Showing posts with label Logo Design. Show all posts
Showing posts with label Logo Design. Show all posts

Aug 7, 2019

Co-Founder of Nodle: A Global Network for the Internet of Things




We've been having a lot of fun building what I believe to be the largest wireless network on Earth, by number of base stations.

Nodle uses millions of smartphones and Bluetooth to anonymously locate and connect IoT devices around each phone. This enabled Nodle to operate as the lowest cost wireless network on Earth. and incentivize apps to monetize without ads or impacting user privacy.

We believe we have discovered a new economic model for the Internet, and it can be applied to any wireless technology.


Node is seeing significant demand from paying IoT customers for Nodle Network access. This includes industrial asset tracking, smart cities and consumer electronics companies.  We seek to use significant inbound connectivity demand to create value for our app partners, new ways to monetize apps, and enable anyone to earn money on their phone. 

Apr 7, 2016

KaleKam Logo

Designed a logo for some friends building an Artificial Intelligence startup based around food. You take a photo of your food and it counts calories and nutrition, that simple. 
Hand drawn typography with bits of Avenir. 
A good few hour project!

May 26, 2015

Ultra-modular Thorium Molten Salt Shipping Container Reactors

The following is a concept based on current and past pursuits in small reactor technology. Today, there are two major issues we need to solve. 1- We need to build a global, free, open internet for all mankind to use. I am working on this problem today, and it is easily feasible (Mostly through software). The next leap will require slightly more resources: 2- Energy. Global fossil fuels consumption is accelerating rapidly, with higher energy demands each year. Here's how we get our power (Courtesy of the EPA):
Over 80% of our energy comes from burning the ancient forests of our Earth. This simply isn't sustainable. Much like our demand for internet, our demand for energy is insatiable. In order for us to keep up with increasing demand we need new sources. Fusion is still at least 20 years away, we need a solution for now. But in order for nuclear to work, it must be at the right price and in the right form factor. To look at the future we must look towards the past:

