

DESIGN & TESTING:
The Capacity check via Hiley Formula???  See also “rough guess!” Even if you stipulate PDA testing most piling contractors will tag out of it – so they can have the “lowest possible cost”.  Check your standard specification – pile heave is not uncommon, so make sure you check the contractor re-hit his piles 24hrs after achieving the set.
Screw piles can factor the cost of a static load test at the start of a project to give everyone certainty.  We also have strong correlations between the torque applied to a pile and pile capacity.  Piletech record torque readings for every pile, which are reviewed by our Chartered Professional Engineers.
Screw pile testing is completed upfront or during the project without delays – no hidden extras.

DEPTH & DESIGN CHANGE:
Ideally a timber pile is less than 10m.  After 10m (to a maximum of 18m) you require a splice joint – and you’re now introducing additional cost, and diminished design capability. 
Piletech have achieved a max depth of 48.5m – stopping only because we hit the founding layer. When you splice a screw pile there is no diminishing the design capability.  Infact – the deeper you go – the more cost effective screw piling becomes! 
Let’s say you’re borelogs weren’t completely representative across your site.  It’s inexpensive to weld or cut a screw pile and adjust pile length – which cannot be said when changing design to go deeper with timber.
And if the soil is absolute rubbish then screw piles can add multiple helices.  We’ve placed five 900Æ helices on a pile shaft to found our piles at shallower levels.  You can’t do that with timber!
Screw piles = potential to found on intermediate layers = multiple helices = massive cost savings.
Screw piles = easy to redesign and go deeper when the geotech changes.

So hopefully by now you’re starting to get to thinking that you’ve got nothing to lose by asking Piletech to give a free Rough Order Cost to see if they’re within the ball park of my driven UC pile design. 


Check out “Hammered? Why not Screw?” & “Bored? Why not screw?” for a review of bored piles and driven UC piles.

Monday, 12 September 2016

HAMMERED??? WHY NOT SCREW? Part 2

HAMMERED??? WHY NOT SCREW?

by Rodney Appleby, New Business Manager

PART II: The stuff you can’t touch…

Often in the feasibility stage the pros and cons of bored piles vs timber piles vs UC piles vs pad foundation get weighed up and compared.  Ultimately, the decisions we make have to work on a technical level… and then be economically viable.

Piling can literally be as easy as drilling a hole and filling it with concrete! But the times it’s not that easy (as in 99% of the time), if you’ve not done your homework, and you chose the wrong technique, you will be riding the horse of pain off into a lonely sunset.
Let’s say you had decided driven UC piles were the way to go…  But did you consider screw piles? And why, or when, would a screw pile be your best option?

DESIGN: 
Are there tension loads?  With a UC – forget about it!  Screw piles can embed themselves into hard layers, and, with a big helix at the base, generate their capacity through end bearing.  This allows us to generate much higher loads, especially in tension.
End-bearing or skin friction?  UC’s have a very small area on which to bear, so it needs to be “rock solid”.  Skin friction as a means of generating capacity is less reliable and can require horrendously deep piles to achieve the desired loads, particularly if there are liquefiable layers. 
This is where a screw pile comes into it’s own!  Is there an intermediate hard layer? Often this layer may not be enough to provide adequate end bearing using a UC – but with a significantly larger bearing area that a large diameter helix offers – suddenly you may be able to halve the length of the piles – thereby reducing material cost as well as installation time.
And if the soil is absolute poop then think about multiple helices.  We’ve put up to five 900Æ helices on a pile shaft to help found our piles at a shallower level.  You can’t do that with a UC!
Screw piles = potential to found on intermediate layers = multiple helices = massive cost savings.

TESTING:
A typical driven UC specification will require a percentage of piles to be Pile Driver Analyser tested – otherwise known as PDA testing. This costs money and it takes time, and a lot of lazy contractors will tag out of it, stating they’ll check their pile capacities with the Hiley Formula…. see “rough guess for pile capacity calculation!”  The designer re-asserts PDA is required… see time delay… see variation.
Sometimes soils work in mysterious ways, and pile heave is not uncommon. Did you also make sure that the contractor re-hit his piles 24hrs after achieving the set? 
Screw piles can factor the cost of a static load test at the start of a project to give everyone certainty.  We also have strong correlations between the torque applied to a pile and it’s pile capacity.  Piletech record torque readings for every pile, which are reviewed by our Chartered Professional Engineers.
Screw pile testing is completed upfront or during the project without delays – no hidden extras.

