Showing posts with label drones. Show all posts
Showing posts with label drones. Show all posts

Friday, May 12, 2023

History of Oil-Finders Friday: South Texas Serpentine Plugs

 The 1915 headlines read, ‘Oil in an Igneous Rock,” which certainly piqued the curiosity of oil finders, used to displaying their porous sandstone and limestone cores, stained with oil, in their office display cases.


But, in South Texas, they had done it. They had found oil in a green igneous rock they dubbed “serpentine,” even though it was actually an altered tuff resulting from underwater volcanic eruptions.


Udden, J. A., and Bybee, H. P., and others, 1916

The adventure had started a year earlier. In 1914, Fritz Fuchs, a rancher deep in south Texas near the small town of Thrall, decided to drill a water well for his cattle. He did not encounter water, but at about 300 feet, he brought up a strange mix of oil, salt water, and what appeared to be weathered igneous rock, green in color. Mystified, he called the University of Texas geology department to see if they could shed light. The result was a well drilled in February 1915, which was the discovery well for the Thrall field, and the first of many so-called “serpentine plugs.”

At least one study has pointed out that the deposition of the tuffaceous mounds occurred in conjunction with submarine volcanic vents which emitted volcanic ash which then was deposited in the form of mounds, which subsequently altered to palagonite. The volcanic activity occurred with the deposition of chalk and marl of the upper Austin and lower Taylor Groups, which served as both source and seal. 


Interaction between the submarine volcanic system and carbonates

It turns out that all along a belt of volcanic activity, there were similar submarine volcanic eruptions and they became perfect reservoirs for oil generated in the adjacent source rocks. The stratigraphic traps were found in the porous zones of tuff, and also in porous zones in the surrounding carbonates, and in traps in sands draping over the serpentine plug, and in fracture porosity in the carbonates near the plugs (Loucks, 2022).

The wells could be incredibly prolific, with a feature covering less than 10 acres producing 100,000 barrels. Others were not as prolific. However, by 1986, more than 47 million barrels had been produced (Matthews, 1986).

The serpentine plugs are found associated with the volcanic centers that align with the pre-Tertiary Balcones and Luling regional fault and fracture systems. Some of the minerals in the tuffaceous mounds are magnetic, resulting in magnetic anomalies. 

Some of the minerals in the tuffaceous mounds are magnetic, resulting in magnetic anomalies. While the first oil-rich serpentine plug was discovered by accident, science was used to discover dozens of the features scattered along the belt of pre-Tertiary-age submarine volcanic activity. The fact that the features tended to be shallow and of dramatically different lithology than the surrounding carbonates, and that were often oil seeps, made it possible to use new methods, which included surface geochemistry, in which soil samples were taken, and plants observed to see if they were affected by hydrocarbons in the soil. Second, newly developed magnetometers were used. Most were truck-mounted, and they were able to detect anomalies by means of differences in the magnetic field.

Source: Loucks, 2022

The features were small, and it took a lot of patience to find them, but when they did, the wells could be extremely prolific. Ranging from just a few feet deep, to 5,000 feet deep, the wells were inexpensive to drill.

Today, with high-resolution drone-mounted magnetometers, and highly accurate surface geochemistry, it’s possible to revisit a fascinating play, which to this day is one of the few areas of the world where oil is found in igneous rocks.

I love this play, and I’m thrilled to have an original copy of the November 25, 1916 Bulletin of the University of Texas published by the Bureau of Economic Geology and Technology which is dedicated to the Thrall Oil Field. 

References

Loucks, R. G., R. R. Reed (15 April 2022) Implications for carbonate mass-wasting complexes induced by volcanism from Upper Cretaceous Austin Chalk strata in the Maverick Basin and San Marcos Arch areas of south-central Texas, USA. Sedimentary Geology. Vol 432. 


Matthews, T. F. (1986) The Petroleum Potential of "Serpentine Plugs" and Associated Rocks, Central and South Texas. Baylor Geological Studies Bulletin, Spring 1986.  


Udden, J. A., and Bybee, H. P., and others, 1916, The Thrall Oil Field, by J. A. Udden and H. P. Bybee [and] Ozokerite from the Thrall Oil Field, by E. P. Schoch [and] The Chemical Composition of the Petroleums Obtained at Thrall, Texas, by E. P. Schoch and W. T. Read: University of Texas, Austin, Bureau of Economic Geology and Technology, Bulletin 66, 93 p.

Tuesday, March 13, 2018

Aerial Robotics Beyond Drones: Interview with Bob Dahlstrom, Innovators Series

We tend to think of drones as the only kinds of aerial robots, but Apellix has developed an aerial robot that can be used to deliver products instead of simply sensing or collecting images. Welcome to an interview with Bob Dahlstrom, CEO and founder of Apellix, a dynamic, new aerial robotics company.

1.  What is your name and your relation to innovation and robotics? 
Bob Dahlstrom – Growing up working at my parents’ hardware store from age 12 to my early 20’s provided me hands-on experience with the practical needs of people to fix, repair, or replace a wide variety of items – often with innovative mechanical solutions. Later, in the mid-80s while working in a “clean room” at an integrated circuit manufacturer and writing software code for the first time, I made the connection that the world was destined to have software interact with and instruct hardware, as we moved from physical and electrical mechanical systems to software-controlled systems.

Founding a software company in the 1990s that was finally, 13 years later, an “overnight success” provided me more exposure to software and is where I became unequivocally adamant that software was “eating the world”. Apellix is my first robotics company. To me, robots are software. Looking at things through a software lens, I believe aerial robotics (drones) are just flying computers and with the right sensors and data - and most importantly, software - they can be made to do most anything.


