This is a new product. Around 200 microns particle size. A fine plastic particle for scouring glass surfaces. Without scratching because it is softer than glass but harder than what we are removing. As I continue to work for the Window Cleaning Resource in product development it never ceases to amaze me the discoveries I make. Already tested this product is twice as effective as 0000 steel wool in cutting through deposits with a little soapy water. I have been experimenting with it loose. So now I must find ways to bind it to various surfaces with different adhesives. It will likely aid in what my friend Johnny cals a staight wash. When you come back to a house after two or three years it isn't possible to just soap, squeegee, and walk. Usually we must scrub too. This allows us to wet and scrub at the same time. Hence jusr a straight wash. Soap, squeegee, and walk. Real cool. The crystals are different colors too. It looks pretty. The real kicker is it doesn't soften with water like a walnut shell compositional. And doesn't rust out leaving a red stain behind after four windows like steel wool. You will need to contact the WCR for samples. Call them, not me.
To recieve these posts in your inbox just type your email in the box to the top right, 'Follow by Email'.
Written by Henry Grover Jr
For product sales henrygroverjr@gmail.com
Search This Blog
Wednesday, June 12, 2013
Tuesday, June 4, 2013
Diamond Clear Restoration Systems
Diamond is certainly not the hardest substance on earth. Although for a long time it was thought to be. Nonetheless it does posses some rather interesting properties. One of these is its use as a superabrasive. Particles of diamond can be manufactured down into the nanometer range. With the same hardness rating and ability to cut right through materials such as glass surfaces with extreme ease.
Therefore diamond has been used for many years to superfinish many different hard surfaces such as different metals, silicon wafers, glass, and more. The superabrasives industry is a very healthy one. But for some reason it has never been completely adopted into the window cleaning industry for hard water stain removal. This is something that I personally find fascinating. The reason being my own experience with diamond. There have been times when it has far surpassed other particles such as cerium oxide, silica, or even aluminum oxide. There have also been times when it made very little difference at all. So my point is diamond has certain magical properties that can be exploited if one knows exactly how. Also that diamond can actually be used to kick off a brand new stain removal technology that will totally blow away anything that has been developed to date. The technology will consist of a series of different products. So it will be a system of products and techniques. But all based on diamond.
I am currently working with three different companies in developing different tools, compounds, and products. I am also redesigning the rotary polishing wheel. As I have mentioned there is already a great deal of technology out there which has been applied to other industries. Even to the glass industry such as the technology used in grinding and superfinishing beveled edges. This is the technology that I will be bringing to our industry for the purpose of removing hard water deposits from glass.
Written By Henry Grover Jr.
To receive these posts in your inbox just type your address into the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Therefore diamond has been used for many years to superfinish many different hard surfaces such as different metals, silicon wafers, glass, and more. The superabrasives industry is a very healthy one. But for some reason it has never been completely adopted into the window cleaning industry for hard water stain removal. This is something that I personally find fascinating. The reason being my own experience with diamond. There have been times when it has far surpassed other particles such as cerium oxide, silica, or even aluminum oxide. There have also been times when it made very little difference at all. So my point is diamond has certain magical properties that can be exploited if one knows exactly how. Also that diamond can actually be used to kick off a brand new stain removal technology that will totally blow away anything that has been developed to date. The technology will consist of a series of different products. So it will be a system of products and techniques. But all based on diamond.
I am currently working with three different companies in developing different tools, compounds, and products. I am also redesigning the rotary polishing wheel. As I have mentioned there is already a great deal of technology out there which has been applied to other industries. Even to the glass industry such as the technology used in grinding and superfinishing beveled edges. This is the technology that I will be bringing to our industry for the purpose of removing hard water deposits from glass.
Written By Henry Grover Jr.
To receive these posts in your inbox just type your address into the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Wednesday, May 29, 2013
Testing IGs For Negative Pressure Deflection
I finished a job today that exhibited very pronounced negative pressure deflection. Especially the very skinny (about 14 inches wide) insulating glass units were very low on argon. And yes, these were Anderson windows. All of them. Some were worse than others. But all of the IGs demonstrated NPD. If you want to know more about this problem check out my post on defective argon units. Then go to the article referenced and read it.
The method for testing is very simple. Just take your trusty six inch razor, soap up the window with some good sudz, then run the razor vertically straight up. If there is even a slight problem with NPD the razor will miss some of the middle. The more soap left in the middle of the swath the greater the effect and the more problematic the window. Today I observed a virtual 'no contact' in the middle. Just the two tips of the razor made contact! Of course when I turned the razor and ran it across the window horizontally from left to right, it left no soap at all.
So there you have it. It really doesn't need to get any more high tech than this. If you show your customer this and relate the stories of those people who experienced the implosions, you will get attention. Cuz you see. We don't just clean windows. We inspect them too.
Written by Henry Grover Jr
To recieve these posts in your email just type your address in the box to the top right 'Follow By Email".
For product sales henrygroverjr@gmail.com
The method for testing is very simple. Just take your trusty six inch razor, soap up the window with some good sudz, then run the razor vertically straight up. If there is even a slight problem with NPD the razor will miss some of the middle. The more soap left in the middle of the swath the greater the effect and the more problematic the window. Today I observed a virtual 'no contact' in the middle. Just the two tips of the razor made contact! Of course when I turned the razor and ran it across the window horizontally from left to right, it left no soap at all.
