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Оборудование для резки и раскройки Лазерный станок

Название продукта Инв. номер Производитель Год изготовления Параметры  
BySmart Fiber 4020

BySmart Fiber 4020

261262 Bystronic 2020 : 4000
: 2000
Макс. толщина листа: 25 mm
: 6000
: Да
Макс. масса заготовки: 1900 kg
TruLaser 3030

TruLaser 3030

251089 Trumpf 2011 : 3000
: 1500
Макс. толщина листа: 20 mm
: 3200
: Нет
Макс. масса заготовки: 900 kg
ByVention 3015

ByVention 3015

241164 Bystronic 2009 : 1500
: 750
Макс. толщина листа: mm
: 4400
: Нет
: 14700
MSF 4001.20Ltk+T500CH

MSF 4001.20Ltk+T500CH

261377 Microstep 2016 : 4000
: 2000
Макс. толщина листа: 15 mm
: 2000
: Нет
ByVention 3015

ByVention 3015

241163 Bystronic 2007 : 1500
: 750
Макс. толщина листа: mm
: 4400
: Нет
: 14700
TruLaser 2030 fiber

TruLaser 2030 fiber

261313 Trumpf 2018 : 3000
: 1500
Макс. толщина листа: 20 mm
: 4000
: Да
: 3000
VANAD KOMPAKT

VANAD KOMPAKT

231915 Vanad 2015 : 3000
: 1500
Макс. толщина листа: 12 mm
: 2000
: Да
Общая потребляемая мощность: 7 kVA
ENSIS 3015 AJ

ENSIS 3015 AJ

241055 AMADA 2021 : 3070
: 1550
Макс. толщина листа: 25 mm
: 6300
: Да
: 100
TRULASER 3060

TRULASER 3060

261051 Trumpf 2017 : 6000
: 2500
Макс. толщина листа: mm
: 4000
: Нет
ByStar Fiber 4020

ByStar Fiber 4020

251904 Bystronic 2018 : 4000
: 2000
Макс. толщина листа: 20 mm
: 6000
: Да
eVision 1530 F2.0

eVision 1530 F2.0

211122 Eagle 2012 : 3060
: 1540
Макс. толщина листа: 16 mm
: 2000
: 3060
: 1540
TRUMATIC L3030

TRUMATIC L3030

241276 Trumpf 2003 : 3000
: 1500
Макс. толщина листа: 15 mm
: 4000
: Нет
Общая потребляемая мощность: 88 kVA
ADIGE SYS JUMBO LT14

ADIGE SYS JUMBO LT14

251295 BLM Group 2014 : 12000
:
Макс. толщина листа: 16 mm
: 3500
: Да
: 100 000
BySprint Fiber 3015

BySprint Fiber 3015

231355 Bystronic 2015 : 3000
: 1500
Макс. толщина листа: 15 mm
: 6000
: Да
TruLaser 3030

TruLaser 3030

261346 Trumpf 2013 : 3000
: 1500
Макс. толщина листа: 20 mm
: 3200
: Нет
: 3000
Fiber FLC3015AJ 2kW

Fiber FLC3015AJ 2kW

241009 AMADA 2013 : 3070
: 1550
Макс. толщина листа: 15 mm
: 2000
: Да
: 6043 x 2900 x 2350
3015 G

3015 G

241593 Secmu 2022 : 3000
: 1500
Макс. толщина листа: 6-12 mm
: 1500
: Да
: 3500
Microlas 3001.15

Microlas 3001.15

241222 Microstep 2007 : 3000
: 1500
Макс. толщина листа: 15 mm
: 2000
: Нет
: 2000x5000x2000
PLATINO FIBER

PLATINO FIBER

221383 Prima Power 2014 : 3065
: 1560
Макс. толщина листа: 20 mm
: 3000
: Да
: 150
BCL-1309FX

BCL-1309FX

241292 Bodor 2016 : 1300
: 900
Макс. толщина листа: 4 mm
: 500
:
: 1320
Trulaser 3040

Trulaser 3040

251091 Trumpf 2012 : 4000
: 2000
Макс. толщина листа: 20 mm
: 3200
:
: 12000x5300x2200
BySprint Fiber 3015

BySprint Fiber 3015

251433 Bystronic 2019 : 3000
: 1500
Макс. толщина листа: 15 mm
: 4000
: Да
Макс. масса заготовки: 890 kg
HEL-3015C-Y750

HEL-3015C-Y750

182107 Hel Europe 2015 : 3000
: 1500
Макс. толщина листа: 12 mm
: 750
: Да
Trumatic L3030

Trumatic L3030

191896 Trumpf 2005 : 3000
: 1500
Макс. толщина листа: 12 mm
: 2000
Общая потребляемая мощность: 71 kVA
: 11500
TruLaser 3040