2.  What is Apellix?  How did you get started with it, and what is its mission? 
Apellix is a technology company focused on creating systems to keep workers safe. We are passionate about designing and creating software-controlled robotic systems that keep people out of harm’s way and save lives.

We live in a time when the fantastic has become ordinary. No longer do we have to imagine mythical machines and buildings out of science fiction movies. Our telephones are pocket computers now. Why are people still hanging from skyscrapers cleaning windows, or working from scaffolding cleaning and coating structures, when we have robotic systems that can do the work safer and most likely more effective and efficiently.


3.  How do aerial robots work and how are they different from drones?
This is a FANTASTIC question –An Aerial Robot includes a “robotic arm” and an “end effector”. A “robotic arm” is a type of mechanical arm, usually programmable, with similar functions to a human arm. Robotic arms may include a manipulator and may be connected by joints allowing either rotational motion (such as in an articulated robot) or translational (linear) displacement or can be a lance or probe. The terminus or end of the arm is called the “end effector” or probe tip. End effectors are the device at the end of a robotic arm, designed to interact with the environment. The exact nature of this device depends on the application of the robot.

An Aerial Robotics system includes a robotic arm with an end effector AND the ability to fly close to, touch, or modify a structure or surface. Just the fact of having an arm with an applicator / end effector on it requires flights wherein the lift platform (the drone) must fly with precision close to structures. Drones, and all aircraft in general, are designed to fly away from potential obstacles, not close to them.


4.  What are the main applications of the Apellix robots?
Apellix is an early-stage company and the leader in aerial robotics. It is the only company with proven capability to measure the thickness of steel on a 300’ flare stack or clean and paint a wind turbine 260’ off the ground. With proprietary circuitry, software, and power management systems, our Apellix-designed drones serve as industrial tools capable of all-day continuous work.

Our initial product, currently available for pre-orders, is in the field of contact-based Nondestructive Testing (NDT) for evaluating the properties of materials in industrial and infrastructure assets such as bridges, ships, oil & gas refineries, and more. For example, we test the thickness of steel or the protective coating of a bridge to ensure it is structurally sound.

The Apellix SmartBee™ platform provides the capability for multiple types of Nondestructive Testing. One example, designed for a ship manufacturer, conducts dry-film thickness (i.e. paint thickness) testing pursuant to SSPC-PA2 standards on vertical ferrous surfaces at height. The aircraft is piloted manually to the initial test location where the computer operator (pilot) engages the software using our PC / tablet-based user interface, and a pre-programmed sampling process begins. All actual testing is conducted under 100% computer control. During the sampling process, test results are provided in real-time to the operator on the base station (computer laptop or tablet), displaying the actual paint thickness measurement and whether the surface is compliant. Once the sampling is complete, the aircraft returns to a safe position and awaits pilot commands to direct it to the next location. For each measurement, environmental data, GPS positioning, project data, photo confirmation, and related aircraft data are stored for one-step download to an Excel spreadsheet (csv). Aircraft performance and use data are also tracked via Internet of Things (IoT) for predictive maintenance and development purposes.


5.  Why did you choose the robots to be aerial rather than placing them on scaffolding or some other fixed structure where they could move back and forth, but not have to be airborne? 
By freeing robots from the ground and allowing them to operate in 3-dimensional space, we have created a set of affordances not available to ground-based or place-bound robotics. One example of this would be painting a large cargo or cruise ship. Currently, to paint the side of a ship, it takes a crew of 30 workers 4 to 5 days to set up the scaffolding, paint, and remove the scaffolding. The paint is applied is 6 to 8’ sections (the length of a painter’s reach without moving to a new section of scaffolding) and “feathered” to ensure proper coverage at the edges of where a person can reach. This results in a large number of areas where the paint is overlapped. A tethered aerial robotic system, with paint and power on the ground, would allow painting to start in the far-left corner of the ship’s hull, move horizontally to the far-right corner, and turn off the paint. It would then move down to allow a 12” overlap, turn on the paint and proceed horizontally to the left. This efficiency enables a much better paint job with fewer potential failure points.

Apellix has conducted proof-of-concept testing in which our aerial robots successfully delivered water-based coatings using 3300psi industrial airless pump systems on vertical surfaces. We have tested at flow rates up to 1.6 gallons per minute. Apellix is currently conducting proof of concept testing where our aerial robots provide no-touch cleaning using non-combustible cleaning solutions and pressurized water rinsing. We expect to expand testing to include limited blasting as well. Apellix is currently seeking industry partners to support this additional testing and development.


6.  How do you compensate for wind and humidity when you are working on large ships, equipment, bridges, etc?
Apellix aerial robotic systems use large, computer-controlled, heavy-lift multi-rotor drones outfitted with various sensors and functions to allow precisely controlled flight close to structures. Manual control of such systems is unable to accomplish the precise flying and maneuvers required, thus software-controlled flight is crucial. While drones often operate in 15-knot winds, their operations are confined to keeping a tight camera focus on the target, so wind moving the drone a foot or two in any direction is not critical. In an aerial robotic system, such as those used by Apellix, flying inches from a structure a sudden gust of wind can be catastrophic.

The amount of time it takes to see something and move your finger is approximately two-tenths of a second. In that amount of time, a computer with a standard Intel Core i7 or similar processor can make 63 million calculations (~315,000 millions of instructions per second – MIPS), thus computer control can allow an amazing degree of control and stability, even in high winds.