So there you have it. It really doesn't need to get any more high tech than this. If you show your customer this and relate the stories of those people who experienced the implosions, you will get attention. Cuz you see. We don't just clean windows. We inspect them too.
Written by Henry Grover Jr
To recieve these posts in your email just type your address in the box to the top right 'Follow By Email".
For product sales henrygroverjr@gmail.com
Saturday, May 25, 2013
Hydrophobic/Hydrophylic Balance
If you were to wet a brand new clean window glass surface with pure water you will notice that the surface is not equally funtionalized. The water will sheet in places of the same plate and bead up in others. This is not necessarily because there are contaminants unevenly covering different areas of the window. It is likely because the physical integrity of the near surface is different. The more 'rough' a surface is the more it will soak up and hold onto water. Water will form larger beads when it condenses as fog on the surface too. So the more rough a surface is the more hydrophylic it is. The opposite is also true. The more smooth the surface the more hydrophobic it is. Condensed water or fog will also form smaller beads when looked at through a thirty power handheld lighted microscope. You can prove this by polishing one side of a mirror plate with a cerium powder of five microns particle size, and then the other side with an aluminum oxide of 100 to 400 nanometers. You will be able to feel the difference with your fingertip. In both cases the chemistry of the surface is exactly the same. The only difference is how smooth each side is. The side polished with the submicron/nanometer scale aluminum oxide will be much more smooth than the opposite side polished with the cerium oxide of five microns.
Now. What does this mean to a window cleaner using a water fed pole? Simply that the results will be different from one window to the next. Also. When we choose an inline chemical to functionalize the surface as we clean, it would be best to choose one that will effect the correct balance between hydrophylic and hydrophobic. This is because of two reasons. First we do want to functionalize the surface equally across every square inch. Second water will sheet best from a balanced surface. If the surface were super hydrophylic it likely wouldn't sheet at all, but would rather cling to the window leaving a light film. Also the very best hydrophobic surface is not superhydrophobic so little beads of water will form. It is therefore more time consuming when cleaning an ordinary hydrophobic surface with a water fed pole. The very best functionalized surface for the WFP user will be both hydrophobic and hydrophylic. This balance can actually be measured by measuring the contact angle of a drop of pure water. Also. The eveness of the 'new' surface can be analyzed by fogging the entire window. You will be able to easily see at a glance the pattern. And to reiterate the more hydrophylic surface will have the smaller water drop when the window is fogged. By looking at the size of the water drop on the new surface under a microscope it is possible to quantify different chemical treatments to find the one that works the best. Or at least to be able to label them from most hydrophylic to the least. Then to choose the one that we prefer. Almost like someone chooses a soap/cleaner depending on the level of suds action, and glide.
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Now. What does this mean to a window cleaner using a water fed pole? Simply that the results will be different from one window to the next. Also. When we choose an inline chemical to functionalize the surface as we clean, it would be best to choose one that will effect the correct balance between hydrophylic and hydrophobic. This is because of two reasons. First we do want to functionalize the surface equally across every square inch. Second water will sheet best from a balanced surface. If the surface were super hydrophylic it likely wouldn't sheet at all, but would rather cling to the window leaving a light film. Also the very best hydrophobic surface is not superhydrophobic so little beads of water will form. It is therefore more time consuming when cleaning an ordinary hydrophobic surface with a water fed pole. The very best functionalized surface for the WFP user will be both hydrophobic and hydrophylic. This balance can actually be measured by measuring the contact angle of a drop of pure water. Also. The eveness of the 'new' surface can be analyzed by fogging the entire window. You will be able to easily see at a glance the pattern. And to reiterate the more hydrophylic surface will have the smaller water drop when the window is fogged. By looking at the size of the water drop on the new surface under a microscope it is possible to quantify different chemical treatments to find the one that works the best. Or at least to be able to label them from most hydrophylic to the least. Then to choose the one that we prefer. Almost like someone chooses a soap/cleaner depending on the level of suds action, and glide.
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Monday, May 20, 2013
Creating Alkaline Water Via Resin Exchange Chemistry
Once you have reduced the TDS down to 0, and you now have totally pure water;...where do you go from there? Why not use a resin exchange medium to alter the hydronium/hydroxide ion balance to raise the pH to a figure higher than neutral? Window Cleaners have already experienced fascinating results cleaning glass with ultrapure water with a very high pH. Why? Because most of what we are removing from window surfaces are acidic. Alkaline solutions will neutralize such contaminants. This is how surfaces are cleaned. Mineral deposits (hard water spots) are composed mostly of silicates. Which are alkaline. That is why manufacturers have created products based on acids to remove them. So. Why not use another exchange tank to remove the hydronium ions from your ultrapure water making it a naturally powerful cleaner? What do you think of this?
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box at the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box at the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Thursday, May 16, 2013
Removing Mineral Deposits With Diamond
Diamond is the hardest substance on earth. Well almost. The water molecule might be even harder. But for practical purposes it's hard enough. And despite the extreme value of natural diamond gemstones, it has a greater value as a synthetic material used by machinists. It might even have an unsuspected value to us. For quickly and efficiently removing hard water deposits from window glass.
