2015年7月19日星期日

Main components introduction of Fiber Laser Cutting Machine from XT LASER

1.fiber laser source

2. Laser cutting head brand
3. Control system
1)China , Shanghai CypCut control system
2)American PA8000

4. Driving motors
Japanese YASKAWA 

Response quickly,High speed(3000 r),big torque,
strong overload capacity;
Widely used for fiber laser cutting machine

300-750w: X axis 850w YASKAWA servo motor ,Y axis 1300w servo motor,Z axis 400w

1000w: X axis 850w YASKAWA servo motor ,Y axis 2000w servo motor,Z axis 400w

2000-3000w: X axis 850w YASKAWA servo motor ,Y axis 2000w servo motor,Z axis 400w


5.Transmission mechanism
6.Auxiliary system
Functions:

1. Water chiller: cooling laser source and laser cutting head 
(Our standard water chiller is 1--1.5P water chiller for 300/500/750w fiber laser cutting machine
2-3P water chiller  for more than 1000w fiber laser cutting machine))

2.Voltage stabilizer:Electricity disturbances and volatility, offer suitable power supply.

3.Exhaust fan:Provide the negative pressure to prevent iron float in the sky

4.Industrial PC:Industrial used PC

5.Dryer: Remove water and oil from air.

6.Air Compressor:Offer compressed air, used to drive components and work as auxiliary gas to help cut
(NOTE: Dryer and Air Compressor are only using when Air is auxiliary gas)

Jason Wang  
Cell (Whatsapp): 008615288856453  
Wechat: feiyuyishouzhe2012 
Skype: xtlasermachine 
QQ:2237961517 |Tel:+86 531 88558038 |Fax:+86 531 81180745
Add:No.8 Aoti West Road,Jinan City, Shandong Province,China.




2015年7月4日星期六

Materials that can be laser engraved or marked

Materials that can be engraved

Natural materials

Directly "burning" images on wood were some of the first uses of engraving lasers. The laser power required here is often less than 10 watts depending on the laser being used as most are different. Hardwoods like walnut, oak, mahogany and maple produce good results.Softwoods can be judiciously engraved but tend to vaporize at less-consistent depths. Burning a softwood with a fan blowing on it requires lowest power, quickest speed of cut, and enough airflow to extinguish what is trying meanwhile to ignite. Hard papers and fiberboard work well; linty papers and newsprint are like softwoods. Fur is not engraveable; finished leathers though can be laser-engraved with a look very similar to hot-branding. Certain latex rubber compounds can be laser engraved; for example these can be used to fabricateinking-stamps.
Paper marking tape is sometimes used as a pre-engraving overcoat on finished and resiny woods so that cleanup is a matter of picking the tape off and out of the unengraved areas, which is easier than removing the sticky and smoky surround "halos" (and requires no varnish-removing chemicals).

Plastics

Standard cast acrylic plastic, acrylic plastic sheet, and other cast resins generally laser very well. A commonly engraved award is a cast acrylic shape designed to be lasered from the back side. Styrene (as in compact disc cases) and many of the thermoforming plastics will tend to melt around the edge of the engraving spot. The result is usually "soft" and has no "etch" contrast. The surface may actually deform or "ripple" at the lip areas. In some applications this is acceptable; for example date markings on 2-litre soda bottles do not need to be sharp.
For signage and faceplates, etc., special laser-engraving plastics were developed. These incorporate silicate or other materials which conduct excess heat away from the material before it can deform. Outer laminates of this material vaporize easily to expose different colored material below.
Other plastics may be successfully engraved, but orderly experimentation on a sample piece is recommended. Bakelite is said to be easily laser-engraved; some hard engineering plastics work well. Expanded plastics, foams and vinyls however are generally candidates for routing rather than laser engraving. Urethane and sillicone plastics usually don't work well—unless it is a formulation filled with cellulose, stone or some other stable insulor material.
Many light switchplates from companies such as leviton or Lutron can be laser engraved. Again, experimentation may be necessary to develop the correct laser settings to result in engraving the surface rather than melting it. Often the laser engraving is followed by paint filling the engraved surface to produce more contrast between the engraved surface and the surrounding surface.

Metals

The best traditional engraving materials started out to be the worst laser-engravable materials. This problem has now been solved using lasers at shorter wavelengths than the traditional 10,640 nm wavelength CO2 laser. Using Yb: Fiber Lasers, Nd:YVO4 or Nd:YAG lasers at 1,064 nm wavelength, or its harmonics at 532 and 355 nm, metals can now easily be engraved using commercial systems.