As our nation came out of WWII, atomic energy was applied to a wide variety of tasks. WWII was won partially because of our oil infrastructure, and the Army wanted the best energy sources for any future conflict. In 1954 the Army officially began it's nuclear power program. Over the course of its operation, reactors were built in Antarctica, and along the Dew Line. One reactor even powered an underground ice base at Camp Century, Greenland. 
One variation was the highly experimental reactor shown above. It consisted of six shipping container-sized modules, to save weight, radiation shielding was removed. The main control module required placement 500 feet away from the reactor unit. The Nitrogen-cooled gas-turbine design was fraught with technical problems and corrosion issues.  Deemed a failure, it was an important experiment in portable reactors. 
The Air Force experimented with nuclear powered aircraft (ARE) in the 1950's, creating the foundations of molten salt reactor design. Oak Ridge National Laboratory furthered such experiments  with a highly successful test ending in 1969. Research began to fizzle out as funding dried up in the 1970s and 80s.
The Navy now leads the Nuclear era with their small, modular, pressurized water reactors (SMRs). Such reactor designs have been powering submarines for over 60 years. They now operate a fleet of over 80 subs and carriers (as of 2014) powered by SMRs, many of these vehicles carry more than one reactor.  This IRIS reactor operates on similar principles and is designed mainly by Westinghouse, the maker of many Navy reactors:
Some very interesting research is going into the creation of combustion fuel from seawater using such reactors. Though the Navy has much more advanced reactors, this SMR technology is beginning to hit consumer markets. 
The problem with small uranium reactors is their cost, mainly because of their unsafe inherent safety profile and setup costs. Simon Irish gave an insightful talk on how increased safety directly reduces the cost of building and running nuclear reactors. While SMRs are an order of magnitude safer than the outdated goliaths used in Chernobyl and Fukushima, uranium still poses hefty proliferation and regulatory concerns. 
The only way to build and operate SMRs affordably are to make them:
  1. Inherently Safe
  2. Modular
  3. Autonomous
  4. Portable
  5. Low Proliferation Risk
  6. Efficient
  7. Mass Produced 
The only way to drive down the cost of nuclear power is to mass produce small units. Using the much safer, liquid fuel cycle will also drastically improve safety and efficiency. ML-1 got a lot of things right. It was very cheap to set up (compared to today's custom, >$1bn power stations). Technological and theoretical advancements would now allow a portable, ML-1-like unit to be quite viable. I suspect many such units likely exist in our current "Arsenal of Democracy". The government builds cool stuff, much of which we will never get to see.
Because the military and commercial world operate in very different regulatory environments, running a uranium reactor is too expensive to be viable for small, cheap units. Our next option, one that is in it's early stages of development is Thorium. I believe it's going to take the following configuration for nuclear to truly have a positive global impact: I call it BLOKenergy
The primary reactor fits in one 40 foot ISO shipping container. Its molten salt rector is highly modular, mass produced, and inherently safe. If any problem occurs, the molten reactor is drained, and the nuclear reaction ceases. Here's what the inside might look like:
The primary reactor consists of two "containers". The reactor, heat exchangers, and steam generator consist of the first module. The second reactor module consists of fuel re-processing equipment (Much of which is highly experimental and the primary object of research in Thorium reactors)
Many modern designs are utilizing a gas-turbine technology to convert heat into electricity. While more efficient (nearing 50%),  this technology is also quite young and expensive to build. To keep the first iteration simple, I opted for steam, as these units can be deployed to heat homes, or integrate with current small scale coal and gas electrical generation. One module can work without the other (Except the two reactor modules), allowing for a highly configurable energy source. All of this is controlled via onsite computers and through an encrypted satellite connection.
The steam generators will input steam directly to the turbine module, housing generators and steam turbine equipment. Production would begin first on steam turbine units, as these can be sold (regardless of any reactor) to be used in current coal and gas power generating configurations. These types of steam generators are in production and have been in use for over a hundred years.
Another helpful module would be the desalination unit. Multiple Effect Distillation, or Multi-stage flash distillation (The latter being more efficient at high temperatures, the former is better using waste heat from steam turbines) would be used to turn Sea water into fresh water. California is in a heavy drought, which to me is silly as we are along an ocean. We just haven't found an economical way to get the salt out- Yet.
Today the possibilities for nuclear are endless, with fusion assuredly on the horizon. Our demand for oil is only increasing and nuclear is currently the only truly sustainable option. While wind and solar are great, they can't yet provide the amounts of continuous energy we need, especially for industrial applications. Our future energy infrastructure should include a healthy mix of wind, solar, and nuclear.
Future iterations will likely include a gas turbine design, allowing for higher efficiency and heat distribution for industrial applications.  Many (petro)chemical manufacturing processes require high heat (eg ammonia production), that molten salt reactors could provide economically.
Much of what I write about is very possible today. A major factor holding thorium back is the fuel supply chain. Currently China controls much of the world's thorium, as it is a byproduct of rare-earth mining. India has also added thorium to its three stage nuclear program. Thorium is plentiful in most parts of the world (especially the US, India, and Australia). The problem is much of it is extracted through rare earth mining, in which the US is woefully behind the rest of the world, with China taking the lead. Considering the state of affairs, China will likely pioneer the commercialization of thorium power, as they currently have a lot of thorium sitting around. Here's a USGS map of Th in the US:
The last problem is economics. The current demand to develop radical new technology in this country is relatively low. I believe it will take about 8 years for this technology to be ready for prime time, and when it does- its going to have a global impact. With current thorium reserves we can end drought, bring electricity and warmth to the furthest stretches of our planet, all with minimal environmental impact. This modularized approach just might be what it takes to wean off our oil addiction until we can get fusion to work.
Until then,
Garrett Kinsman  ::  May 25, 2015

Jan 20, 2015

Ara HKL configuration visual prototype.


There are a few months old, but are some of my best renders yet or Project Ara.  These explore the HKL endoskeleton configuration. The module shown is a contactless blood sugar meter.