NOISE & VIBRATION:
This really is a no brainer.  If you’re driving UC’s you’ll be hearing the “ping” for miles and feel the shudder beneath your feet…. This could not only result in complaints from neighbours but maybe even a few cracks pop up that the neighbour “never noticed in my house before”. Dilapidation surveys can cost around $1-2k per house. Hopefully the complaints don’t temporarily shut the site down.
Watch out the Contractor doesn’t charge extra to reduce noise because of a methodology change!
Is your project in a school? Kindergarten? Hospital? Oil & Gas? Screw piles are the pile of choice in the electricity world because vibration monitors placed on adjacent transformers don’t know we’re there! 
Screw piles = low noise = next to no vibration = no dilapidation surveys = no noise complaints = reduced risks to your project…. AND NO HEADACHES!

QUALITY:
Did you ever hear the story of a contractor who drove UC’sthat lost their verticality? the UC essentially followed a “U” shape, and came back up, across the road – and pushed up a car!!!  The ability to control inclination, correct it, and monitor it is not easy, nor cheap.
Conversely, our record screw pile is to a depth of 48m.  We’d go deeper – but we hit the hard stuff and didn’t need to.  We regularly go 40+ metres without issues.  The true-helix keeps the pile on course, and with an open pipe you can tell if our pile lost verticality.  Good luck with that on a UC!
Screw piles = better quality control.
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So hopefully by now you’re starting to get to thinking that you’ve got nothing to lose by asking Piletech to give a free Rough Order Cost to see if they’re within the ball park of your current bored pile design. 


Thursday, 1 September 2016

HAMMERED??? WHY NOT SCREW? Part 1


HAMMERED??? WHY NOT SCREW?

By Rodney Appleby, New Business Manager

PART I: The stuff you can see and touch.

Often in the feasibility stage the pros and cons of bored piles vs timber piles vs UC piles vs pad foundation get weighed up and compared.  Ultimately, the decisions we make have to work on a technical level… and then be economically viable.

Piling can literally be as easy as drilling a hole and filling it with concrete! But the times it’s not that easy (as in 99% of the time), if you’ve not done your homework, and you chose the wrong technique, you will be riding the horse of pain off into a lonely sunset.
Let’s say you had decided driven UC piles were the way to go…  But did you consider screw piles?  And why, or when, would a screw pile be a superior option?

MATERIALS: 
A pipe compared to UC’s ($/m) – it’s relatively similar. 
The key ingredient here is lead time!  If you’re doing a big job, to keep the costs down, you’ll have to order from China, Indonesia, Korea… wherever… but the Contractor will always tag a 3 month lead time before they can start.  If it’s a smaller job, then they might buy it from Fletcher EasySteel off the shelf, but then you’ll be paying a much higher rate.
Technically, the same thing applies to screw pile pipe…. unless you’re Piletech… Piletech holds between $2M-$3M worth of stock (both pipe and plate) in our yards so that we can turn on a dime, and get your project started – whilst keeping costs low because we bought in bulk some time ago.
Piletech Screw piles = less lead time + cost savings.

BIGGER PLANT = BIGGER $$$: 
For small piles the plant will be similar.  But deeper piles with larger loads require larger drop hammers and leader frames, or vibro-hammers, and a crawler crane.  This means:
·         More upfront costs – as crawler cranes cost between $10k-$30k to mobilise,
·         Take 1 day to mobilise and 1 day to demobilise,
·         Cost around $2-4k per day more than typical screw piling plant, (considering all site plant and labour).
·         Reduce the area available on site, so no room to “swing the arms” safely, and thus…..
·         Piling productivity will drop. We regularly install 10-20 piles a day to 24m, and would estimate being 20-30% quicker than similar length driven UC’s.
o   Note: each day more = another $2-4k the client will have to pay for.
Cranes and leaders typically costs more per day than screw piling, with more “one-off” costs.

THE FOOTPRINT
Crawler cranes and leaders?  On a small site even turning becomes an issue.
Screw piling plant is smaller, quicker, nimbler, easier, and safer!!!

ENVIRONMENTAL & TMP:
Often contractors will pre-drill a starter hole to help stand the UC’s upright.  If so, make sure you’ve allowed to handle the spoil, and cart it off site.  Erosion and sediment control is a major with wet surfaces.  It gets tracked out on to the road, and into drains. Silt fences, wheel washing (man + waterblaster), and traffic management all cost more money.
Contaminated spoil… new Work Safe H&S rules state the client, consultant and contractor need to be actively managing this. Tip fees, additional PPE, handling, cartage all cost more money.
If you don’t manage these the council shut your site down, with fines and even convictions!
Screw piles = no spoil = no ground water = no silt controls = no potential environmental incident.
Screw piles = no spoil = no unforeseen contamination variations = no H&S incidents.
Screw piles = less trucks + no spoil = no wheel-washing = less TMP $$ & no potential incident

CONNECTION DETAILS:
Another potential hidden killer.  Piling contractors often tag out of cutting the piles to height, and then welding nelson studs, or top plates on.  At $200-$500 per pile – this will chew a hole in your profit if not allowed for. 
Screw piles typically have a few bits of rebar coming out of the pile which are concreted in.  No sweat, and allowed for in our costs.
Make sure you allow for connection costs when comparing apples and pears.