[editCoated metals

However, the same conduction that works against the spot vaporization of metal is an asset if the objective is to vaporize some other coating away from the metal. Laser engraving metal plates are manufactured with a finely-polished metal, coated with an enamel paint made to be "burned off". At levels of 10-30 watts, excellent engravings are made as the enamel is removed quite cleanly. Much laser engraving is sold as exposed brass or silver-coated steel lettering on a black or dark-enamelled background. A wide variety of finishes are now available, including screen-printed marble effects on the enamel. Spray coatings can be obtained for the specific use of laser engraving metals, these sprays apply a coating that is visible to the laser light which fuses the coating to the substrate where the laser passed over. Typically, these sprays can also be used to engrave other optically invisible or reflective substances such as glass and are available in a variety of colours. (1)

[editStone and glass

Stone and glass do not turn gaseous very easily. As expected, this makes them generally a better candidate for other means of engraving, most notably sandblastin or cutting using diamonds and water. But when a laser hits glass or stone, something else interesting happens: it fractures. Pores in the surface expose natural grains and crystalline "stubs" which, when heated very quickly, can separate a microscopic sized "chip" from the surface because the hot piece is expanding relative to its surroundings. So lasers are indeed used to engrave on glass, and if the power, speed and focus are just right, excellent results can be achieved (2). One should avoid large "fill" areas in glass engraving because the results across an expanse tend to be uneven; the glass ablation simply cannot be depended on for visual consistency, which may be a disadvantage or an advantage depending on the circumstances and the desired effect.

Jewelry

The demand for personalized jewelry has made jewelers more aware of the benefits of the laser engraving process.
Jewelers found that by using a laser, they could tackle an engraving task with greater precision. In fact, jewelers discovered that laser engraving allowed for more precision than other types of engraving. At the same time, jewelers discovered that laser applied engravings had a number of other desirable features.
At one time jewelers who attempted to do laser engraving did need to use large pieces of equipment. Now the devices that perform laser engraving come in desktop units. Some entrepreneurs have placed such units in mall kiosks. That has made laser engraving jewelry much more accessible. The makers of machines for laser engraving jewelry have developed some very specialized equipment. They have designed machines that can engrave the inside of a ring. They have also created machines that have the ability to engrave the back of a watch.
A laser can cut into both flat and curved surfaces. Jewelry contains both flat and curved surfaces. That points-up the reason why jewelers have welcomed all the adaptations for the creation of laser engraved jewelry.

Fine Art

Laser engraving can also be used to create works of fine art. Generally this involves engraving into planar surfaces, to reveal lower levels of the surface or to create grooves and striations which can be filled with inks, glazes, or other materials. Some laser engravers have rotary attachments which can engrave around an object. Artists may digitize drawings, scan or create images on a computer, and engrave the image onto any of the materials cited in this article.