I will never forget my 'house on the hill' down in Amherst. The windows had been damaged by a solution of sodium carbonate and sodium metasilicate. A white haze which couldn't be removed with anything. Except diamond. I used a 5 micron compound in a syringe with Bounty paper towels. No other compound worked. Not even the acid based 'wonder products'. What I personally find fascinating is the fact that diamond compounds don't shine like this in all cases. Most of the time they perform equally as well as a compound based on a cerium or even a plain optical silica around five microns average particle size.
Another time I was working on sprinkler stains which covered dark glass. No compound worked. Even diamond compound with or without machines would touch these stains. But a 'water wheel' based on a system of hardplastic nubs which were loaded with 5 micron diamond particles knocked it off in very little time. All I used was water. The only problem was the wheel left millions of very fine barely noticeable scratches. Such were unacceptable. I never continued working on this technology until now.
The technology of superpolishing glass with diamond loaded plastic is quite common. There are many products out there. The trick is finding the exact one that will do the job and not leave any scratches. Then creating the wheel that will work best with this material. This is one of the projects that I am currently working on.
Written by Henry Grover Jr
To receive these posts in your inbox type your address in the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
I will never forget my 'house on the hill' down in Amherst. The windows had been damaged by a solution of sodium carbonate and sodium metasilicate. A white haze which couldn't be removed with anything. Except diamond. I used a 5 micron compound in a syringe with Bounty paper towels. No other compound worked. Not even the acid based 'wonder products'. What I personally find fascinating is the fact that diamond compounds don't shine like this in all cases. Most of the time they perform equally as well as a compound based on a cerium or even a plain optical silica around five microns average particle size.
Another time I was working on sprinkler stains which covered dark glass. No compound worked. Even diamond compound with or without machines would touch these stains. But a 'water wheel' based on a system of hardplastic nubs which were loaded with 5 micron diamond particles knocked it off in very little time. All I used was water. The only problem was the wheel left millions of very fine barely noticeable scratches. Such were unacceptable. I never continued working on this technology until now.
The technology of superpolishing glass with diamond loaded plastic is quite common. There are many products out there. The trick is finding the exact one that will do the job and not leave any scratches. Then creating the wheel that will work best with this material. This is one of the projects that I am currently working on.
Written by Henry Grover Jr
To receive these posts in your inbox type your address in the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Thursday, May 9, 2013
Cleaning Glass with Sodium Hydroxide Revisited
This post was originally written many years ago. Since that time it has received a great deal of attention. For that reason I have decided to go back again and update it. You will find pictures and a very enlightening video here. Keep coming back to this post because there will be a great deal of additional information added over time. Especially in the way of scientific/chemical knowledge and the results of some landmark experiments with a focus on visible etching of glass, deep cleaning techniques, and phobic/phylic conversion technology.
Over the years I have been personally fascinated by certain chemicals and the application of these to the practice of routine cleaning and restoration of window glass surfaces. Sodium hydroxide is not the least of these. But is one of the most interesting!
Has anyone ever worked with oven cleaner to remove staining from aluminum screens? It works really well! Sodium hydroxide has a voracious hunger for certain metals. Such as aluminum that has leached from screens. It will even eat up soda lime glass in minutes. At the right temperature and concentration.
Did you also know that restaurants use a product based on this chem to clean the grease off their grills? Did you also know that it is used at farms to completely liquify dead animals? Also it is used at 100% concentration in the form of crystals to eat up hair in household drains. Furthermore it is used in food products. It has even been used as an ingredient in certain food products. So why not clean with it?
OK. So I went out and picked up the 100% dry crystals at the hardware store. It cost me about eight bux for sixteen ounces (one pound). Here is a picture of it.
I had a pizza/sub shop to clean that I was called back into after at least four years. Use your imagination. It was bad. My cleaner was worse. It ate right through everything. There were a few windows that hadn't been touched at all for several years. They looked like they had a dark solar tint on them. So I needed to scrub a little with 0000 steel wool. But when I was done that glass was crystal clear. Of course my skin was black and dried out. Next time I will use gloves. In fact let me say this. Sodium hydroxide will really burn your skin bad. And you should never get even the smallest amount in your eyes. So gloves and goggles probably would be best. It will make pure water really hot if you put enough in a cup. When mixing it is best to use plastic cups and containers.
In practice I discovered that rather than a teaspoon per gallon I could get away with ONLY 1/8th of a teaspoon per gallon;...or less! I didn't say a tablespoon. I said a teaspoon! I use this concentration for routine cleaning at a pizza/sub shop. Not restorative deep cleaning as the one I just described. Restoration grease stripping requires higher concentrations. Remember to always used rubber gloves too. Keep your hands dry. As an interesting additional thought I was wondering about the use of super-abrasive plastic abrasives along with sodium hydroxide cleaning solutions. Also other super-abrasives.
So here are the questions. Since the technical literature that I have read indicate quite plainly that very strong alkali solutions will etch glass, will a much lighter solution of sodium hydroxide also cause etching? This video also referenced above shows how sodium hydroxide will totally eat soda lime glass under the right conditions. Much milder solutions have been used to "deep clean" glass surfaces to remove all organic molecules so that window glass becomes completely hydrophylic. I will be doing some rather interesting experiments with my "white crystals" over the next week. And will be progressively updating this post.
