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plays an important role in industrial production with its characteristics of high efficiency and energy saving, low noise and intelligent control.
1. High-precision Cutting
Laser-cutting machines are capable of achieving extremely high-precision cuts. They utilize a high-density laser beam focused on the material's surface, with a spot diameter that can be as small as the micron level. For instance, when cutting metal foils for precision electronic components, these machines can accurately follow the designed cutting pattern, with an error margin controlled within ±0.1 mm. This precision is essential for the production of high-accuracy parts, such as small-scale metal components in the aerospace industry and finely-tuned metal stents used in medical equipment.
2. High-quality Cutting
The cutting edge produced by laser cutting is of high quality. The incisions created are relatively smooth and free of obvious burrs. This smoothness is due to the laser beam melting or vaporizing the material instantaneously during the cutting process, rather than squeezing or tearing the material's edge as traditional mechanical cutting does. For instance, when cutting stainless steel plates for high-end kitchen utensils, the smooth-cut edges are not only aesthetically pleasing but also minimize subsequent processing steps, such as grinding, thereby enhancing production efficiency.
The heat-affected zone is minimal. Laser cutting is a non-contact cutting method. Although heat is generated during the cutting process, it is concentrated in a very small area. For heat-sensitive materials, such as plastics or certain specialized alloys, a smaller heat-affected zone can help prevent alterations in material properties. For instance, when cutting high-precision plastic optical elements, this technique ensures that the optical properties of the elements remain unaffected after cutting.
3. Fast Cutting Speed
Cutting methods for thinner materials, such as low-carbon steel plates with a thickness of 1 to 3 mm, can achieve laser-cutting speeds of several meters per minute. This capability significantly enhances production efficiency during mass manufacturing. For instance, in the automotive manufacturing industry, when cutting auto body parts, the rapid cutting speed helps to shorten the production cycle and meet the demands of large-scale production. The laser-cutting speed offers a substantial advantage over traditional methods.
4. Wide Range of Material Adaptability
The laser-cutting machine is capable of cutting a wide variety of materials. This includes metallic materials such as steel, aluminum, and copper, as well as non-metallic materials like wood, plastic, rubber, and ceramic. Additionally, it can effectively cut composite materials. For instance, in the building and decoration industry, a laser-cutting machine can be used to cut marble and glass, creating exquisite decorative elements. In the clothing industry, it can cut fabrics to produce intricate clothing patterns.
5. High Flexibility
It is straightforward to achieve automation and numerical control programming. The laser-cutting machine can execute precise path planning and control through computer software, allowing for rapid cutting according to various designed patterns. For highly customized products, such as personalized jewelry, or in small-batch production scenarios where the cutting pattern frequently changes, the laser-cutting machine can be easily adjusted. Only the numerical control program needs to be modified to initiate a new cutting task.
6. Material-saving
Laser cutting offers high precision, allowing for precise control over the cutting path. As a result, it maximizes material usage during the cutting process. Compared to traditional cutting methods, laser cutting reduces both the cutting allowance and waste generation. For instance, in leather goods processing, precise cutting enhances the utilization rate of leather and lowers production costs.