Defination of Laser Engraving or Laser Marking

Laser

Laser engraving, or laser marking, is the practice of using laser to engrave or mark an object. The technique does not involve the use of inks, nor does it involve tool bits which contact the engraving surface and wear out. These properties distinguish laser engraving from alternative engraving or marking technologies where bit heads have to be replaced regularly or inks have to be used.
The impact of laser engraving has been more pronounced for specially-designed "laserable" materials. These include laser-sensitive polymers and novel metal alloys.
The term laser marking is also used as a generic term covering a broad spectrum of surfacing techniques including printing, hot-branding and laser bonding. The machines for laser engraving and laser marking are the same, so that the two terms are usually interchangeable.
laser engraving machine can be thought of as three main parts: a laser, a controller, and a surface. The laser is like a pencil - the beam emitted from it allows the controller to trace patterns onto the surface. The controller (usually a computer) controls the direction, intensity, speed of movement, and spread of the laser beam aimed at the surface. The surface is picked to match what the laser can act on.
There are three main genres of engraving machines: The most common is the X-Y table where, usually, the workpiece (surface) is stationary and the laser optics move around in X and Y directions, directing the laser beam to draw vectors. Sometimes the laser is stationary and the workpiece moves. Sometimes the workpiece moves in the Y axis and the laser in the X axis. A second genre is for cylindrical workpieces (or flat workpieces mounted around a cylinder) where the laser effectively traverses a fine helix and on/off laser pulsing produces the desired image on a raster basis. In the third method, both the laser and workpiece are stationary and galvo mirrors move the laser beam over the workpiece surface. Laser engravers using this technology can work in either raster or vector mode.
The point where the laser (the terms "laser" and "laser beam" may be used interchangeably) touches the surface should be on the focal plane of the laser's optical system, and is usually synonymous with its focal point. This point is typically small, perhaps less than a fraction of a millimeter (depending on the optical wavelength). Only the area inside this focal point is significantly affected when the laser beam passes over the surface. The energy delivered by the laser changes the surface of the material under the focal point. It may heat up the surface and subsequently vaporizethe material, or perhaps the material may fracture (known as "glass" or "glass up") and flake off the surface. This is how material is removed from the surface to create an engraving.
If the surface material is vaporized during laser engraving, ventilation through the use of blowers or a vacuum pump are almost always required to remove the noxious fumes and smoke arising from this process, and for removal of debris on the surface to allow the laser to continue engraving.
A laser can remove material very efficiently because the laser beam can be designed to deliver energy to the surface in a manner which converts a high percentage of the light energy into heat. The beam is highly focused and collimated- in most non-reflective materials like wood, plastics and enamel surfaces, the conversion of light energy to heat is more than {x%} efficient.[citattoin needed] However, because of this efficiency, the equipment used in laser engraving may heat up rather quickly. Elaborate cooling systems are required for the laser. Alternatively, the laser beam may be pulsed to decrease the amount of excessive heating.
Different patterns can be engraved by programming the controller to traverse a particular path for the laser beam over time. The trace of the laser beam is carefully regulated to achieve a consistent removal depth of material. For example, criss-crossed paths are avoided to ensure that each etched surface is exposed to the laser only once, so the same amount of material is removed. The speed at which the beam moves across the material is also considered in creating engraving patterns. Changing the intensity and spread of the beam allows more flexibility in the design. For example, by changing the proportion of time (known as "duty-cycle") the laser is turned on during each pulse, the power delivered to the engraving surface can be controlled appropriately for the material.
Since the position of the laser is known exactly by the controller, it is not necessary to add barriers to the surface to prevent the laser from deviating from the prescribed engraving pattern. As a result, no resistive mask is needed in laser engraving. This is primarily why this technique is different from older engraving methods.
A good example of where laser engraving technology has been adopted into the industry norm is the production line. In this particular setup, the laser beam is directed towards a rotating or vibrating mirror. The mirror moves in a manner which may trace out numbers and letters onto the surface being marked. This is particularly useful for printing dates, expiry codes, and lot numbering of products traveling along a production line. Laser engraving has allowed materials made of plastic and glass to be marked "on the move". The location where the marking takes place is called a "marking laser station", an entity often found in packaging and bottling plants. Older, slower technologies such as hot stamping and pad printing have largely been phased out and replaced with laser engraving.
For more precise and visually decorative engravings, a laser table is used. A laser table (or "X-Y table") is a sophisticated setup of equipment used to guide the laser beam more precisely. The laser is usually fixed permanently to the side of the table and emits light towards a pair of movable mirrors so that every point of the table surface can be swept by the laser. At the point of engraving, the laser beam is focused through a lens at the engraving surface, allowing very precise and intricate patterns to be traced out.
A typical setup of a laser table involves the fixed laser emitting light parallel to one axis of the table aimed at a mirror mounted on the end of an adjustable rail. The beam reflects off the mirror angled at 45 degrees so that the laser travels a path exactly along the length of the rail. This beam is then reflected by another mirror mounted to a movable trolley which directs the beam perpendicular to the original axis. In this scheme, two degrees of freedom(one vertical, and one horizontal) for etching can be represented.
In other laser engraving devices such as flat table or drum engraving, the laser beam is controlled to direct most of its energy a fixed penetration depth into the material to be engraved. In this manner, only a particular depth of material is removed when the engraving takes place. A simple machined stick or angle-iron can be used as a tool to help trained technologists adjust the engraver to achieve the required focusing. This setup is preferred for surfaces which do not vary in height appreciably.
For surfaces that vary in height, more elaborate focusing mechanisms have been developed. Some are known as dynamic auto focus system They adjust the lasing parameters in real time to adapt to the changes to the material as it is being etched. Typically, the height and depth of the surface is monitored with devices tracking changes to ultrasound,infrared,or visible light aimed at the engraving surface. These devices, known as pilot beams or pilot lasers (if a laser is used) help guide the adjustments made to the lens of the laser in determining the optimal spot to focus on the surface and remove material effectively.
"X-Y" laser engraving machines may operate in vector and raster mode.
Vector engraving follows the line and curve of the pattern to be engraved, much like a pen-based plotter draws by constructing line segments from a description of the outlines of a pattern. Much early engraving of signs and plaques (laser or otherwise) used pre-stored font outlines so that letters, numbers or even logos could be scaled to size and reproduced with exactly defined strokes. Unfortunately, "fill" areas were problematic, as cross-hatching patterns and dot-fills sometimes exhibited moiré effects or uber-patternscaused by the imprecise calculation of dot spacings. Moreover, rotations of a font or dynamic scaling often were beyond the capabilities of the font-rendering device. The introduction of the PostScriptpage-description language now allows much greater flexibility—now virtually anything that can be described in vectors by PostScript-enabled software like CorelDRAW or Adobe Illustrator can be outlined, filled with suitable patterns, and laser-engraved.
Raster engraving traces the laser across the surface in a back-and-forth slowly-advancing linear
pattern that will remind one of the printhead on an inkjet or similar printer. The pattern is usually optimized by the controller/computer so that areas to either side of the pattern which aren't to be engraved are ignored and the trace across the material is thus shortened for better effciency. The amount of advance of each line is normally less than the actual dot-size of the laser; the engraved lines overlap just slightly to create a continuity of engravure. As is true of all rasterized devices, curves and diagonals can sometimes suffer if the length or position of the raster lines varies even slightly in relation to the adjacent raster scan; therefore exact positioning and repeatability are critically important to the design of the machine. The advantage of rasterizing is the near effortless "fill" it produces. Most images to be engraved are bold letters or have large continuously-engraved areas, and these are well-rasterized. Photos are rasterized (as in printing), with dots larger than that of the laser's spot, and these also are best engraved as a raster image. Almost any page-layout software can be used to feed a raster driver for an X-Y or drum laser engraver. While traditional sign and plaque engraving tended to favor the solid strokes of vectors out of necessity, modern shops tend to run their laser engravers mostly in raster mode, reserving vector for a traditional outline "look" or for speedily marking out lines or " hatches" where a plate is to be cut.