Apr 22, 2014

MIT Review Article

My escapades at the Project Ara Developer Conference didn't go unnoticed. Rachel Metz wrote an awesome article about me, Open Mod and Project Ara: http://www.technologyreview.com/news/526791/for-project-ara-its-module-not-app-ideas-wanted/

Apr 18, 2014

Ara and OpenMod Wireless


Just returned home from Google's Project Ara Developer's Conference in Mountain View CA. I joined forces to help start OpenMod Wireless, a solutions company poised at providing Industrial Design, Electrical Engineering, Supply Chain, and Branding for companies looking to incorporate their technology into the Ara ecosystem. (Ara a modular smartphone where each part is interchangeable that will be released Q1 of 2015). My Job was to create these concepts to attract attention:
I really want to make translucent modules that glow:
These were all done with SolidWorks and Photoshop. It was also my job to create the branding and logo for OpenMod. It had to look great on a wide variety of products as we are interested in making all types of modules for Ara.
I even designed a 3D printed mockup without any given dimensions from Google. Special thanks from the Monroe Community College Engineering Sciences Dept.   I was close enough that the two actual blocks provided by 3D Systems fit snugly in place.

Apr 3, 2014

Ambitorch

A year ago while camping in Florida, I wanted a better flashlight for reading and drawing. The problem with modern flashlights (and headlamps) is they have a concentrated beam. They are too bright and end up blinding. I wanted an ambient solution that spread light evenly over a large area. I created Ambitorch:


This uses three AAA batteries with a Ultra Fast-strobing Lumilux LED to produce a warm glow. It is an attempt to reproduce the light of a lantern, my favorite reading light. A prototype is in the works, a production model would likely use two (more available) AA batteries. Thanks to my sister Mere for modeling. Done in Solidworks, Photoshop, and Shot with my archaic Canon 10D.

Feb 14, 2014

Project Ara

Some photo-realistic practice for Project Ara, Google's attempt at a modular smartphone. Project Ara isn't only about hardware, it's software as well. Android will have to work across many different blocks. But the "blocks" don't necessarily have to be connected. Wireless advancements will lead to a unified android interface across many different devices and externals. The syncing of data, notifications, and screens across many android devices may be in the near future.
Done with Solidworks and Photoshop.

Jan 30, 2014

Reaper Boyz Emblem


Designed an emblem for the Reaper Boyz next album.

Jan 20, 2014

Audiate Case Study

Audiate has been a project of mine for about a year now, in some form or another. We are building the best android music player, then want to allow groups to interact with music together. I recently spent a week in Kansas City at the Homes For hackers, working on the idea with developers. Auston Leroy, a software guru, joined the team. We decided to head back to New York as developers are much more plentiful around around the local colleges. Kansas City Public Television wrote a great article up on us during our stay.

Dec 27, 2013

Design Icon

An Icon designed for the design industry. Created in collaboration with Tom Pierce of Pierce Design. This represents an icon for all those who design. Created with folded paper, then 3D in SolidWorks.

Dec 8, 2013

Audiate: The Revolution Has Begun

     The music revolution is upon us. I have found some bright individuals who would like to make Audiate a reality. If we succeed we'll fundamentally shift how mobile devices interact, and how we listen to music.  Photograph taken by me of The Downtown Fiction at Night Craze in 2011. Art designed in Illustrator and compiled in Photoshop. The revolution has begun, this will be some fun.

Nov 6, 2013

Musicc Branding


Working with a group in England to turn a phone concert into a reality. Here's an early branding draft. Created the branding concept and logo, along with a UI draft... The interface coming soon. Set in a modified Avante Garde.
 An animation expressing the concept:
Song: Mr G. by Deadmau5, used for demonstration purposes only.

Oct 15, 2013

Mesh Icon

   I  believe mesh based hardware/technology will be the future (The ability for devices to communicate directly with each other) ... So I designed an icon. I'm working on further interfaces but more on that soon!

Jun 25, 2013

CrossLit LED a Conceptual Case Study

A system for increasing the visibility of traffic signals by using in-road signal modules.


Feb 26, 2013

Wired design submission

Just a cool "Design" for the Wired Magazine contest.

Nov 12, 2012

Business Case Logo


Project: Logo Design

Client: Business case spreadsheet development.
*Logo draft,  company went with the other design, but I liked this one the best.