Technical Parameter
Model | Power (KW) | Pressure(Bar) | Output m³/min | Dia. | Noise(dB) | Outline(MM) | Wt (KG) | |
Compressors for Laser Cutting - Variable Frequency | ||||||||
LY-10JPM | 7.5 | 16 | 0.6 | G1/2 | 60±2 | 800*720*950 | 220 | |
LY-15JPM | 11 | 16 | 0.9 | G3/4 | 62±2 | 950*800*1070 | 380 | |
LY-20JPM | 15 | 16 | 1.5 | G3/4 | 62±2 | 950*800*1070 | 410 | |
LY-30JPM | 22 | 16 | 2.2 | G11/4 | 65±2 | 1200*800*1240 | 650 | |
LY-40JPM | 30 | 16 | 3 | G11/4 | 66±2 | 1200*800*1240 | 720 | |
LY-50JPM | 37 | 16 | 3.7 | G11/2 | 68±2 | 1300*860*1135 | 840 | |
4-in-1 Compressors for Laser Cutting - Fixed Speed | ||||||||
LY-10JTA | 7.5 | 16 | 0.6 | G1/2 | 65±2 | 1400*750*1600 | 520 | |
18 | 0.59 | |||||||
LY-15JTA | 11 | 16 | 0.9 | G3/4 | 65±2 | 1700*880*1850 | 840 | |
18 | 0.89 | 1550*880*1850 | ||||||
LY-20JTA | 15 | 16 | 1.5 | G3/4 | 65±2 | 1700*880*1850 | 880 | |
18 | 1.48 | 1550*880*1850 | ||||||
LY-30JTA | 22 | 16 | 2.2 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
18 | 2.17 | 2100*980*2050 | ||||||
LY-40JTA | 30 | 16 | 3 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
4-in-1 Compressors for Laser Cutting - Variable Frequency | ||||||||
LY-10JTPM | 7.5 | 16 | 0.6 | G1/2 | 65±2 | 1400*750*1600 | 520 | |
18 | 0.59 | |||||||
LY-15JTPM | 11 | 16 | 0.9 | G3/4 | 65±2 | 1700*880*1850 | 840 | |
18 | 0.89 | 1550*880*1850 | ||||||
LY-20JTPM | 15 | 16 | 1.5 | G3/4 | 65±2 | 1700*880*1850 | 880 | |
18 | 1.48 | 1550*880*1850 | ||||||
LY-30JTPM | 22 | 16 | 2.2 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
18 | 2.17 | 2100*980*2050 | ||||||
LY-40JTMP | 30 | 16 | 3 | G11/4 | 66±2 | 2250*980*2050 | 1300 |
plays an important role in industrial production with its characteristics of high efficiency and energy saving, low noise and intelligent control.
1. High-precision Cutting
Laser-cutting machines are capable of achieving extremely high-precision cuts. They utilize a high-density laser beam focused on the material's surface, with a spot diameter that can be as small as the micron level. For instance, when cutting metal foils for precision electronic components, these machines can accurately follow the designed cutting pattern, with an error margin controlled within ±0.1 mm. This precision is essential for the production of high-accuracy parts, such as small-scale metal components in the aerospace industry and finely-tuned metal stents used in medical equipment.
2. High-quality Cutting
The cutting edge produced by laser cutting is of high quality. The incisions created are relatively smooth and free of obvious burrs. This smoothness is due to the laser beam melting or vaporizing the material instantaneously during the cutting process, rather than squeezing or tearing the material's edge as traditional mechanical cutting does. For instance, when cutting stainless steel plates for high-end kitchen utensils, the smooth-cut edges are not only aesthetically pleasing but also minimize subsequent processing steps, such as grinding, thereby enhancing production efficiency.
The heat-affected zone is minimal. Laser cutting is a non-contact cutting method. Although heat is generated during the cutting process, it is concentrated in a very small area. For heat-sensitive materials, such as plastics or certain specialized alloys, a smaller heat-affected zone can help prevent alterations in material properties. For instance, when cutting high-precision plastic optical elements, this technique ensures that the optical properties of the elements remain unaffected after cutting.
3. Fast Cutting Speed
Cutting methods for thinner materials, such as low-carbon steel plates with a thickness of 1 to 3 mm, can achieve laser-cutting speeds of several meters per minute. This capability significantly enhances production efficiency during mass manufacturing. For instance, in the automotive manufacturing industry, when cutting auto body parts, the rapid cutting speed helps to shorten the production cycle and meet the demands of large-scale production. The laser-cutting speed offers a substantial advantage over traditional methods.
4. Wide Range of Material Adaptability
The laser-cutting machine is capable of cutting a wide variety of materials. This includes metallic materials such as steel, aluminum, and copper, as well as non-metallic materials like wood, plastic, rubber, and ceramic. Additionally, it can effectively cut composite materials. For instance, in the building and decoration industry, a laser-cutting machine can be used to cut marble and glass, creating exquisite decorative elements. In the clothing industry, it can cut fabrics to produce intricate clothing patterns.