As I like to say, aerial robots (and drones) are flying computers and, with the right sensors, they are data gathering machines. Each Apellix aerial robot has a full onboard computer with an Intel x86 processor, a full server-based operating system, and a custom-built Apellix sensor board, giving it the ability to collect a lot of real-time data, including environmental variables such as ambient air temperature, barometric pressure, relative humidity, atmospheric levels of oxygen and gases and more.

The Apellix WorkerBee™ is under development to enable aerial applications for cleaning and for spraying paint. Part of the efficiency of painting is what’s called the transfer efficiency ratio (Transfer Efficiency (TE)  = Weight of Material on the Target (WT) / Weight of Material Sprayed (WS) x 100%). For example, the average material loss is 30%, but moving the spray nozzle 7” from the optimal distance changes material loss to 50% or more. By knowing the humidity, temperature, recommended application rules, and more, we can calculate the optimal distance for the spray nozzle from the structure being coated, thus minimizing over-spray and under-spray.


7.  How do you overcome the limitations of a) battery life; and b) weight of the cargo.  Paint is heavy... 
Paint is heavy, and so are batteries. Our solution, in addition to the software-controlled aerial lift platform (the drone,) is to keep them on the ground and utilize an umbilical cord to send power and material up to the aerial systems. This allows for theoretical all-day operations, something needed in an industrial aerial robotics system. Of course, depending on the use case and customers’ requirements, we can also offer a non-tethered system for small touch-up or repairs.

8.  What have your experiences been thus far? 
The interaction of people and robots is complex and growing more sophisticated all the time. Apellix painting platforms are run by operators on the ground. They work at heights, without putting the operator in danger, and allow the work to be performed to greater precision via software control than a human can do. It replaces hours of work by humans. But it doesn’t take human control out of the loop.

It does change lives. Robotics are reducing occupational hazards. They’re saving our tax dollars for the corrosion prevention of public assets, such as highway bridges and battleships. They’re saving private dollars on protection of buildings, ships, above-ground storage tanks, and oil rigs.

Executives from around the world are flying into Jacksonville, Florida to speak with us about our innovations, we’re winning local, state, national, and international startup and robotic competitions, and industry awards such as a 2017 Innovation of the Year from the National Association of Corrosion Engineers (NACE).


It’s amazing working with magical flying machines every day. The technical work we do at Apellix today is possible due to the great work and science of those that have come before us. But more importantly, to me personally, the most memorable experience can be summed up from a recent conversation I had with the CEO of a company in the oil & gas space who said; “Bob, I’ve had to tell 5 mothers their sons are never coming home again”. If we can engineer out the risks of falls, injuries, and deaths from the job site and prevent these types of conversations from happening, that is a win for everybody.

Perhaps most satisfying to the A Team (Team Apellix) is that we’re adding to the greater body of knowledge, specifically data on the maintenance of expensive assets. We’re helping to save lives. And we’re at very least winning battles in the never-ending war on corrosion.

9.  What is the future for Apellix? 
Apellix will continue to work on and refine its SmartBee™ and its WorkerBee™ platforms and add additional features and functions. For example, now that we control, with great precision, the flight of an aerial robotic system in close proximities of structures and even touch structures we can add most any type of end effector or tip to the robotic arm. Thus, devices that are currently handheld and touched to the concrete on a bridge to measure corrosion of the rebar embedded into the structure can be placed on the Apellix aerial robotic system. This eliminates the need to rappel down a structure or utilize cranes or scaffolding to climb up to areas of the structure to take the readings.
As the advantages of the Apellix aerial robotic platform become more widely known and understood we fully expect to learn of a multitude of items of different types that can create value when carried or added to the platform.

The future is bright, keep your eye on Apellix.

Visit the Apellix YouTube Channel or follow them on Twitter

Wednesday, August 02, 2017

Drones and UAV Software

Software for drones and UAVs cover a wide spectrum of possibilities. They range from very basic cloud-based applications that you download onto your smartphone or tablet, to extremely sophisticated programs that will allow you to work with all kinds of data from many sources, including photogrammetry, thermal, hyperspectral, multispectral, laser, and more. Some programs and packages have a steep learning curve, while others are intuitive and you can develop basic maps and 3D images within a matter of hours.


But, let’s start with the basics.

What will you be using your drone-derived images for?  Let’s think about this a moment. Most drones and UAVs are used to create 3D images and also to try to detect anomalies.  So, what that means in practical terms is that you’ll need to be able to generate geo-referenced images that can be moved, manipulated, and rotated for a better look.  You’ll also need to be able to process data so that the values correspond to different colors, so that any anomalies really “pop” as in a heat map.

The second most basic issue is that of storage space and connectivity. If you’re able to use your phone and you have a good signal, you can take advantage of cloud-solutions and you can gather a lot more data. If not, you’re going to be stuck with what you can carry onboard, which means your sampling rate is going to have to go down quite significantly. It also means that you’re better off with a software package which allows you to adjust your sampling rate.

Keep in mind that software that contains pre-prepared applications will limit you, and you may not even know how you’re being limited. But, unless you’re NASA, a military contractor or a movie studio, chances are it’s not in your budget to pay millions of dollars for your drone’s software.

Here are some of the most widely-used drone software packages. Some are aimed more toward the lighter businesses uses, and others are appropriate for very demanding commercial applications.

In addition, some of the software includes flight planning as well as processing of the digital data once it has been acquired. Are you ready to upgrade your drone? Check out drones for sale.