So here are the questions. Since the technical literature that I have read indicate quite plainly that very strong alkali solutions will etch glass, will a much lighter solution of sodium hydroxide also cause etching? This video also referenced above shows how sodium hydroxide will totally eat soda lime glass under the right conditions. Much milder solutions have been used to "deep clean" glass surfaces to remove all organic molecules so that window glass becomes completely hydrophylic. I will be doing some rather interesting experiments with my "white crystals" over the next week. And will be progressively updating this post.
We also really need to know if very mild cleaning solutions will cause the same etching effects that 1 percent solutions of hydrofluoric acid cause. To discover the answer to this question I will be performing the two different tests I have developed here for acids. It is indeed true that even water itself is quite capable of etching glass. But very slow and under conditions other than routine cleaning. So when testing cleaning/restoration solutions of sodium hydroxide we should test the concentrations used in each. Again it is obvious from the video referenced in this post if we use much higher concentrations at much higher temperatures, (such as a hot summer day) than we absolutely will etch glass.
When I tested the different acids used in so called commercial restoration products, I tested them at the concentration that was suggested they be used at. Straight out of the bottle. The MSDS gave me the name of the acid each was based on and the percent of concentration. I also tested them at the temperature they would be routinely used at. Time is also a condition. Certain acids such as hydrofluoric and sulfuric acid will show etching in as little as thirty seconds. It is even possible to create visible distortions of glass surfaces in only thirty minutes. What about when the solution puddles at the bottom of the window and remains there. This can easily happen on overcast cool days. It is also true that the glass might be dark and very hot from the sun. Both the composition of the glass and the temperature could easily contribute to the visual effects of such acids (etchants).
There are other questions that should be answered. Such as the problem of the yellowing of white vinyl window frames and vinyl siding. Oven cleaner will yellow out white vinyl in seconds. Especially on a hot day. It is based on a 4% solution of sodium hydroxide. At what concentration is a sodium hydroxide routine cleaning solution safe to use around white vinyl? To answer this I might heat up some water to about 180 degrees F. Put in a certain amount of crystals. Mix it up. Then do the dip. Dunk a strip of white vinyl used on window frames. Leave it in there for at least five minutes. Remove and inspect in bright sunlight.
When I tested the different acids used in so called commercial restoration products, I tested them at the concentration that was suggested they be used at. Straight out of the bottle. The MSDS gave me the name of the acid each was based on and the percent of concentration. I also tested them at the temperature they would be routinely used at. Time is also a condition. Certain acids such as hydrofluoric and sulfuric acid will show etching in as little as thirty seconds. It is even possible to create visible distortions of glass surfaces in only thirty minutes. What about when the solution puddles at the bottom of the window and remains there. This can easily happen on overcast cool days. It is also true that the glass might be dark and very hot from the sun. Both the composition of the glass and the temperature could easily contribute to the visual effects of such acids (etchants).
There are other questions that should be answered. Such as the problem of the yellowing of white vinyl window frames and vinyl siding. Oven cleaner will yellow out white vinyl in seconds. Especially on a hot day. It is based on a 4% solution of sodium hydroxide. At what concentration is a sodium hydroxide routine cleaning solution safe to use around white vinyl? To answer this I might heat up some water to about 180 degrees F. Put in a certain amount of crystals. Mix it up. Then do the dip. Dunk a strip of white vinyl used on window frames. Leave it in there for at least five minutes. Remove and inspect in bright sunlight.
White vinyl isn't the only other surface to look at here. There are in practice many other surfaces out there. The only way to know in advance which chemicals are safe to use around any surface would be to test your cleaning solution on that surface.
Written by Henry Grover Jr.
Written by Henry Grover Jr.
Please email me directly with any questions you might have about this article and future products I am working on or you would like to see developed.
Saturday, April 27, 2013
#2 Etch Test for Glass
This is a test for what I call Total Glass Dissolution. Which is very simply put, the ability of the liquid in question to eat up and dissolve all molecular components of the glass. That would be both the silicas and silicates. In other words the calcium, sodium, oxygen, and silicon atoms.
To do this you will first need a small plastic cup. About four inches. Fill it half way with the liquid/product in question. Then take a small/business card size piece of window glass. I use the 3/16 inch glass from a glass shop. You can ask them to cut you some two by three and a half inch (business card size) pieces. They will even smooth the edges so you won't get cut. Next just drop one gently into your plastic cup half filled with liquid. The liquid should rise about half way up the glass plate. So that half is immersed and half is dry. Let it set at room temperature for about a half hour. Next remove and run it under the tap. Then dry completely. Inspect in bright light.
If total dissolution has occurred you will notice a rippled/orange peal like line where the liquid and air met. You might see some clouding above this that won't go away. The surface of the glass that was immersed should be very clear. You might even be able to feel the rippled line with your fingernail. Probably more on one side of the glass than the other. And if you hold the glass closer to your face and look through it at the distant landscape, then move it a little, you should see the objects viewed through it move a little funny. This line is the site of total dissolution. Of course the surface that was totally immersed was also totally dissolved. But the effect is much more noticeable at this line. Again, if you want to do this test with something that is sure to cause this effect, pick up some sulfuric acid (battery acid) from the auto parts store. But use caution. Gloves and goggles are always best when working with acids. It is a very strong acid. About 37% clear sulfuric.