5. High Flexibility
It is straightforward to achieve automation and numerical control programming. The laser-cutting machine can execute precise path planning and control through computer software, allowing for rapid cutting according to various designed patterns. For highly customized products, such as personalized jewelry, or in small-batch production scenarios where the cutting pattern frequently changes, the laser-cutting machine can be easily adjusted. Only the numerical control program needs to be modified to initiate a new cutting task.
6. Material-saving
Laser cutting offers high precision, allowing for precise control over the cutting path. As a result, it maximizes material usage during the cutting process. Compared to traditional cutting methods, laser cutting reduces both the cutting allowance and waste generation. For instance, in leather goods processing, precise cutting enhances the utilization rate of leather and lowers production costs.
Technical Parameter
Model | Power (KW) | Pressure(Bar) | Output m³/min | Dia. | Noise(dB) | Outline(MM) | Wt (KG) | |
Compressors for Laser Cutting - Variable Frequency | ||||||||
LY-10JPM | 7.5 | 16 | 0.6 | G1/2 | 60±2 | 800*720*950 | 220 | |
LY-15JPM | 11 | 16 | 0.9 | G3/4 | 62±2 | 950*800*1070 | 380 | |
LY-20JPM | 15 | 16 | 1.5 | G3/4 | 62±2 | 950*800*1070 | 410 | |
LY-30JPM | 22 | 16 | 2.2 | G11/4 | 65±2 | 1200*800*1240 | 650 | |
LY-40JPM | 30 | 16 | 3 | G11/4 | 66±2 | 1200*800*1240 | 720 | |
LY-50JPM | 37 | 16 | 3.7 | G11/2 | 68±2 | 1300*860*1135 | 840 | |
4-in-1 Compressors for Laser Cutting - Fixed Speed | ||||||||
LY-10JTA | 7.5 | 16 | 0.6 | G1/2 | 65±2 | 1400*750*1600 | 520 | |
18 | 0.59 | |||||||
LY-15JTA | 11 | 16 | 0.9 | G3/4 | 65±2 | 1700*880*1850 | 840 | |
18 | 0.89 | 1550*880*1850 | ||||||
LY-20JTA | 15 | 16 | 1.5 | G3/4 | 65±2 | 1700*880*1850 | 880 | |
18 | 1.48 | 1550*880*1850 | ||||||
LY-30JTA | 22 | 16 | 2.2 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
18 | 2.17 | 2100*980*2050 | ||||||
LY-40JTA | 30 | 16 | 3 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
4-in-1 Compressors for Laser Cutting - Variable Frequency | ||||||||
LY-10JTPM | 7.5 | 16 | 0.6 | G1/2 | 65±2 | 1400*750*1600 | 520 | |
18 | 0.59 | |||||||
LY-15JTPM | 11 | 16 | 0.9 | G3/4 | 65±2 | 1700*880*1850 | 840 | |
18 | 0.89 | 1550*880*1850 | ||||||
LY-20JTPM | 15 | 16 | 1.5 | G3/4 | 65±2 | 1700*880*1850 | 880 | |
18 | 1.48 | 1550*880*1850 | ||||||
LY-30JTPM | 22 | 16 | 2.2 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
18 | 2.17 | 2100*980*2050 | ||||||
LY-40JTMP | 30 | 16 | 3 | G11/4 | 66±2 | 2250*980*2050 | 1300 |
Sheet Metal Processing: It can cut sheet metal materials, including stainless steel, carbon steel, and aluminum alloy, to manufacture various components such as chassis, cabinets, and ventilation ducts. This process achieves high precision and efficiency, accommodating different thicknesses and shapes while producing a smooth cutting surface and minimizing thermal deformation.
Mechanical Manufacturing: It is utilized to cut various mechanical components, such as gears, shafts, and connectors. This process can accommodate complex shapes and contours, thereby improving the precision and quality of the parts, reducing the need for subsequent processing procedures, and enhancing overall production efficiency.