It is good to keep in mind that for every day you spend in the field collecting information, you’ll spend at least two days at your computer in processing the information. You’ll spend even more if you use the data in the future for additional purposes, such as creating models for games or building simulations. 


DroneDeploy’s UAV mapping software is often the first mapping software that people use after they buy their first drone. It offers more tools and options than many of the software packages that come with the drones, and has the huge advantage of having a free “lite” version. With DroneDeploy, you can upload your data to the cloud. DroneDeploy gives you four main categories of images to choose from. Although they may not provide a wide array of options, they are easy and quick to use.
  •             Orthomosaics: Georeferenced, orthorectified
  •             Terrain models: Useful for topographic modeling. The maps have DSMs.
  •             NVDI analysis:  This is a “normalized difference vegetation index” that is used to identify live green vegetation. In this case, it is best to use a multispectral sensor.
  •             3D model:  DroneDeploy allows you to create rotatable 3D models and also point clouds.

DroneDeploy is widely used in real estate, inspections, security, agricultural, and event management.  

Identified Technologies - https://www.identifiedtech.com/
Identified Technologies is a robust solution for individuals and companies that use the images for construction, large infrastructure projects, massive inspection activities and more. They work well for civil and environmental engineers, as well as construction and project managers. Their programs are ideal for project management because they allow one to evaluate progress.

For a wide range of industries, with customized solutions.
  • Change Detection Technology (CDT)
  • Truck IQ
  • Contour Line Map and Orthomosaic
  • 3D Volumetric Analysis
  • As Built vs As Planned Overlay
  • Excavation Progress Tracking
  • Highway Construction 3D Model
  • Watch Fly Through Video
  • All standard mapping formats
  • Boomerang
  • ·       3D Meshes
  • ·       Contours
  • ·       Digital Surface / DSM
  • ·       Orthomosaics

Pix4D is often the program of choice for individuals and companies that need an easy to use solution that can be customized for many different uses. They are the favorite of many surveying companies because of the granularity of the georeferencing. Each 3D point in a point cloud is georeferenced. Pix4D is very robust and can be used to develop high resolution maps for commercial, industrial, and personal use.
  • Pix4Dmapper Pro: photogrammetry software for professional drone-based mapping
  • Pix4Dcapture: Flight planning mobile app for optimal mapping data with your drone
  •             Android
  •             iOS
  •             Sorts most drones // basemaps – Google Earth or ArcGIS
  • Can use any handheld camera or drone
  • Optimized
  • Direct to cloud
  • Georeferenced down to each 3D point in the point cloud
  • rayCloud editor
  • 2D and 3D models, 3D point clouds, digital surface models, and orthomosaics
  • Surveying
  • Agriculture
  • Construction
  • Real Estate

Datumate has a number of advantages for companies and individuals who focus on photogrammetry. Their software is ideal for surveying and civil engineering purposes.  They even have a case study in which they use drone photogrammetry to create 3D images of a car accident for the report. What gives their software packages an advantage is ease of use and the fact that one can process volumetrics without having a constant internet connection. I do not know if it means that you have to download the package and run it on your computer or if you are emailed a link to download the solution when it is ready. In either case, it’s very appealing
  • DatuSurvey: Photogrammetry software for land surveying, construction, infrastructure
  • DatuSite: 3D mapping software for construction and infrastructure
  • DatuFly:  Drone app for land surveying and construction
  • Site Survey Solution:  Surveying suite for civil engineering 

ENVI (Harris Corporation) -  https://www.harris.com/solution/envi
Harris Corporation is a multi-billion dollar company that provides geographical systems support to FAA, NASA and the U.S. military.  They have provided imaging software for satellites for many years as well. Thus it is no surprise that their software for use with UAVs and drones is extremely robust and flexible.  Harris provides a wide array of industry-specific solutions, and they also allow one to integrate additional data sets with theirs, and to incorporate geographical information data sets from many different sources to build a robust, multi-layer geographical information system.

The cost of ENVI can be higher than other solutions, but if you are a company that provides analytical services, it would constitute the backbone of your business.  Large shipping, logistics, and transportation companies also use ENVI along with other integrated services.

More Software for a Future Post
Other notable image processing software for georeferenced, 3D, orthomosaics, point clouds, and more. I will review them in a future post.
End of Part 1.
Drones for Sale: https://www.wingsland.org/drones-for-sale

Friday, July 21, 2017

Drones for Surveys, Methane Detection, Reservoir Characterization, More



Drones are becoming an almost indispensable tool in the oil industry, especially when it is necessary to inspect land, equipment and infrastructure in hazardous or hard-to-access conditions. Drones are also important for safety and security because the information is quick, accurate, and can be easily archived. But, those applications tend to be in the mid-stream (transportation and processing) and downstream (refining and distribution) segments of the industry. But what about upstream, in the exploration and development phase of the industry? Drones are used extensively there as well; they are just more subtle, and they do not create such a ubiquitous presence. This presentation reviews the main applications of drones and UAV-derived information in upstream oil and gas, which includes drilling and operations, as well as using drones for outcrop studies that are then used to create more accurate geological models, and better reservoir characterization. Be sure to watch the video which also includes a review of quadcopters with the best flight time

This presentation covers some of the most quickly growing uses of drone / unmanned aerial vehicle (UAV) uses in oil and gas exploration and development:


 Surveys
Site surveys in tricky terrain: Building locations, determining the best places to put the equipment and all the trucks during hydraulic fracturing, as well as positioning gates, fences, and cattle guards can be significantly expedited by using drone surveys. Seismic surveys require an evaluation of the land ahead of time. Archeological and endangered species surveys are required on many federal lands.