Contact : Jason Wang 
Email:xintian102@xtlaser.com
Cell(Whatsapp): +86 15288856453
Skype:xtlasermachine
Wechat:feiyuyishouzhe2012
QQ:2237961517
Tel:86-531-88558038 l Fax: 86-531-81180745 l PC:25000
NO.8 Aoti West Road..Jinan,Shandong,China

2015年6月11日星期四

Package of Fiber Laser Cutting Machine

Package of Fiber Laser Cutting Machine

XT LASER , Professional in Laser Industry for More than 11 years, 
Contact : Jason Wang 
Email:xintian102@xtlaser.com
Cell(Whatsapp): +86 15288856453
Skype:xtlasermachine
Wechat:feiyuyishouzhe2012
QQ:2237961517
Tel:86-531-88558038 l Fax: 86-531-81180745 l PC:25000
NO.8 Aoti West Road..Jinan,Shandong,China

Fiber Vs CO2 Lasers

Fiber Vs CO2 Lasers

What’s the ultimate laser for your application – should I choose Fibre laser, also known as Solid State Laser (SSL), or a CO2 laser?
Answer: It depends on the type and thickness of the material you are cutting.
Why?: Due to the rate at which the material absorbs the laser. You need to choose the right laser for your application.
The absorption rate is influenced by the wavelength of the laser and also the angle of incidence.
Different types of lasers have different wavelengths, for example the fibre (SSL) laser’s wavelength is far smaller at 1 micron (on the right) than the CO2 lasers wavelength at 10 micron, shown on the left:


The angle of incidence means, the distance between point at which the laser beam hits the material (or surface), perpendicular (at 90) to the surface, so where it makes a T shape.
The angle of incidence increases (shown as a1 and a2 below) as the material increases in thickness. You can see below that with the thicker material, the orange line is at a greater angle than the blue line on the diagram below.

Which laser type for which application?