Automobile Manufacturing: It can cut automobile body panels, frame components, engine parts, and more. For instance, it is capable of cutting the contours and holes of door panels, roofs, chassis, and other components, achieving high precision and rapid cutting. This capability enhances the level of automation and improves the quality of products in automobile production.
Shipbuilding: It is utilized for cutting ship steel plates and fabricating structural components of ships, including hull sections, decks, and bulkheads. The quality of the cutting seam is high, with excellent perpendicularity of the cutting surface. There is no slag inclusion, the oxide layer is minimal, the surface is smooth, and thermal deformation is minimal, which helps to reduce the workload for subsequent welding and processing.
Electronics and Electrical Industry
PCB Manufacturing: It can cut and drill printed circuit boards (PCBs), enabling high-precision processing. This technology accommodates PCBs of various shapes and sizes, thereby enhancing production efficiency, improving product quality, and reducing the scrap rate.
Electronic Equipment Enclosure Processing: It is utilized to cut the metal enclosures of electronic devices, such as mobile phones, computers, and tablets, enabling personalized design and precision manufacturing. This process can accommodate complex shapes, heat dissipation holes, and other structures, thereby enhancing both the appearance and performance of the product.
Sheet Metal Processing: It can cut sheet metal materials, including stainless steel, carbon steel, and aluminum alloy, to manufacture various components such as chassis, cabinets, and ventilation ducts. This process achieves high precision and efficiency, accommodating different thicknesses and shapes while producing a smooth cutting surface and minimizing thermal deformation.
Mechanical Manufacturing: It is utilized to cut various mechanical components, such as gears, shafts, and connectors. This process can accommodate complex shapes and contours, thereby improving the precision and quality of the parts, reducing the need for subsequent processing procedures, and enhancing overall production efficiency.
Automobile Manufacturing: It can cut automobile body panels, frame components, engine parts, and more. For instance, it is capable of cutting the contours and holes of door panels, roofs, chassis, and other components, achieving high precision and rapid cutting. This capability enhances the level of automation and improves the quality of products in automobile production.
Shipbuilding: It is utilized for cutting ship steel plates and fabricating structural components of ships, including hull sections, decks, and bulkheads. The quality of the cutting seam is high, with excellent perpendicularity of the cutting surface. There is no slag inclusion, the oxide layer is minimal, the surface is smooth, and thermal deformation is minimal, which helps to reduce the workload for subsequent welding and processing.
Electronics and Electrical Industry
PCB Manufacturing: It can cut and drill printed circuit boards (PCBs), enabling high-precision processing. This technology accommodates PCBs of various shapes and sizes, thereby enhancing production efficiency, improving product quality, and reducing the scrap rate.
Electronic Equipment Enclosure Processing: It is utilized to cut the metal enclosures of electronic devices, such as mobile phones, computers, and tablets, enabling personalized design and precision manufacturing. This process can accommodate complex shapes, heat dissipation holes, and other structures, thereby enhancing both the appearance and performance of the product.
Advertising Word Production: It can swiftly cut various metal advertising materials, including stainless steel, copper, and aluminum, while achieving intricate font designs and high-precision cutting results. This enhances both the efficiency and quality of advertising production.
Decorative Sheet Processing: It can cut and engrave acrylic sheets, wooden boards, plastic boards, and other decorative materials to create a variety of patterns and shapes, such as screens, partitions, and background walls, thereby fulfilling personalized decoration needs.
Medical Equipment Industry
It can be utilized to cut metal enclosures and components of medical equipment, including the casings of surgical instruments and diagnostic devices. This process ensures the precision and hygiene standards of the products while meeting the stringent requirements of the medical industry regarding product quality and safety.
Home Furnishing Manufacturing Industry
Furniture Manufacturing: It can cut materials such as wood, engineered boards, and metal for manufacturing furniture components, including the frames of tables and chairs, cabinet doors, and drawers. This process enables personalized customization and high-precision processing, thereby enhancing the quality and aesthetics of the furniture.
