Showing posts with label application. Show all posts
Showing posts with label application. Show all posts

31 Oct 2014

Hi Materials Handling and the Paper Industry.

Hi Materials Handling and the Paper Industry.


The paper industry is an intense, fast-moving environment with little tolerance for downtime in operations running 24 hours a day, seven days a week, 365 days a year. 

Because of these demands, operations are looking for equipment that can withstand the abuse with minimal downtime. 

This complimentary white paper explores environmental impacts and operating conditions in the paper industry and provides an overview of materials handling equipment, attachments and options that can enhance paper industry productivity.

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27 Jun 2014

Hi Application note: Eight things to consider when choosing outdoor humidity instruments.

Hi Application note: Eight things to consider when choosing outdoor humidity instruments.

Hi ‘Eight things to consider when choosing an outdoor humidity instrument’;
Outdoor humidity and temperature measurement is essential for applications such as energy management and indoor climate control. Just one outdoor humidity sensor typically optimises the energy efficiency of cooling equipment. However, if this sensor is not accurate, both energy efficiency and human comfort may be compromised. This application note from Vaisala discusses using solar radiation shields; guidelines for installing outdoor humidity instruments; the elements of a good radiation shield; the most common humidity parameters used in free cooling; and more.
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12 Feb 2014

Hi Achieve "Cooling Efficiency.!"

Hi Achieve " Altering surface textures in 'counter intuitive manner' may lead to cooling efficiency gains."


Uncovering the physical secrets underlying surface phenomena may increase cooling efficiency for a wide range of applications, according to MIT and Boston University researchers


WASHINGTON, D.C. Nov. 12, 2013 -- Researchers across the globe are racing to find ways to improve the cooling of hot surfaces -- for technologies ranging from small handheld electronics all the way to industrial-sized applications such as nuclear power plants.

By zeroing in on the physics at play underlying surface phenomena, a team of Massachusetts Institute of Technology (MIT) and Boston University researchers made a significant breakthrough. Although somewhat counter-intuitive, they discovered that by creating sparsely packed textures on surfaces rather than densely packed ones, they were able to hold droplets in place and enable cooling.
Their findings, described in Applied Physics Letters, which is produced by AIP Publishing, have the potential to enabling cooling efficiency gains in a wide variety of applications.

Worldwide, nearly 86 percent of our energy is currently derived from steam cycles. "If we're able to improve this efficiency by even 1 percent and deploy it to all of the power plants, it could have a significant impact," explains Kripa K. Varanasi, Doherty Chair in Ocean Utilization, as well as an associate professor of mechanical engineering at MIT.

Varanasi's lab is known for tailoring or modifying surfaces to significantly improve efficiency. One of their recent creations was a slippery surface coating, which is now being commercialized by a spinoff called Liqui Glide. They're commercializing a container liner that makes toothpaste and other difficult-to-remove products, such as ketchup, slide right out of their tubes and containers -- greatly reducing waste.

For this particular study, the goal was the exact opposite of creating slippery surfaces. The researchers wanted to make liquid come into direct contact with hot surfaces so cooling could occur. They began by exploring the physics of surface phenomena, because whether focusing on mass transfer, momentum transfer, energy transfer, or charge transfer, the commonality is that the transfer occurs on a surface.

Water Droplets (1 of 2)
Image Caption: These are micro graphs showing water droplets landing on specially designed silicon surfaces (top images) at different temperatures. At higher temperatures, the droplets begin to exhibit a new behavior: instead of boiling, they bounce on a layer of vapor, never really wetting and cooling the surface. At 400 C, the droplet continues to boil only on the surface that combines micro-scale posts with a coating of nano scale particles (last column). These results demonstrate that this micro nano surface can be effectively cooled even at high temperatures.

"Vapor films are created beneath the droplets, which is a critical problem in boiling. Once the vapor films start forming, they act as a barrier to heat transfer because vapor has a lower thermal conductivity than liquid," Varanasi says.