Oil and Gas Exploration: Direct Hydrocarbon Indicators
Surface geochemistry has been used since the very beginning: the methane seeps around the Caspian Sea in Baku, Azerbaijan, were indicators of vast reserves in the subsurface; in Tulsa “Creekology” usually meant going up the creek from where you saw an oil seep.
Now, a combination of methane seep detection and airborne gravity magnetics can be used to find “pinpoint play” reservoirs, such as pinnacle reefs in Michigan or serpentine plugs in South Texas.

Fugitive Methane Emissions
Methane detection is also used to detect fugitive emissions, which create safety hazards in pipelines and facilities.

In addition, EPA and BLM regulations require monitoring and reduction of methane emissions in oil and gas operations. While it is possible to mount static methane detectors or sniffers in compressors, gas gathering systems, and pipelines, they need to be maintained each year, and also installation can be slow. If it is necessary to install several thousand of them, the time sink can be significant. So, having airborne surveys has become a popular option. In the past, helicopters were used, because the sensors were heavy. Today, there are a number of quadcopters that have methane sensors onboard. There are different types of methane sensors, which range from sniffers, laser detectors, thermal (FLIR) with infrared, to hyperspectral.

Environmental Applications
Upstream operations must concern themselves water management, site restoration, archaeological surveys, rare / endangered species surveys, floodplain management, offshore / coastal erosion, flooding, spills, fires, and monitoring. In addition, drone surveys are useful in determining volumetrics, such as the amount of water in a pond.

Constantly Evolving Technology
Quadcopters are increasing in capacity, with longer flight times and better payloads (high-definition cameras, thermal cameras (FLIR), methane sensors, and more).  The weak link continues to be the issue of battery life: the lithium batteries average 25 minutes of flight time, and then must be recharged.

Sensors are evolving rapidly, and in the case of methane sensors, there is a rivalry among them, with spectroscopy, sniffers, optical sensors, infrared, hyperspectral, laser, and more.

Drones for Better Reservoir Characterization
Digital outcrop studies are useful in and of themselves, but when integrated with subsurface data of the same formations, the resulting models are truly surprising. They can be used to characterize reservoirs, and thus predict and depict heterogeneity, facies changes, lithology, fracture networks, and faults. The information can be used to calculate porosity and permeability, as well as to predict fluid flow and reservoir conditions.

While custom drones are used, many studies use off-the-shelf quadcopters, which are surprisingly affordable and have up to 30 minutes of flight time (bring extra batteries into the field).  

The key to developing an integrated reservoir model that includes digital outcrops and other information is developing a flexible and appropriate workflow.

  • Collect traditional information (outcrop data)
  • Digitize and georeference the conventional outcrop data
  • Collect satellite and drone-derived digital images of the same location (process and georeferenced)
  • Incorporate LIDAR (process and georeferenced)
  • Incorporate still photography (process and georeferenced)
  • Integrate all the surface data
Build a model using geocellular modeling with a program such as Schlumberger’s Petrel
After the surface digital outcrop 3D model has been created, it can be possible to find the corresponding sections and sequences in the subsurface, and then to create a cross section that reflects the seismic (synthetic seismogram) that has been correlated with the petrophysical and lithological data.  Relating the digital outcrop to the digital subsurface model can result in highly detailed seismic geomorphological models that reflect structure as well as subtle stratigraphic sequences and facies changes.

Getting started?
Drones for sale.

Monday, July 10, 2017

Some of Today’s Most Profitable Quadcopter Drone Uses

Drones, in particular, quadcopters, are quickly becoming the standard way to obtain high-quality images and other data for areas that have been hard or expensive to access. There are many quadcopter on the market, and their capabilities are unfolding rapidly, and companies such as WingsLand offer a wide array of capabilities, ranging from a mini-quadcopter that can fold up and fit in one's pocket, to larger drones capable of longer flight times (check out Drones for Sale).

Small drone services providers maintain at least four drones to assure there are sufficient back-ups and also redundancy in order to cover more than one job at the same time.  Technology is changing so quickly that it’s a good idea to have a plan for quick payout of the drone (along with the cameras and sensors), along with software licenses and cloud-based storage so that you can plan to upgrade your equipment and maintain a high-quality product.

It is important to keep in mind that FAA regulations still involve a number of restrictions, and it is illegal to fly near airports, over stadiums, and in cities. There are also a number of privacy and security issues which must be considered when developing the flight plan and workflow.

You also need to have a good idea of the flight time for your drone. Which are the drones that have the longest flight time, and what payload can they carry? You must investigate this aspect very carefully. Here is a link to the longest flight time drone and others.

Photography and 3D Imaging

Real Estate:  Drone photography is used in many ways in real estate, including surveys, sales and in evaluation of projects.  In addition, drone photography is used in conducting inspections of the structures as well as the grounds.
Sales and Surveys
High-end residential
Commercial buildings, especially for planning renovations
Reconnaissance / Opportunities assessment, especially in rural or coastal areas
Acreage / ranches / development
Inspections
Roofs
Commercial buildings: façade, windows, roof

DJI Phantom 5:  Built-in camera, easy to get started.