Kitchenware Manufacturing: It is utilized for cutting the panels and enclosures of range hoods, stoves, disinfection cabinets, and other kitchenware, enabling rapid prototyping and high-precision cutting, which enhances production efficiency and product quality.
Advertising Word Production: It can swiftly cut various metal advertising materials, including stainless steel, copper, and aluminum, while achieving intricate font designs and high-precision cutting results. This enhances both the efficiency and quality of advertising production.
Decorative Sheet Processing: It can cut and engrave acrylic sheets, wooden boards, plastic boards, and other decorative materials to create a variety of patterns and shapes, such as screens, partitions, and background walls, thereby fulfilling personalized decoration needs.
Medical Equipment Industry
It can be utilized to cut metal enclosures and components of medical equipment, including the casings of surgical instruments and diagnostic devices. This process ensures the precision and hygiene standards of the products while meeting the stringent requirements of the medical industry regarding product quality and safety.
Home Furnishing Manufacturing Industry
Furniture Manufacturing: It can cut materials such as wood, engineered boards, and metal for manufacturing furniture components, including the frames of tables and chairs, cabinet doors, and drawers. This process enables personalized customization and high-precision processing, thereby enhancing the quality and aesthetics of the furniture.
Kitchenware Manufacturing: It is utilized for cutting the panels and enclosures of range hoods, stoves, disinfection cabinets, and other kitchenware, enabling rapid prototyping and high-precision cutting, which enhances production efficiency and product quality.
Drainage: Manually drain the air tank before starting the machine every day to discharge the condensed water and oil in the tank.
Filter Cleaning and Replacement: Regularly clean and replace the filters to maintain the quality of the compressed air clean. Check the air filter every 500 hours and clean the dust and impurities on the surface. Replace the filter element every 2000 hours.
Component Inspection: Regularly check the working conditions of various components of the air compressor, such as the sealing ring of the intake valve, compressor lubricating oil, oil filter, oil vapor separator, pressure valve, relief valve, oil drain valve, drive belt, etc. Replace or maintain them in time according to the regulations.
Drainage: Manually drain the air tank before starting the machine every day to discharge the condensed water and oil in the tank.
Filter Cleaning and Replacement: Regularly clean and replace the filters to maintain the quality of the compressed air clean. Check the air filter every 500 hours and clean the dust and impurities on the surface. Replace the filter element every 2000 hours.
Component Inspection: Regularly check the working conditions of various components of the air compressor, such as the sealing ring of the intake valve, compressor lubricating oil, oil filter, oil vapor separator, pressure valve, relief valve, oil drain valve, drive belt, etc. Replace or maintain them in time according to the regulations.