In boiling, ideally the liquid will make contact with the solid. But this phenomenon has a certain threshold known as a "critical heat flux" -- once it's reached, a catastrophic event may occur. For example, in the absence of cooling fluid during an emergency situation in a nuclear power plant, a nuclear fuel rod's surface can become very hot. Pouring water on it to attempt to cool it results in the formation of a vapor film that actually interferes with cooling. As a result, droplets float on the hot surface, which is known as the "Leiden-frost effect."

To overcome the vapor film issue, Varanasi and colleagues textured surfaces using sparsely packed micron-scale structures coated with nano particles to create a capillary attraction effect to hold droplets in place.

"Vapor that forms as the evaporation of the droplet is able to escape through the surface texture," Varanasi explains. "Interestingly, there are two simultaneous competing forces occurring in this situation. As the vapor forms, it exerts an upward force on these droplets. And the texture pulls on the droplet with capillary attraction. This allows the liquid to come into contact with the surface and cool it."

They can engineer similar structures using a variety of materials and techniques, according to Varanasi. Right now, the team's focus is on exploring the energy, water and agriculture nexus because it's all interrelated. "We're hoping in our own humble way -- since many phenomena occur upon surfaces -- to improve them and enable big efficiency in this nexus," he says.
Key markets that may benefit from greater cooling efficiency gains include, but aren't limited to, nuclear power plants, semiconductors and electronics, oil and gas, fire suppression, desalinization, and metallurgy.

Water Droplets (2 of 2)

 Click image to view video


Image Caption: These images show droplets being deposited on silicon surfaces that are smooth (top) and that have micro-scale silicon posts placed either close together (middle) or relatively far apart (bottom). At 270ºC (left), droplets land and boil on all three surfaces—behavior conducive to efficient cooling. But at 300ºC, they boil only on the surface with the widely spaced posts. On the other surfaces, they bounce on a layer of vapor.

The paper, "Increasing Leidenfrost point using micro-nano hierarchical surface structures" by Hyuk-min Kwon , James C. Bird and Kripa K. Varanasi appears in the journal Applied Physics Letters. See link: To view link click here or the image below.

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ABOUT THE JOURNAL

Applied Physics Letters features concise, rapid reports on significant new findings in applied physics. The journal covers new experimental and theoretical research on applications of physics phenomena related to all branches of science, engineering, and modern technology. See link: To view link click here or image below.

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14 Oct 2012

(Hi) Worker Benefits of Maintaining Exhaust Fan: Food Industry Case Study.

Hi Case Study:



Application Overview:

A Snack Food Facility in needed to clean vegetable oil residues from its production line exhaust fan systems. The fans were so encrusted that they were out of balance and not adequately drawing the cooking oil vapors off the production line. With an average build-up of six inches of oil, the fan systems also were vibrating severely.

There are three fan systems, each approximately 350 square feet. Each system is comprised of a 6-foot diameter fan and motor in a fully enclosed shroud with hinged outflow louvers designed to open when the exhaust system is functional. However, the louvers were inoperable and propped up with broom handles.

Substrates:

Galvanized steel

Previous Methods:

A chemical solution was sprayed on all surfaces to soften the oils. This was followed with hand scraping and a hot water rinse. Unfortunately, the chemical solution eventually was unable to remove the continued build-up.

Special Concerns:

First, the cleaning materials needed to be approved for use in a food production facility. Second, the fan system needed to be protected from damage. Third, dust had to be minimized to avoid migration throughout the plant.

Project Schedule:

Each fan system had to be cleaned between 5:00 a.m. and 5:00 p.m. on the one scheduled "down day" per week. Cleaning the rooftop mounted exhaust fans in temperature averaging 100 degrees posed a special challenge to the workers.

Containment:

Dust suppression was the only containment required. All material was flushed down the inside of the ventilation chamber to the production room floor below for clean up by the facility sanitation personnel.

Results/Benefits Summary:

The production personnel reaped immediate and measurable benefits. After cleaning, the fans and exhaust systems functioned as designed. The hinged shrouds opened easily, and fans operated with zero vibration. Production personnel reported that there was a "world of difference" on the production floor due to proper exhaust operation. As a result, the maintenance personnel are establishing an ongoing cleaning schedule.


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