Events:  Drones are often used at weddings, festivals, sporting events, but the usage must be carefully planned in order to avoid legal issues. First and foremost are safety and privacy issues.  It is important to obtain signed releases from the people who will be photographed.
Weddings
Festivals

Natural Disasters:  Drones are extremely useful in determining the scope and impact of a natural disaster, and can be extremely helpful in identifying impassible infrastructure. They are also used in search and rescue operations, and can help identify the direction of quickly moving wildfires. Drones used are often equipped with infrared / FLIR sensors as well as high-resolution cameras.

Inspections: Equipment / Operations:  In addition to real estate inspections, drones are being used to inspect inaccessible locations and ones requiring 3D visualization.
Insurance companies: Buildings, infrastructure
Bridges
Solar panel inspections
Wind turbine inspections
Pipelines

Infrared / FLIR / Multispectral Sensors

In addition to high-resolution photography, using sensors that allow you to detect thermal variations can help you generate false color composites from which you can extract a great deal of very useful information. Here are some of the most popular uses. It is usually a good idea to combine multispectral images with photogrammetry. 

The FLIR Duo is a new product that combines thermal and visible light imaging and has been designed for drones.  FLIR is a leader in thermal imaging, both for professional and personal use. 



Watch video: https://www.youtube.com/watch?v=8UCcyZboM9k

  • Agricultural: Precision agriculture; monitoring crop health and irrigation needs.
  • Security and Surveillance:  These sensors pick up heat sources, which include bodies – human, animal, or otherwise.
  • Environmental:  Determining coastal erosion, chemical spills, the depth of water bodies, and distressed vegetation.    
  • Herd Tracking (Commercial and Feral): Have a feral hog problem? Are deer eating your favorite bushes? Drones, combined with fixed surveillance cameras / sensors can help you identify the nature of your intruders.  
  • Leak detection in buildings: Thermal signatures are used to pinpoint leaks in roofs and other structures.
  • Hydrothermal resources / hot springs (and possible affiliated mineralization): Thermal anomalies are used in identifying geothermal resources and also places with possible mineralization due to the action of hot, mineral-saturated waters. 
  • Search and Rescue:  Heat signatures can help identify individuals needing to be rescued, especially at night. 
Fugitive Gas Emissions / Hyperspectral
Hyperspectral and multispectral sensors are being used to detect fugitive methane from operations and also natural gas seeps. The process is used for methane leak detection as well as identifying possible areas where oil and gas may be found in commercial quantities.

The Future
As the equipment and sensors improve, the cloud-based 3D imaging will also improve. The spoils are for the innovative, creative, and those who clearly identify the problems that are best solved by means of drones. Of course, drones will generate their own unintended issues -- but a problem is always another opportunity.



Thursday, September 15, 2016

Drone Review and Reality Check: Capabilities, Flight Times, Costs, Best Brands - Interview with Michael Nash

Separating drone realities from drone hype is critical in an area that is seeing rapid development of technology, applications, and a legal framework that supports more uses of drones. Welcome to an interview with Michael Nash, Mechanical Engineering Ph.D. candidate with extensive experience in robotics (including drones).  In this interview, Nash provides a reality check as he details the capabilities of drones, their limitations, and discusses their potential.

Michael will be presenting a paper, "Drone Reality Check .. .What Drones Can't, Won't, and Flat-Out Refuse to Do" at the AAPG Workshop: New Opportunities with Drones:  New Needs,  FAA Rule Changes, New Technologies, Dec. 1-2, Houston, Texas.

1. What is your name and your relationship to drones?
My name is Michael Nash.  I am a doctoral candidate at the University of Oklahoma in Mechanical Engineering with a concentration in robotics.  I have experience in aerospace system design and control systems and have practical experience combining the two in the design and development of drones from raw materials and mathematical modeling by integration as embedded firmware performing the sensor fusion to filtering to actuation.


DJI Phantom 3
2.  What is a drone, from your point of view? How is a drone not quite what the public generally thinks it is?
The common conception places drones as somewhere in between automaton and remotely-operated vehicle.  Most of the time they are imagined to be masters of their environments that live aloft. 
The way people should define a "drone" is between a hobby RC aircraft and self-piloting aircraft following GPS waypoints.  Both capable of collecting data with lightweight sensors, but none capable of spending a significant amount of time in the air (unless specially built by an aerospace/mechanical engineer).

3.  In your opinion, what are some of the most realistic claims that are being made about what drones will do for you?
Drones can provide non-flying humans with an "eye in the sky".


4.  What are some of the most outlandish?
Delivery drones come to mind.

5.  Please list and very briefly describe the types of challenges facing drone pilots?
Pilots of drones are pilots; piloting takes skill that takes time to develop.  The lay-man cannot pick up drone controls for the first time and fly a drone effectively.  Hundreds of hours of practice on a particular platform (be it rotorcraft or fixed wing) stand between the first-time enthusiast and competency.  Ironically, pilots needn't be college educated but can often be found at the local middle or high school.

If the entity wishing to deploy the drone does not wish to employ an experienced pilot, they should plan for repairs.  For rotary-wing aircraft such as helicopters and (tri, quad, hex, octo)x-copters, and propeller-driven fixed-wing aircraft, nearly all crashes will break propellers.  Fixed-wing aircraft will frequently lose wings or receive damage to control surfaces; x-copters will break motor shafts, motors, and arms.  The electronics are fairly robust, but very often get pulled.  The most severe crashes will damage the on-board battery resulting in fiery explosion.

Hobby drones purchased for less than $100 made solely for flying in a gymnasium or low-wind field will be more resistant to damage and can possibly crash 100 times needing only propeller replacements, but they will not be capable of carrying special sensor systems (max payload likely less than 1kg).  Drones capable of a significant payload (yet still less than 5kg) will be less user crash-friendly and can be $1500 up. An example is the newest of the DJI Phantom series, the Phantom 4, with a fly time of 30 minutes.