Fibre Laser/SSL
Highlights
  • Speed – Faster than CO2 lasers in thin materials as the laser can be absorbed quickly slight lead in speed when cutting with Nitrogen (fusion cutting)
  • Quality – comparable up to 5mm • Flexibility – low, suitable for materials up to 5mm in thickness
  • Cost per part – less than the CO2  laser, up to 5mm in sheet thickness
  • Safety – Strict safety precautions must be taken as the laser can pass straight through to the eye’s retina.
  • Beam guidance – fibre optics
  • Fiber laser source photoelectric conversion efficiency is 25% to 25%, so the power consumption of the machine is very low
CO2 Laser
Highlights
  • Speed – Faster than Fibre lasers in materials thicker than 20mm carbon steel, 10mm stainless steel and 8mm aluminium.  as the laser can be absorbed better at higher levels of incidence.
  • Quality – Quality is consistent throughout all thicknesses of material
  • Flexibility – high, suitable for all material thicknesses
  • Costs per part – reduces for materials over 5mm in thickness.
  • Safety – CO2 laser light (10µm) is absorbed by the cornea, there is no risk of irreparable damage to the retina.
  • Beam guidance – mirror optics.
  • Generally  between 2000 w and 4000w power, but because of the photoelectric conversion efficiency is very low, only about 10%, so the power consumption is huge, with laser power of fiber laser cutting machine is increasing, it has a tendency that CO2 lasers cutting machine will be replaced by optical fiber laser cutting machine.
Cutting with Oxygen (flame cutting) – there is no difference in quality or speed shown between the two types of lasers.

Contact : Jason Wang 
Email:xintian102@xtlaser.com
Cell(Whatsapp): +86 15288856453
Skype:xtlasermachine
Wechat:feiyuyishouzhe2012
QQ:2237961517
Tel:86-531-88558038 l Fax: 86-531-81180745 l PC:25000
NO.8 Aoti West Road..Jinan,Shandong,China

2015年6月7日星期日

Three advantages of fiber lase cutting machine from XT LASER

Three advantages of fiber lase cutting machine from XT LASER

1. Gandtry Structure:

Gantry structure include Single drive and Dual drive.  Single drive is easy dislocated when cutting. But Dual drive will never have such problem.

XT LASER always applied Dual drive for fiber laser cutting machine, working condition is very stable.

As laser cutting industry need much faster, more precise and more stable, Gantry structure has occupied the main market in fiber laser cutting machine field, because of its stability .

2. Bi-side Driving
Bi-side Driving Fiber laser cutting machine with Gantry structure has two type of motion mode. One is Gantry moving, worktable is fixed
Another is Gantry is fixted , worktable is moving.

Fiber laser cutting machine from XT LASER applied the first type, it is Bi-side Driving. It means at both side of Gantry beam, there are installing gear and rack and servo motors symmetrically.  So double gear and rack move together, double servo motors move together, so it cam make sure that beam can take same force and beam can move synchronously.

3. Machine bed quality
Nowadays, there are two kinds of machine bed. One is Square tube welding lathe bed. Another is Casting lathe bed
Machine bed from XT LASER is Casting lathe bed. 
Splice welding structure of the laser cutting machine bed mean welding steel plates together. The partial material structure will be deformed in the process of welding. Because the whole part can not get same heat, so every part cannot get same precise affect.
It will affect cutting precision fundamently.

To improve the whole machine performance, fundamentally to avoid adverse factors, XT relevant technical personnel designed the casting lathe bed. 
Casting parts have many advantages, such as:wear-resisting, corrosion resistance, shock absorption and other comprehensive performance 
XT LASER has many years of experience in processing large machine tool lathe bed, each lathe bed will be 30 days to 45 days after rough machining natural failure, the internal stress release completely after finish machining, to ensure accuracy. 
Every finished lathe bed ,  guide r
ail at a distance of 2.5 meters, the parallel degree is less than 0.02 mm. Have a solid bed, to ensure efficient and high precision of  fast cutting speed.



2015年5月18日星期一

Questions will be asked by customers before buying laser machines from XT LASER


Most of customers will ask following questions :

1.What is warranty period of whole laser machine?
XT LASER offer 2 years for whole laser machines, if anything wrong happens to machine unhumanly, XT LASER will send spare parts free of charge to customers.

2.How about Aftersales service?
XT LASER has professional aftersales service teams, standing by 24 hours , 7 days per week.
Video chatting, remote control , phone calling .etc are some ways to be used for serve customers.
Try best to solve every problem for customers.
Even engineers are available in customers factory,if necessary.

3. Which marking software you use with laser machine?
Ezcad marking software is most popular in market, very easy to operate and more powerful function. 
Here is video link: https://youtu.be/YIlMRVM5HF8

4. CE , ISO , BV , FDA certificates can be offered by XT LASER.