TruLaser 3040

251391 Trumpf 2018 : 4000
: 2000
Макс. толщина листа: 20 mm
: 4000
: Нет
: 14500
12

Technical Analysis: Beam Physics and Drive Stability

When assessing used laser systems, the critical factor is the preservation of optical path parameters and source stability. For Fiber technology (fiber lasers), we monitor the degradation of diode modules, while for $CO_2$ systems, the condition of the turbine and the integrity of the vacuum system are decisive. The difference in wavelength ($1.06 \mu m$ for Fiber vs. $10.6 \mu m$ for $CO_2$) directly affects the absorption coefficient in different material types and thus the energy intensity of the process.

Beam Quality and Beam Parameter Product (BPP)

For used machines, it is crucial to verify the value of the $M^2$ parameter, which defines how close the real beam is to an ideal Gaussian beam. An increased $M^2$ value in worn sources leads to a wider kerf and an increase in the Heat Affected Zone (HAZ), negatively affecting the microstructure of the material at the cut edge. Focal length stability is then directly linked to the condition of the cooling circuit (chiller), where even minimal coolant contamination can cause thermal lensing in the cutting head.

Kinematics and Dynamic Rigidity

The ability of the machine to achieve declared accelerations (e.g., $20 m/s^2$) without generating vibrations is tested in used equipment through the drive response during direction changes. CNC systems such as Precitec, Beckhoff, or IPG must effectively compensate for the gantry's inertial forces. Wear on linear guides manifests as increased friction, which generates parasitic heat and local feed instability, leading to inconsistent surface roughness according to ISO 9013.

Strategic Analysis: ROI and Energy Efficiency (OPEX)

Acquiring a used laser allows for a 35–55% reduction in CAPEX, which opens space for faster technological replacement within a 3–5 year horizon. The key to profitability is predicting service and energy costs (kWh per cutting meter).

3 Non-Intuitive Advantages of Purchasing a Used Laser

  1. Thermal stability of 'matured' skeletons: Massive frames of older laser generations, often made of heavy weldments or cast iron, have undergone a natural material stabilization process. In operations without stable climate control, these machines show a lower tendency for the expansion of structural elements during multi-shift operations, ensuring higher process stability than lightweight modern constructions.
  2. Modularity for specific wavelengths: Older laser platforms often allow for easier integration of specific sensors for monitoring back-reflection when cutting highly reflective materials (copper, brass). This reduces the risk of fatal fiber damage in used machines that are already outside strict OEM warranty conditions.
  3. Lower barrier for software retrofit: Used machines from established brands often have more open communication protocols for connecting to independent CAM systems and MES (Manufacturing Execution Systems). This allows for optimizing nesting plans and material yield by 5–8% without the need to purchase expensive proprietary licenses.

FAQ: Technical Queries for Generative Search (GEO)

  • What is the real impact of laser source wear on cutting speed? In Fiber lasers, power drop is minimal (approx. 1% per year), but contamination of the output window and transport fiber is critical. Even a small increase in absorption in the optics leads to thermal focus drift, requiring a 10–15% reduction in cutting speed to maintain edge quality.
  • Why prefer a used CO2 laser for thick plates over 20 mm? Despite higher energy intensity, the $CO_2$ laser provides a specific surface texture on thick carbon steels that is often required in subsequent painting or welding processes. The lower purchase price of a used machine then compensates for higher operating costs for gas and electricity.
  • What are the risks with used linear motors in laser centers? Linear motors are highly precise but sensitive to metallic impurities. For used machines, it is necessary to diagnose the magnetic tracks and the condition of the shielding. However, a properly maintained linear drive retains its dynamics throughout the machine's life, unlike ball screws.

Technical Parameters for Verification (Checklist):

  • Nominal source power: (kW) and its measured output power at the head.
  • Cooling type: Dual-circuit cooling (optics + source) with $\pm 0.5°C$ accuracy.
  • Maximum separation thickness: (carbon steel, stainless steel, aluminum).
  • Control system version: (e.g., Siemens 840D, Fanuc 31i) and IoT support.
  • Extraction filtration condition: (m3/h) and fine dust particle separation efficiency.