No multirotor aircraft will fly for an hour (see the information at bottom).

No radio controlled aircraft will be controllable outside a couple hundred meters; if the controller signal is not attenuated, you won't be able to see it.  Professionals may argue this, but professionals don't need to use their drones to collect scientific data.

6.  Please list and very briefly describe the challenges facing the people programming the drone?  (please explain how a drone is or is not a robot)
If one is personally programming the drone's logic, then the skill can be shaved with programmed responses such as low-altitude altitude hold using distance sensors (such as infrared or ultrasonic rangefinders to continually monitor how far the ground is), interpreting pitch and roll relative to global positioning using GPS, or even converting the controller to an input to select waypoints defined as global coordinates to which the drone could travel.  None of these include interaction with sensory equipment, though for the most part it could be effective in a fixed position.

7.  What are some of the challenges involved in working with drone-derived data?

Drone derived data has its own unique set of challenges. 
The most significant is noise.  If your sensors are analog signals being measured by on-board computer, you will be struggling to shield the sensor lines from electromagnetic interference from the motors.

Parrot BeBop Drone

The high current pulses can also wreak havoc on magnetometers. 
Propellers or motors that are slightly off-balance will cause vibrations in the entire craft that can reduce image resolution on cameras at best, and rattle loose hardware at worst. 

Review of drones (quadcopters) with flight times and prices

A google search for "high flight time quadcopter", result #1 (for me):  http://www.dronesglobe.com/guide/long-flight-time/

Quadcopter Price (USD) with Flight time (min)

Holy Stone HS170
$40-$50 6-8 minutes

MJX X101C $140 8-10
Parrot AR Drone 2.0
$270 Up to 20 minutes

Traxxas 7908 Aton
$400 14 minutes

DJI Phantom 3 Std
$500 20 minutes

Chroma Camera Drone CGO2+
$600 30 minutes

Yuneec Q500+ Typhoon
$1400 20-25 minutes

3DR Solo Drone
$800 20-22 minutes

DJI Phantom 4 Pro
$1400  30 minutes

DJI Phantom 3 Pro.
$800 25 minutes

DJI Inspire 1 T600
$2000 25 minutes

From the next link, "5 Longest Flight Time Drones to Buy in 2016!" (http://www.topdronesforsale.org/longest-flight-time-drones/)

Quadcopter name with Flight time (in minutes)

DJI Phantom Aerial UAV Drone
15 minutes

Parrot Bebop Drone
18 minutes

DJI Phantom 3 Advanced
23 minutes

Yuneec Q500 Typhoon Quadcopter
25 minutes

Chroma Flight-Ready Drone
30 minutes

Would you like to learn more?  Working with Drone Data 101 Course | 30 November 2016.  This course is a primer on processing UAS acquired data, and leveraging it in common business platforms such as ArcGIS, Google Earth, SketchFAB and others. In this course the participants will learn about the types of data that can be acquired by drones, how to render that data into 3D models, and more…Register today.

Friday, August 19, 2016

Drones on Verge of Boom: What You Need to Know to Make Money with Drones (UAS) -- Interview with Marc Johnson, skynce

Operating drones is about to get a lot easier with the implementation of Part 107 of FAA regulations. With that change, and the low cost of entry, we may see a step-change in implementation, and applications will be limited only by the imagination. Welcome to an interview with Marc Johnson, an engineer with 15 years in the oil industry, who builds and deploys drones for many different commercial applications.  

1.  What is your name and your relationship to drones?

My name is Marc Johnson and I have spent 15 years in the Oil and Gas industry applying my passion for technology working with data acquisition, control systems and software.  I love helping people with big problems to solve and take pride in delivering successful outcomes implementing technology.

I founded skynce, LLC a year ago in order to offer consulting services to organizations implementing Unmanned Aerial Systems (UAS/drones) into their businesses.  Technology improvements resulting in better drones at lower prices have made UAS adoption practical for a number of commercial applications.  I work with my customers to implement the programs and technologies needed to execute UAS missions.  When we move into the part 107 regulatory regime skynce, LLC will begin offering our customers Remote Pilot in Command (RPIC) services for hire in addition to the technology consulting services we currently provide.

2.  When and how did you get interested in drones?

I have always been excited by UAS technology, I possess a mechanical engineering and computer science background and I have a passion for a wide variety of fantastic machines.

A couple of years ago I saw a $50 drone in the store and couldn’t refuse.  I just couldn’t believe that someone could build a flying machine for that price.  I had a lot of fun with that little drone in its short life, and like many of the drones that would follow it became a casualty in the name of furthering the science.

Intrigued by first experience I started investigating and was thrilled to find like-minded enthusiasts who were building their own drones out of relatively inexpensive components in their garages.  Being an engineer, I of course thought I could do better and within a week I had parts on order to build a drone for myself. 

Over the next year I would build a number drones for a number of applications. What really got me excited was using them for mapping and 3D reconstruction applications and I built a number of prototypes in my garage capable of capturing the required data. I was lucky enough to have a friend with a similar passion for flying machines with a large pasture that over time would turn to a veritable graveyard of drones.   We learned so much about the technology as we built, flew, crashed and repaired our flying machines. 