Written by Henry Grover Jr
To receive these posts in your inbox type your address in the box at the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
To do this you will first need a small plastic cup. About four inches. Fill it half way with the liquid/product in question. Then take a small/business card size piece of window glass. I use the 3/16 inch glass from a glass shop. You can ask them to cut you some two by three and a half inch (business card size) pieces. They will even smooth the edges so you won't get cut. Next just drop one gently into your plastic cup half filled with liquid. The liquid should rise about half way up the glass plate. So that half is immersed and half is dry. Let it set at room temperature for about a half hour. Next remove and run it under the tap. Then dry completely. Inspect in bright light.
If total dissolution has occurred you will notice a rippled/orange peal like line where the liquid and air met. You might see some clouding above this that won't go away. The surface of the glass that was immersed should be very clear. You might even be able to feel the rippled line with your fingernail. Probably more on one side of the glass than the other. And if you hold the glass closer to your face and look through it at the distant landscape, then move it a little, you should see the objects viewed through it move a little funny. This line is the site of total dissolution. Of course the surface that was totally immersed was also totally dissolved. But the effect is much more noticeable at this line. Again, if you want to do this test with something that is sure to cause this effect, pick up some sulfuric acid (battery acid) from the auto parts store. But use caution. Gloves and goggles are always best when working with acids. It is a very strong acid. About 37% clear sulfuric.
Written by Henry Grover Jr
To receive these posts in your inbox type your address in the box at the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Monday, April 15, 2013
#1 Etch Test for Glass
So you have bought a liquid wonder product for removing hard water deposits. You have watched the manufacturers video on how to use it. You have read the reviews and talked to other guys about how effective it is. And now you're ready! Hold on! Please read and do this first. Then every time you hear about another wonder product put it to the test. This first test I discovered by accident. Yet it is one of the most effective and simple tests. No high tech instruments. Just a 3M green pad, some magic tape, a mirror, flashlight, and a very dark room.
Take a one by one foot mirror plate. Create a nice patch of scratches in the middle with your green pad. Tape off one side of the patch to keep it dry. Then apply the wonder product to only one half of the patch. Do not let it contact the other side. That is what the tape is for. Give it a good thirty seconds to a minute. Remove with soapy water, and squeegee. Remove tape to reveal the rest of patch. Next take your nice clean, dry mirror into a very dark room. A bathroom without windows works well. Look down the beam of the flashlight at the entire scratch patch. If the product in question has any amount of acid that etches glass you will notice that the scratches that made contact with the product will be very noticeable compared to the scratches that were covered by the tape.
I have developed this test using pure acids such as hydrofluoric, sulfuric, and ammonium hydrofluoride. Hydrofluoric worked well for me down to only 1%. If you want to play with a reasl easy to get bad boy you might go to the local auto parts store. Buy some battery acid. This is essentially sufuric acid at a 37% concentration. I got my pint for four bux! You might have to pay up to seven.
This test also doubles as a test for crude silicas used in hard water stain removers that are rub on gels, or rubbing powders. It is done the same way. Just substitute the 3M green pad for your product. Rub in your powdered products using a damp sponge. Also rub in your gel without water using a slightly damp 100% cellulose sponge.
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box at the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Take a one by one foot mirror plate. Create a nice patch of scratches in the middle with your green pad. Tape off one side of the patch to keep it dry. Then apply the wonder product to only one half of the patch. Do not let it contact the other side. That is what the tape is for. Give it a good thirty seconds to a minute. Remove with soapy water, and squeegee. Remove tape to reveal the rest of patch. Next take your nice clean, dry mirror into a very dark room. A bathroom without windows works well. Look down the beam of the flashlight at the entire scratch patch. If the product in question has any amount of acid that etches glass you will notice that the scratches that made contact with the product will be very noticeable compared to the scratches that were covered by the tape.
I have developed this test using pure acids such as hydrofluoric, sulfuric, and ammonium hydrofluoride. Hydrofluoric worked well for me down to only 1%. If you want to play with a reasl easy to get bad boy you might go to the local auto parts store. Buy some battery acid. This is essentially sufuric acid at a 37% concentration. I got my pint for four bux! You might have to pay up to seven.
This test also doubles as a test for crude silicas used in hard water stain removers that are rub on gels, or rubbing powders. It is done the same way. Just substitute the 3M green pad for your product. Rub in your powdered products using a damp sponge. Also rub in your gel without water using a slightly damp 100% cellulose sponge.
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box at the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Wednesday, December 5, 2012
Creating Superhydrophobic Glass
OK. Many years have passed since Repcon. Most of you out there have never even heard of this product. It was first created for jet aircraft. Then came RainX. Next The Invisible Shield. These three at that time were owned by the same company. Over in the UK at about the same time from a completely different company came Clear Shield. Now over thirty years has passed since this time. However the chemistry used for these products is still known and in use.
Many other products and systems have been developed in later years. Based on somewhat different chemistries such as cross linking siloxanes, organofluorochlorosilanes, and silane functionalized silica nanoparticles. As it turns out hydrophobic glass surfaces are not too difficult to create. However superhydrophobic surfaces are somewhat more challenging. It has been learned from studying the nanoscopic surface of the lotus leaf that more is involved than just chemistry. The physical surface must have a certain 'structure'. When the right chemistry is coupled with this then contact angles greater than 150 degrees can be attained. Superhydrophobicity can be tested also by whether water drops will roll down a clean surface at only a 10 degree angle.
The benefits of such 'new' surfaces are many. First they will resist hard water spots, paint, wood stains, grease, and other chemistries. They also improve vision during rain storms. Especially if applied to vehicular vision glass. The right treatments will resist scratches making glass and mirror mar resistant. Likewise superhydrophobic window cleaning is a breeze. It completely eliminates the need for squeegees and hence the skill factor. Microfiber applicators can be used inside. And a simple garden hose will do the outside. Throw away your store bought cleaners that just coat windows with soap creating filmy glass. Pure water is all you'll need. However superhydrophobic systems and products to the best of my knowledge, have not yet made it to the flat glass market. But the hydrophobic business is alive and well.
If you want to receive the benefits of hydrophobic coatings you will need a window cleaning company that is Glass Smart. This kind of Window Cleaning company knows exactly how to attain the most effective, and long lasting coating possible. All surfaces must be activated first before applying the coating. Also each coating is different for different reasons. You should also know that hydrophobic glass is truly not 'self cleaning'. Windows will still get dirty and spotted. Thus they will still need to be cleaned. Which can be done with microfiber applicator/wipes or the garden hose if your water isn't hard. It is also true that under certain conditions inside surfaces can become filmy quicker than if there were no coating applied at all. In fact if that surface were 'structured' correctly, without any coating at all;...it will appear to stay cleaner longer. This can be proven over a span of just a month or two by a simple experiment on your window. Now these are the kind of things a company that sells hydrophobic glass coatings/treatments will absolutely NOT tell you. But a Glass Smart window cleaning company will. It pays to listen to the independant contractor/consultant.
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Thursday, November 1, 2012
Microlapping Window Glass
This is a relatively simple process using either a cerium oxide slurry or some other optical grade polishing powder with water. It is possible to do by hand. Yet a circular felt pad works exceptionally fast. Another machine that can be used for this is a square random oscillating sander. Just remove any pad or bottom attatchment and slap a thick piece of hard felt on. It will polish the glass without throwing compound fifty feet. In fact it is so neat you can work right up to a quarter inch of another plate without getting any slurry on it. All you want to do is remove a very slight amount of glass. Just enough so that when the window is fogged you don't see any patterns or lines. A more simple way of testing the new surface is to wet it with pure water. If it has been properly microlapped the water will sheet over the entire surface equally. It will not bead up at all anyplace.
One reason why you might want to microlap is to set up the surface for a hydrophobic, or even a hydrophylic coating. The coatings which form a true chemical bond to the glass will likely require as many free oxygen atoms as possible. So you won't want any organic or mineral residues blocking the reactions. The exterior of window glass also undergoes a certain amount of corrosion or weathering. Weathering is the more correct technical term that glass scientists use. If the etch that happens is static then there will be invisible deposits that will block chemical reactions.
If you doubt that weathering happens try this. The next time you are working on an old set of storm windows try running your finger lightly over the inside and outside surfaces of the upper storm. Make sure both surfaces are perfectly clean. You will detect a noticeable drag on the outer surface. By comparison the inside will be very smooth. You will note then that the outer surface has undergone extensive weathering. Usually this type of etch is dynamic. But depending on various conditions it could be partly static too.
Written by Henry Grover Jr
To receive theses posts in your inbox just type your address in the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
One reason why you might want to microlap is to set up the surface for a hydrophobic, or even a hydrophylic coating. The coatings which form a true chemical bond to the glass will likely require as many free oxygen atoms as possible. So you won't want any organic or mineral residues blocking the reactions. The exterior of window glass also undergoes a certain amount of corrosion or weathering. Weathering is the more correct technical term that glass scientists use. If the etch that happens is static then there will be invisible deposits that will block chemical reactions.
If you doubt that weathering happens try this. The next time you are working on an old set of storm windows try running your finger lightly over the inside and outside surfaces of the upper storm. Make sure both surfaces are perfectly clean. You will detect a noticeable drag on the outer surface. By comparison the inside will be very smooth. You will note then that the outer surface has undergone extensive weathering. Usually this type of etch is dynamic. But depending on various conditions it could be partly static too.
Written by Henry Grover Jr
To receive theses posts in your inbox just type your address in the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Tuesday, October 2, 2012
Developing The Silicone Slayer
Silicone Caulk can be a Window Cleaners nightmare! The reason for this is that as silicone caulk cures it forms a covalent bond with itself (it crosslinks), and to the 'free' oxygen atoms at the surface of the glass. So in other words it bonds to itself and the window. The common solvents out there that won't kill a mouse at fifty feet, will at best only soften cured caulk. They will not 'eat it up'. My aproach to this was to find the most effective but environmentally friendly solvent, for softening cured silicone caulk. Then to find the best microcrystalline optical grade polishing powder to break it up and remove it completely from the window. The powder I chose would also need to blend well with the solvent chosen. This post will explain how I went about developing The Slayer.
In looking for the best solvent I knew that I needed one that wasn't stinky. At times we must use it inside. Also it must have a slow evaporation rate. Even in the hot sun. Because we need time to scrub a little. It must also be water miscable so we can remove it easily from the window with our cleaning solution. And it must be extremely powerful at softening fully cured silicone caulk.
Silicone caulk will not bond to plexi and lexan. It peals off with extreme ease when fully cured. It comes off lexan even easier than plexi. So I picked up some new one by one foot squares of plexi and lexan from the local glass shop. Then I created several long thin strips of fully cured clear silicone caulk from a tube. Which I also got from the glass shop. These strips pealed off the lexan leaving a very flat and smooth underside. So they would temporarily cling to vertical glass for experimental purposes. They held on very well, but came right off when I was done. Then I just threw them away.
Before I put them up for testing I suspended each in a separate glass cup with a different organic solvent. Some of the solvents I tested were mineral spirits, toluene, xylene, terpentine, and methanol. Also included was the solvent I am using for The Slayer. After a half hour I removed my silicone strips, set them up on a window, and started digging into them with my thumbnail. I also had a strip that hadn't been soaked in anything. The solvent that won the contest was the one that I now use in The Slayer. It is so effective at softening cured silicone caulk that I could easily dig off huge chunks of caulk with my nail. The other solvents didn't even come close. From this I figured if I could also find an equally effective optical grade microcrystalline polishing powder that would blend well with this solvent, I would have a true Silicone Slayer!
The powder of choice (but not the only one that can be used) turned out to be an optical grade silicon dioxide, a silica. It has an average particle size of 99.9% purity at about five microns. The morphology was amorphous. The outer surface of the particles were treated with a hydrophillic surfactant helping to bring them quickly into a water based solution. So since the molecular polarity of my solvent was such that it also would disperse well in water, the solvent and this powder went together well. In theory and practice. The Silicone Slayer has become a very effective tool in my work.
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
In looking for the best solvent I knew that I needed one that wasn't stinky. At times we must use it inside. Also it must have a slow evaporation rate. Even in the hot sun. Because we need time to scrub a little. It must also be water miscable so we can remove it easily from the window with our cleaning solution. And it must be extremely powerful at softening fully cured silicone caulk.
Silicone caulk will not bond to plexi and lexan. It peals off with extreme ease when fully cured. It comes off lexan even easier than plexi. So I picked up some new one by one foot squares of plexi and lexan from the local glass shop. Then I created several long thin strips of fully cured clear silicone caulk from a tube. Which I also got from the glass shop. These strips pealed off the lexan leaving a very flat and smooth underside. So they would temporarily cling to vertical glass for experimental purposes. They held on very well, but came right off when I was done. Then I just threw them away.
Before I put them up for testing I suspended each in a separate glass cup with a different organic solvent. Some of the solvents I tested were mineral spirits, toluene, xylene, terpentine, and methanol. Also included was the solvent I am using for The Slayer. After a half hour I removed my silicone strips, set them up on a window, and started digging into them with my thumbnail. I also had a strip that hadn't been soaked in anything. The solvent that won the contest was the one that I now use in The Slayer. It is so effective at softening cured silicone caulk that I could easily dig off huge chunks of caulk with my nail. The other solvents didn't even come close. From this I figured if I could also find an equally effective optical grade microcrystalline polishing powder that would blend well with this solvent, I would have a true Silicone Slayer!
The powder of choice (but not the only one that can be used) turned out to be an optical grade silicon dioxide, a silica. It has an average particle size of 99.9% purity at about five microns. The morphology was amorphous. The outer surface of the particles were treated with a hydrophillic surfactant helping to bring them quickly into a water based solution. So since the molecular polarity of my solvent was such that it also would disperse well in water, the solvent and this powder went together well. In theory and practice. The Silicone Slayer has become a very effective tool in my work.
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Sunday, November 6, 2011
Defective Argon IG Units
Back about fifteen to twenty years ago manufacturers started using the inert gas argon to fill insulting glass units. IG units have a partial vacuum with a rarified gas. Conventional units use nitrogen. Which makes up by far the greater percentage of our atmosphere. Argon is a bit more "high end"!
It isn't possible to use a complete vaccum. Other wise the glass plates would demonstrate what is called negative pressure deflection, which can easily cause an implosion. This is however what has been happening to the argon units. Years after they were manufactured. It is quite an interesting story! Check out this article. http://www.usglassmag.com/USGlass/1999/9904/9904argon.html
As the article very well explains, there are likely several different possible reasons for the problem. But the bottom line is simply if you have bought a house full of these defective units, you could be literally sitting on many potential time bombs. Not a pleasant thought. And you, and the cleaning company likely would have no clue until the first bang.
If you are buying a house this is only one reason why you should have a window cleaner/glass inspector clean the windows. Home inspectors are not qualified to look for defective tempered glass, etched glass, mineral deposits, compromised IG units, and especially argon units that are just waiting for a cold day with a high barometric pressure to implode with a bang that would scare the hair off a cat.