So hopefully by now you’re starting to get to thinking that you’ve got nothing to lose by asking Piletech to give a free Rough Order Cost to see if they’re within the ball park of my driven UC pile design. 
Tune in soon for “Hammered? Why not Screw? Part II:  The stuff you can’t touch...”



Thursday, 25 February 2016

BORED??? WHY NOT SCREW? Part II

By Rodney Appleby, New Business Manager


PART II: The stuff you can't touch....


Often in the feasibility stage the pros and cons of bored piles vs timber piles vs UC piles vs pad foundation get weighed up and compared.  Ultimately, the decisions we make have to work on a technical level… and then be economically viable.
Piling can literally be as easy as drilling a hole and filling it with concrete! But the times it’s not that easy (aka 99% of the time), if you’ve not done your homework, and you chose the wrong technique, you will be riding the horse of pain off into a lonely sunset.
Let’s say you had decided bored piles were the way to go…  But did you consider screw piles?  And why, or when, would a screw pile be your best option?

DESIGN: 
This is one of the FIRST areas to assess whether screw piles are an option.  If they can take the loads on the building, then it’s definitely worth further investigation.
We have load tested our screw piles to achieve:
·         Over 4000kN axial
·         Over 3,250kN tension, and
·         Up to 400kN for lateral loads… (with a shear key this can rise to over 650kN..)
Higher loads still!….. Just install 2 for 1 screw:bored piles… Or 3:1… Often it will still be cheaper! 
Screw pile designs are taking much bigger loads now.  Ask the experts…

PROGRAMME:
I’ve completed a rough programme graph comparison below between a screw pile operation and a LDA (Large Diameter Auger) bored pile… it’s dependent on ground conditions, access, and plant mobility.  I’ve assumed the bottom 2m is into competent material, and that access is relatively easy, and includes mobilisation time.



I think the graph speaks for itself.
So a longer programme will effect pricing in two ways:
·         The cost of all piling plant and labour on a bored piling job is typically $3-4k/day more than that of a screw piling project… So every extra day really hurts the bottom line.
·         P&G costs go up.
Screw piling is much much quicker – and this results in cost savings!

ENVIRONMENTAL & TMP:
Pile arisings, spoil, dirt, crap… Whatever you call it, it needs to get off site.  Erosion and sediment control is a major with wet surfaces.  It gets into drains and tracked out on to the road. Silt fences, wheel washing (man + waterblaster), and traffic management all cost more money.
Contaminated spoil… New Work Safe H&S rules state the client, consultant and contractor need to be actively managing this. Tip fees, additional PPE, handling, cartage all cost more money.
If you don’t manage these the council shut your site down, with fines and even convictions!
Screw piles = no spoil = no ground water = no silt controls = no potential environmental incident.
Screw piles = no spoil = no unforeseen contamination variations = no H&S incidents.
Screw piles = less supply trucks + no spoil = no wheel-washing = less TMP $$ & no potential incident

NOISE & VIBRATION:
Large casings require vibro-hammers. They’re very noisy and can often be felt hundreds of metres away from the site.  This could not only result in complaints from neighbours but may be even a few cracks that neighbour “never noticed before”. Dilapidation surveys can cost around $1-2k per house. Hopefully the complaints don’t temporarily shut the site down.
Watch out the Contractor doesn’t charge extra to reduce noise because of a methodology change!
Screw piling is often the pile of choice in the electricity world because vibration monitors placed on the transformer never know we were there!
Screw piles = low noise = next to no vibration = no dilapidation surveys = no noise complaints = reduced risks to your project.
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So hopefully by now you’re starting to get to thinking that you’ve got nothing to lose by asking Piletech to give a free Rough Order Cost to see if they’re within the ball park of your current bored pile design. 


Wednesday, 10 February 2016

BORED?? WHY NOT SCREW? Part I

By Rodney Appleby, New Business Manager


PART I: The stuff you can see and touch.