About the time I was getting my mapping prototypes airborne DJI released the Phantom, and it really changed everything.  You could buy a $1000 drone at WalMart that, when coupled with the right software, was able to create detailed maps and structural models.   Its introduction has enabled a whole new class of user. Cost effective and easy to use, its introduction is as significant as the personal computer or the Ford Model T.  (A good number of our readers (or their kids) probably already have one of these).

I found the inspiration to found skynce, LLC after an aspiring drone pilot came to me with a DJI Phantom 3 not quite sure what he could do with it.  He had heard about my experiments with mapping and was eager to learn more, I was eager to test the new Phantom so we spent a couple of days together in which we experimented with his new toy. The imagery I will present in this interview was captured during our time collaborating and learning.




https://skfb.ly/LKCF

I founded skynce, LLC, to help individuals and businesses understand and implement UAS technology, with a focus on how to utilize the acquired data for mapping and 3D reconstruction purposes.

4.  What is the regulatory environment like these days? Do you see any changes in the near future? If so, what will the impact be?

We are on the cusp of a significant change in regulations that is going to reduce a lot of barriers to entry that are currently in place to organizations seeking to implement UAS technology.    Specifically at the end of August the FAA will be putting into effect the new part 107 regulations.  These new regulations will lower the regulatory threshold to commercially operate drones while maintaining the importance of safety in operations.  A new class of commercial users will begin employing UAS technology as a routine function of their jobs.

While I am excited about the forthcoming part 107 regulatory regime that will be in place at the end of this month in April of 2015 the FAA in the face of media sensationalism about the potential for misuse introduced the burdensome process for obtaining FAA 333 exemptions for commercial drone use.

Under the current regulatory regime companies seeking to fly UAS commercially have to get a FAA 333 exemption, and all but the best-funded startups can afford the lawyers to get one in put in place.  Further the Pilot in Command of operations had to hold a sports pilot's license at a minimum to operate the UAS.  Reducing the number of projects that could be completed in a commercially viable manner.

As we see part 107 introduced in September, a lot of the regulatory overhead will be reduced for commercial operators.  Remote Pilots in Command will need to be certified under the new regime, but the requirement to carry a sports pilot's license will be dropped.   With these lower barriers to entry we are going to see professionals in a variety of markets adopt drone usage as a part of their day to day jobs. Insurance adjusters, realtors, landscapers, architects and yes, even geologists, are going to be adopting this technology.


Changing Regulations and Operators Demographic

3.  What are some of the areas of most dramatic growth in drone uses? 

If you look at the first 1000 333 Exemptions issued by the FAA you can get some insight into the early adopters looking to employ UAS as a part of their business.  As we move to the new regulatory regime we are going to see increased usage in all these market segments. 

A breakdown of the first 1000 FAA 333 exemptions

Real Estate shows up pretty high on the list of exemptions granted, it will soon be the norm that 3D models like this will be included in real estate listings.


https://skfb.ly/LYWw



Aerial Surveying is also one of the most filed exemption types.  Drones provide a means to capture up to date imagery of an area at a relatively low cost.  Further this updated data can be easily imported into mapping applications.  When we look at lof of the activities associated with resource development and construction these are both areas where data currency matters. 

The data collected for mapping applications can also be used to generate 3D models of terrain and other structures using a technique called photogrammetry. The resultant models can be used to complete tasks such as volumetric analysis and the generation of topographic maps.

UAS acquired orthomosaic map overlaid on dated satellite imagery

UAS acquired orthomosaic map overlaid on dated satellite imagery

Topographic map generated from UAS acquired data.

3D Structural model generated from UAS acquired data.

Agriculture is another an area where we are already seeing widespread adoption of UAS, use of specialized cameras and Normalized Differential Vegetation Indexing (NDVI) is enabling farmers to really take a bird's eye view of their fields and identify areas that need remediation, prescribe corrective action and then monitor success of corrective actions taken.

NDVI Map Generated from Drone Acquired data.

6.  How can an individual or a small business that focuses on natural resources development and geographical information get started? How best can they team up?

The first step is to really get educated about how drones can be used to support your business, and how the availability of current low cost aerial data will impact how you do business.

What you will find is that once you start exploring implementing this technology you will realize that finding a certified pilot and buying a drone is only a small piece of the drone adoption equation.

An organization needs to understand how it will plan, execute in compliance, process and ultimately use the data they acquire from drones.  It needs to understand the investments in technology, training and compliance required to fulfill their vision.

I work with my clients to help them understand and implement the programs and technologies needed to achieve their vision of drone adoption in their business.

7.  What kinds of drones are best to use and how much do they cost?

Earlier in this article I gave pretty high praise to DJI and there Phantom Drone, and all the imagery I have used in this article was captured using these devices that are extremely accessible given current pricing.

With that said a Drone should be selected as a function of what you are trying to accomplish.  The phantom is a great tool for surveying small areas of interest, for larger areas such as those encountered in agricultural applications fixed wing drones are often better suited for the job.  There are a quite few options for commercial fixed wing drones available with mission specific payloads. 

Further the cost of the drone is really only a small part of the investment required to leverage UAS technology in your business. Software, insurance, certification, location, size all factor into total operation cost. These things all need to be considered when planning a UAS operation.

8.  What do you see as the best opportunities in the medium-term?

Once we move into the new regulatory regime in September we are going to see explosive growth in all the fields mentioned above. A lot of projects that were not cost effective suddenly will be, further there will be less regulatory overhead. For a lot of business the next few months will be a key time to adopt this technology to gain a competitive advantage or to just keep up.

This interview was first published on the AAPG Learn! Blog by Susan Nash
Please stay tuned for information on workshops - How to Make Money with Drones


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