Model | Power (KW) | Pressure(Bar) | Output m³/min | Dia. | Noise(dB) | Outline(MM) | Wt (KG) | |
Compressors for Laser Cutting - Variable Frequency | ||||||||
LY-10JPM | 7.5 | 16 | 0.6 | G1/2 | 60±2 | 800*720*950 | 220 | |
LY-15JPM | 11 | 16 | 0.9 | G3/4 | 62±2 | 950*800*1070 | 380 | |
LY-20JPM | 15 | 16 | 1.5 | G3/4 | 62±2 | 950*800*1070 | 410 | |
LY-30JPM | 22 | 16 | 2.2 | G11/4 | 65±2 | 1200*800*1240 | 650 | |
LY-40JPM | 30 | 16 | 3 | G11/4 | 66±2 | 1200*800*1240 | 720 | |
LY-50JPM | 37 | 16 | 3.7 | G11/2 | 68±2 | 1300*860*1135 | 840 | |
4-in-1 Compressors for Laser Cutting - Fixed Speed | ||||||||
LY-10JTA | 7.5 | 16 | 0.6 | G1/2 | 65±2 | 1400*750*1600 | 520 | |
18 | 0.59 | |||||||
LY-15JTA | 11 | 16 | 0.9 | G3/4 | 65±2 | 1700*880*1850 | 840 | |
18 | 0.89 | 1550*880*1850 | ||||||
LY-20JTA | 15 | 16 | 1.5 | G3/4 | 65±2 | 1700*880*1850 | 880 | |
18 | 1.48 | 1550*880*1850 | ||||||
LY-30JTA | 22 | 16 | 2.2 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
18 | 2.17 | 2100*980*2050 | ||||||
LY-40JTA | 30 | 16 | 3 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
4-in-1 Compressors for Laser Cutting - Variable Frequency | ||||||||
LY-10JTPM | 7.5 | 16 | 0.6 | G1/2 | 65±2 | 1400*750*1600 | 520 | |
18 | 0.59 | |||||||
LY-15JTPM | 11 | 16 | 0.9 | G3/4 | 65±2 | 1700*880*1850 | 840 | |
18 | 0.89 | 1550*880*1850 | ||||||
LY-20JTPM | 15 | 16 | 1.5 | G3/4 | 65±2 | 1700*880*1850 | 880 | |
18 | 1.48 | 1550*880*1850 | ||||||
LY-30JTPM | 22 | 16 | 2.2 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
18 | 2.17 | 2100*980*2050 | ||||||
LY-40JTMP | 30 | 16 | 3 | G11/4 | 66±2 | 2250*980*2050 | 1300 |
Model | Power (KW) | Pressure(Bar) | Output m³/min | Dia. | Noise(dB) | Outline(MM) | Wt (KG) | |
Compressors for Laser Cutting - Variable Frequency | ||||||||
LY-10JPM | 7.5 | 16 | 0.6 | G1/2 | 60±2 | 800*720*950 | 220 | |
LY-15JPM | 11 | 16 | 0.9 | G3/4 | 62±2 | 950*800*1070 | 380 | |
LY-20JPM | 15 | 16 | 1.5 | G3/4 | 62±2 | 950*800*1070 | 410 | |
LY-30JPM | 22 | 16 | 2.2 | G11/4 | 65±2 | 1200*800*1240 | 650 | |
LY-40JPM | 30 | 16 | 3 | G11/4 | 66±2 | 1200*800*1240 | 720 | |
LY-50JPM | 37 | 16 | 3.7 | G11/2 | 68±2 | 1300*860*1135 | 840 | |
4-in-1 Compressors for Laser Cutting - Fixed Speed | ||||||||
LY-10JTA | 7.5 | 16 | 0.6 | G1/2 | 65±2 | 1400*750*1600 | 520 | |
18 | 0.59 | |||||||
LY-15JTA | 11 | 16 | 0.9 | G3/4 | 65±2 | 1700*880*1850 | 840 | |
18 | 0.89 | 1550*880*1850 | ||||||
LY-20JTA | 15 | 16 | 1.5 | G3/4 | 65±2 | 1700*880*1850 | 880 | |
18 | 1.48 | 1550*880*1850 | ||||||
LY-30JTA | 22 | 16 | 2.2 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
18 | 2.17 | 2100*980*2050 | ||||||
LY-40JTA | 30 | 16 | 3 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
4-in-1 Compressors for Laser Cutting - Variable Frequency | ||||||||
LY-10JTPM | 7.5 | 16 | 0.6 | G1/2 | 65±2 | 1400*750*1600 | 520 | |
18 | 0.59 | |||||||
LY-15JTPM | 11 | 16 | 0.9 | G3/4 | 65±2 | 1700*880*1850 | 840 | |
18 | 0.89 | 1550*880*1850 | ||||||
LY-20JTPM | 15 | 16 | 1.5 | G3/4 | 65±2 | 1700*880*1850 | 880 | |
18 | 1.48 | 1550*880*1850 | ||||||
LY-30JTPM | 22 | 16 | 2.2 | G11/4 | 66±2 | 2250*980*2050 | 1300 | |
18 | 2.17 | 2100*980*2050 | ||||||
LY-40JTMP | 30 | 16 | 3 | G11/4 | 66±2 | 2250*980*2050 | 1300 |