Often in the feasibility stage the pros and cons of bored piles vs timber piles vs UC piles vs pad foundation get weighed up and compared.  Ultimately, the decisions we make have to work on a technical level… and then be economically viable.
Piling can literally be as easy as drilling a hole and filling it with concrete! But the times it’s not that easy (aka 99% of the time), if you’ve not done your homework, and you chose the wrong technique, you will be riding the horse of pain off into a lonely sunset.
Let’s say you had decided bored piles were the way to go…  But did you consider screw piles?  And why, or when, would a screw pile be your best option?

MATERIALS: 
Blaringly obvious – concrete and some rebar will always be cheaper than the high cost of steel casings. But as we all know, the cost of a cake is more than just flour, water, sugar and eggs.
There’s more to cost of a pile than just materials…..

THE DIRT & CASINGS: 
One of the largest risks to a project is always in the work in the ground.  So you’ve got to make sure you’ve done your homework on the Geotech reports.  It may be a hard cost to swallow up front with no return on your money but money spent now will save more later.
In my earlier days I learned a rough rule of thumb: If the “N” value of the SPT test is less than 15 it will probably collapse… if the “N” value of the SPT test is above 20 it will probably hold up.  Also facto the soil types (eg. sands=uncohesive  vs clays (very cohesive), and where the water table is.
If a ground collapse is possible – then you need temporary casings. Trying to “get away with it” will condemn the piles to death as collapse of the pile bore will mix dirt with concrete around your rebar. 
“Joe-blow-contractor” can install 6-8m piles with his pendulum auger, and a small vibro attachment. Beyond this the ability of a simple excavator to remove (and not “rip”!) the casings out becomes harder. Now you need a crawler crane, with a vibro hammer – and you’re costs now start to rise significantly! 
FYI: permanently cased bored piles have more steel than a screw pile – so must be more expensive.
The crapper the soil, and the deeper they go – the more likely screw piles may be your best bet!

BIGGER PLANT = BIGGER $$$: 
A crawler crane and vibro-hammer will:
·         Cost between $10k-$30k to mobilise
·         Take 1 day to mobilise and 1 day to demobilise.
·         Cost around $2-6k per day more than typical screw piling plant (considering all site plant and labour).
·         Reduce the area available on site, so no room to “swing the arms” safely, and thus…..
·         Drop piling productivity. We regularly install 10-20 piles a day to 24m.  Bored piling would be lucky to install 4 piles per day.
o   Note: each day more = another $3-6k the client will have to pay for.
·         Increase risk… Contractors will now add a risk contingency sum of an extra 2-10% mark-up.
A bored piling operation typically costs more per day than screw piling, with more “one-off” costs.

THE FOOTPRINT
Crawler cranes, drilling rigs, excavators, vibro hammers, site offices, foreman’s containers, temporary casings, reinforcing cages…. Bentonite/polymer tanks?? Spoil trucks coming/going…. Concrete trucks coming/going. Tremmie pouring pile.
Now combine a main contractor starting the pile caps to reduce the overall foundations programme!
The key to quick piling is being the only contractor on site… It’s not only commercially astute, but more importantly it’s safer!
Screw piling has smaller plant, less materials/deliveries, no spoil removal and less concrete trucks.
Screw piling plant is smaller, quicker, nimbler, easier, and safer!!!
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So hopefully by now you’re starting to get to thinking that you’ve got nothing to lose by asking Piletech to give a free Rough Order Cost to see if they’re within the ball park of your current bored pile design. 


Tune in soon for “Bored? Why not Screw? Part II:  The stuff you can’t touch.”

Monday, 3 February 2014

Good Connections

James Wood – Piletech Manager




One of the benefits of screw piling is the speed with which it is delivered on site.

The final process on site within the piling sub-contract usually involves the connection detail.  This is typically achieved by placing reinforcing bars into the concrete infill within the steel tube of the screw pile.


A typical Screw Pile Connection



However, there are many ways to form a connection, dependent on load requirements.

A few of the more common examples are:
  • Reid bars with flange plate nuts
  • Annuli - welded to the pile
  • Cage style arrangement where pile allows
  • Shear studs or dowels
Where possible, we will propose the use of straight bars - this makes it easier for following trades to place cages, saving further valuable time on site.

Typically the screw pile designer will propose a connection detail.  However as the connection detail can affect what happens above it, the structural engineer's involvement is required to ensure design requirements are met.  A collaborative approach to this element ensures Good Connections - a technically suitable and economical result.

Factors to consider when developing connection:
  • Design loads
  • Bar development length
  • Bond between concrete and pile wall (typically this is greater than bar development)
  • Minimum steel to concrete ratio
  • Constructability for following trades
For more information about design and connection of screw piles, contact one of our team or visit: