High Levels UV Water Disinfection for Dechlorination
Basic Info
Model No.: YLC-500
Product Description
Model NO.: YLC-500 Application: Household and Industry Disinfection Method: Ultraviolet Lifespan of UV Lamp: 9000-12000 Hours Flow Rate: 20 Ton/Hour System Working Pressure Resistance: (0.6 MPa)6kg/Cm2 Brand of Ballast: Beasun Trademark: YLD Origin: Jiangyin, Jiangsu Certification: BV, ISO9001, SGS Voltage: 110V/220V/380V Bactericidal Efficienc: 98% Kill Total Coliforms Interface Type: Flange Alert System for Lamp: One Set Raw Water Supplying: Running Water Lamp Brand: Light Source/Philips Specification: CE, SGS, ISO HS Code: 8421219990 High Levels UV Water Disinfection for Dechlorination
When chlorine is injected into waters with naturally occurring humic acids, fulvic acids or other naturally occurring material, trihalomethane (THM) compounds are formed. Approximately 90% of the total THMs formed are chloroform, with the remaining 10% consisting of bromodichloromethane (CHCl2Br), dibromochloromethane (CHBr2Cl) and bromoform (CHBr3). Since THMs have been shown to be cancer-causing to laboratory animals in relatively low concentrations, there is concern about limiting their prevalence. The United States Environmental Protection Agency (USEPA), for example, has set the maximum contaminant level in primary drinking water to be 100 parts per billion (ppb).
Although chlorine is widely used in industry, many processes cannot tolerate it because of contamination and unwanted chemical reactions. It can accelerate corrosion of process vessels and piping and also causes damage to delicate process equipment such as Reverse Osmosis (RO) membranes and deionization (DI) resin units. It can also affect the taste, flavor and smell of drinks and liquids. It therefore must be removed once it has performed its disinfection function.
To date, the two most commonly used methods of chlorine removal have been granular activated carbon (GAC) filters or the addition of neutralizing chemicals such as sodium bisulfate. Both of these methods have their advantages, but they also have a number of significant drawbacks.
Granular Activated Carbon (GAC)
Activated carbon is frequently used in industrial applications such as beverage and pharmaceutical manufacturing and in point-of-use units for residential and commercial applications. However, GAC filters, which are usually located upstream of the RO membranes, also can serve as an incubator of bacteria because of their porous structure and nutrient-rich environment. Additional problems encountered with the use of GAC filters are:
? Increased head loss
? Regeneration costs
? Unpredictable chlorine breakthrough
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When chlorine is injected into waters with naturally occurring humic acids, fulvic acids or other naturally occurring material, trihalomethane (THM) compounds are formed. Approximately 90% of the total THMs formed are chloroform, with the remaining 10% consisting of bromodichloromethane (CHCl2Br), dibromochloromethane (CHBr2Cl) and bromoform (CHBr3). Since THMs have been shown to be cancer-causing to laboratory animals in relatively low concentrations, there is concern about limiting their prevalence. The United States Environmental Protection Agency (USEPA), for example, has set the maximum contaminant level in primary drinking water to be 100 parts per billion (ppb).
Although chlorine is widely used in industry, many processes cannot tolerate it because of contamination and unwanted chemical reactions. It can accelerate corrosion of process vessels and piping and also causes damage to delicate process equipment such as Reverse Osmosis (RO) membranes and deionization (DI) resin units. It can also affect the taste, flavor and smell of drinks and liquids. It therefore must be removed once it has performed its disinfection function.
To date, the two most commonly used methods of chlorine removal have been granular activated carbon (GAC) filters or the addition of neutralizing chemicals such as sodium bisulfate. Both of these methods have their advantages, but they also have a number of significant drawbacks.
Granular Activated Carbon (GAC)
Activated carbon is frequently used in industrial applications such as beverage and pharmaceutical manufacturing and in point-of-use units for residential and commercial applications. However, GAC filters, which are usually located upstream of the RO membranes, also can serve as an incubator of bacteria because of their porous structure and nutrient-rich environment. Additional problems encountered with the use of GAC filters are:
? Increased head loss
? Regeneration costs
? Unpredictable chlorine breakthrough
model | Processing capacity (Ton/Hour) | power (W) | inlet and outlet (inch) | working pressure (Kg/cm 2 ) | malfunction alert for UV lamp | reactor dimension (cm) L×W×H | dimension of panel(cm) | anchor bolt (cm) | overall weight (Kg) |
YLCn-005 | 0.3 | 16 | 1/2" | 6 | matched | 30×6×11 | 5 | ||
YLCn-008 | 1 | 25 | 1/2" | 6 | matched | 47×6.3×11 | 10 | ||
YLCn-050 | 2 | 40 | 1" | 6 | matched | 100×9×20 | Φ8.9×25 (diameter×length) | 69×4×Φ1 | 25 |
YLCn-150 | 6 | 80 | 1+1/4" | 6 | matched | 100×11×23 | 69×4×Φ1 | 30 | |
YLCn-200 | 8 | 120 | 1+1/2" | 6 | matched | 100×15.9×30 | Φ8.9×45 (diameter×length) | 69×7×Φ1 | 35 |
YLCn-300 | 12 | 160 | 2" | 6 | matched | 100×15.9×32 | 69×7×Φ1 | 40 | |
YLC-050 | 2 | 40 | DN25/1" | 6 | matched | 100×8.9×30 | 25×30×12 (L×H×w) | 60×4×Φ1 | 45 |
YLC-150 | 6 | 80 | DN32/1 1/4 " | 6 | matched | 100×10.8×30 | 60×4×Φ1 | 50 | |
YLC-200 | 8 | 120 | DN40/1 1/2 " | 6 | matched | 100×15.9×40 | 60×7×Φ1 | 60 | |
YLC-300 | 12 | 160 | DN50/2" | 6 | matched | 100×15.9×40 | 60×7×Φ1 | 70 | |
YLC-360 | 15 | 200 | DN65/2 1/2" | 6 | matched | 100×15.9×40 | 50×78×25 (L×H×W) | 60×7×Φ1 | 120 |
YLC-500 | 20 | 240 | DN65/2 1/2" | 6 | matched | 100×21.9×50 | 60×11×Φ1.2 | 130 | |
YLC-600 | 25 | 280 | DN80/3" | 6 | matched | 100×21.9×50 | 60×11×Φ1.2 | 140 | |
YLC-700 | 30 | 320 | DN100/4" | 6 | matched | 100×21.9×50 | 60×11×Φ1.2 | 150 | |
YLC-1000 | 40 | 360 | DN100/4" | 6 | matched | 100×21.9×50 | 60×11×Φ1.2 | 160 | |
YLC-1200 | 50 | 400 | DN125/5" | 6 | matched | 100×21.9×50 | 60×11×Φ1.2 | 180 | |
YLC-1500 | 60 | 420 | DN150/6" | 6 | matched | 170×27.3×57 | 120×16×Φ1.4 | 210 | |
YLC-2000 | 80 | 560 | DN150/6" | 6 | matched | 170×27.3×57 | 120×16×Φ1.4 | 220 | |
YLC-2500 | 100 | 700 | DN150/6" | 6 | matched | 170×27.3×57 | 60×128×30 (W×H×T) | 120×16×Φ1.4 | 275 |
YLC-3000 | 125 | 840 | DN150/6" | 6 | matched | 173×27.3×57 | 120×16×Φ1.4 | 300 | |
YLC-4000 | 150 | 1120 | DN200/8" | 6 | matched | 173×32.5×65 | 120×20×Φ1.6 | 325 | |
YLC-5000 | 200 | 1400 | DN200/8" | 6 | matched | 173×37.7×72 | 120×22×Φ1.6 | 350 | |
YLC-7000 | 300 | 2100 | DN250/10" | 6 | matched | 175×42.6×80 | 120×24×Φ2.0 | 400 | |
YLC-10K | 400 | 2520 | DN250/10" | 6 | matched | 176×52.9×95 | 60×150×40 (W×H×T) | 120×28×Φ2.2 | 475 |
YLC-15K | 600 | 3080 | DN300/12" | 6 | matched | 176×78×110 | 120×32×Φ2.4 | 600 | |
YLC-20K | 800 | 3920 | DN350/14" | 6 | matched | confirmed | confirmed | confirmed | confirmed |
YLC-25K | 1000 | 4760 | DN350/14" | 6 | matched | confirmed | confirmed | confirmed |
Product Categories : Ultraviolet Sterilizer > UV Water Sterilizer
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