Henry Grover Jr
To receive these posts in your inbox just type your address in the box at the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
It isn't possible to use a complete vaccum. Other wise the glass plates would demonstrate what is called negative pressure deflection, which can easily cause an implosion. This is however what has been happening to the argon units. Years after they were manufactured. It is quite an interesting story! Check out this article. http://www.usglassmag.com/USGlass/1999/9904/9904argon.html
As the article very well explains, there are likely several different possible reasons for the problem. But the bottom line is simply if you have bought a house full of these defective units, you could be literally sitting on many potential time bombs. Not a pleasant thought. And you, and the cleaning company likely would have no clue until the first bang.
If you are buying a house this is only one reason why you should have a window cleaner/glass inspector clean the windows. Home inspectors are not qualified to look for defective tempered glass, etched glass, mineral deposits, compromised IG units, and especially argon units that are just waiting for a cold day with a high barometric pressure to implode with a bang that would scare the hair off a cat.
Henry Grover Jr
To receive these posts in your inbox just type your address in the box at the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Tuesday, July 27, 2010
New Glass
Even brand new glass can have a defective surface. It can be embedded with microfines from the tempering oven. Or be just plain rough. Both the physical and chemical quality of the surface of brand new glass can be radically different from one plate to the next. Even when dealing with chemically strengthened or annealed glass. To prove this all you have to do is lightly run a penny across a dry clean surface. You will notice that it will either gluide smoothly, or stick at various locations. Also if you were to wet a clean surface with clean pure water you will notice the water sheets over only certain areas of the surface and beads up at other locations. This shows there is a notable difference.
New Glass is a physically and chemically treated glass surface. It can be custom talored so that it has different properties. Easy to clean, stain resistant, scratch resistant, or just hydrophobic and oleophobic. Old or even new glass can be treated. Pricing is by the square foot depending on what treatment is desired. This varies because the procedure for the treatment is also different.
What I personally think is most appealing about this technology is the ease of maintenance cleaning of a "new glass" surface. When a window glass surface is super hydrophobic, rinse water instantly beads and rolls right off. Leaving an ultraclean surface in seconds. Cleaning the outside of windows becomes a breeze. Just soap and rinse. Just like on TV! Except this is real.
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
New Glass is a physically and chemically treated glass surface. It can be custom talored so that it has different properties. Easy to clean, stain resistant, scratch resistant, or just hydrophobic and oleophobic. Old or even new glass can be treated. Pricing is by the square foot depending on what treatment is desired. This varies because the procedure for the treatment is also different.
What I personally think is most appealing about this technology is the ease of maintenance cleaning of a "new glass" surface. When a window glass surface is super hydrophobic, rinse water instantly beads and rolls right off. Leaving an ultraclean surface in seconds. Cleaning the outside of windows becomes a breeze. Just soap and rinse. Just like on TV! Except this is real.
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Friday, July 31, 2009
Peekaboo Mirrors
First you see it then you don't. It is now possible to create invisible artwork and lettering on mirrors that only shows up when the mirror is steamed. So when you get into the shower all you see is a clean mirror. When you get out you see an image and or lettering plainly visible in the fog. This is an incredible attention getter! To create this effect the near surface must first be microlapped to expose all of the "free" oxygen atoms. Then a mask is applied. Next a hydrophobic sealant is reacted forming a covalant bond that will last forever. Choosing the right SAM is critical. Of course the entire process can be easily repeated so as to change the image at any time. Cleaning is done with microfiber cloths and pure water, or a squeegee. Products such as Windex can't harm the image. Although they will leave a buildup of surfactant over time which will take away from the clarity. Nonetheless, it is possible to remove such a filmy buildup by simply wetting the mirror with pure water and squeegeeing it off.
The Peekaboo effect can be applied to bathroom mirrors preexisting in homes or motels. Homeowners can choose their own artwork right out of a magazine if they like. The image can then be scanned into the computer, and converted to a mask. Motels can advertise their own services directly to their customers. Or they can profit by charging nearby restaurants, taxi services, or other businesses for advertising on their mirrors. Beauty salons can create hand held mirrors advertising their service for their customers to keep in their handbags. Which they will have to show off by fogging the mirror with their breath and showing their friends. On the back of the mirror would be the companies contact info including the sign company. The sky is the limit on this one.
Demonstrations are free, and pricing is negotiable.
Currently I am looking to work with Sign companies as they have the facility to create the vinyl mask which is discarded after. Many of these companies already have an email list of previous customers which is a valuable sales tool.
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
The Peekaboo effect can be applied to bathroom mirrors preexisting in homes or motels. Homeowners can choose their own artwork right out of a magazine if they like. The image can then be scanned into the computer, and converted to a mask. Motels can advertise their own services directly to their customers. Or they can profit by charging nearby restaurants, taxi services, or other businesses for advertising on their mirrors. Beauty salons can create hand held mirrors advertising their service for their customers to keep in their handbags. Which they will have to show off by fogging the mirror with their breath and showing their friends. On the back of the mirror would be the companies contact info including the sign company. The sky is the limit on this one.
Demonstrations are free, and pricing is negotiable.
Currently I am looking to work with Sign companies as they have the facility to create the vinyl mask which is discarded after. Many of these companies already have an email list of previous customers which is a valuable sales tool.
Written by Henry Grover Jr
To receive these posts in your inbox just type your address in the box box to the top right "Follow By Email".
For product sales henrygroverjr@gmail.com
Subscribe to:
Posts (Atom)