Description
PCIE-5565PIORC-100A00 Multi channel module
высотой 3U, расположенный в раме управления под DSPX.
волоконно – оптический разъем на передней панели и передаются в модуль обнаружения заземления.
ABB: Запасные части для промышленных роботов серии DSQC, Bailey INFI 90, IGCT, например: 5SHY6545L0001 AC1027001R0101 5SXE10 – 0181, 5SHY3545 L0009, 5SHI3545L0010 3BHB013088 R0001 3BHE009681R0101 GVC750BE101, PM866, PM861K01, PM864, PM510V16, PPD512, PPPD113, PP836A, P865A, 877, PPP881, PPPP885, PPSL500000 4 3BHL00390P0104 5SGY35L4510 и т.д.
General Electric: запасные части, такие как модули, карты и приводы. Например: VMVME – 7807, VMVME – 7750, WES532 – 111, UR6UH, SR469 – P5 – HI – A20, IS230SRTDH2A, IS220PPDAH1B, IS215UCVEH2A, IC698CPE010, IS200SRTDH2ACB и т.д.
Система Bently Nevada: 350 / 3300 / 1900, предохранительные зонды и т.д., например: 3500 / 22M, 3500 / 32, 3500 / 15, 3500 / 23500 / 42M, 1900 / 27 и т.д.
Системы Invis Foxboro: Серия I / A, управление последовательностью FBM, трапециевидное логическое управление, обработка отзыва событий, DAC,
обработка входных / выходных сигналов, передача и обработка данных, такие как FCP270 и FCP280, P0904HA, E69F – TI2 – S, FBM230 / P0926GU, FEM100 / P0973CA и т.д.
Invis Triconex: Модуль питания, модуль CPU, модуль связи, модуль ввода – вывода, например 300830937214351B, 3805E, 831235114355X и т.д.
Вудворд: контроллер местоположения SPC, цифровой контроллер PEAK150, например 8521 – 0312 UG – 10D, 9907 – 149, 9907 – 162, 9907 – 164, 9907 – 167, TG – 13 (8516 – 038), 8440 – 1713 / D, 9907 – 018 2301A, 5466 – 258, 8200 – 226 и т.д.
Hima: модули безопасности, такие как F8650E, F8652X, F8627X, F8678X, F3236, F6217, F6214, Z7138, F8651X, F8650X и т.д.
Honeywell: Все платы DCS, модули, процессоры, такие как: CC – MCAR01, CC – PAIH01, CC – PAIH02, CC – PAIH51, CC – PAIX02, CC – PAON01, CC – PCF901, TC – CR014, TC – PD011, CC – PCNT02 и т.д.
Motorola: серии MVME162, MVME167, MVME172, MVME177, такие как MVME5100, MVME5500 – 0163, VME172PA – 652SE, VME162PA – 344SE – 2G и другие.
Xycom: I / O, платы VME и процессоры, такие как XVME – 530, XVME – 674, XVME – 957, XVME – 976 и т.д.
Коул Морган: Сервоприводы и двигатели, такие как S72402 – NANA, S6201 – 550, S20330 – SRS, CB06551 / PRD – B040SSIB – 63 и т. Д.
Bosch / Luxer / Indramat: модуль ввода / вывода, контроллер PLC, приводной модуль, MSK060C – 0600 – NN – S1 – UP1 – NNN, VT2000 – 52 / R900033828, MHD041B – 144 – PG1 – UN и т.д.
In the Internet of Things era, look at the IOT strategic deployment of the “four major families” of industrial robots
When we talk about Industry 4.0 or smart manufacturing, we cannot help but mention the “four major families” of robots – KUKA, ABB, FANUC, and Yaskawa,
because as the industrial robot companies with the highest level of intelligence at present, they are in the industry They have important influence. In the era of the
Internet of Things, what are these four major families doing?
As a relatively mature product, industrial robots are difficult to judge from the perspective of ordinary users. Especially in today”s era, it is impossible to create a
generational gap through technology.
Just like when someone asks about the advantages and disadvantages of the car-making technologies of Mercedes-Benz and BMW, all I can say is, “It doesn”t matter
if you ride in a Mercedes-Benz or drive a BMW.” Comparing industrial robots to car-making, most of the key technologies used in car-making must be shared by Mercedes-Benz
and BMW. The differences in other “marketing technologies” will not affect the technological competition pattern.
So what will industrial robot manufacturers mainly rely on to widen the gap in the future? There is only one answer, the Internet of Things strategy. Without realizing it,
KUKA, ABB, FANUC, and Yaskawa, the four major industrial robot giants, have already been stationed in the field of Internet of Things and are ready to go.
KUKA(Midea)
On December 30, 2016, Midea Group’s tender offer for the shares of Germany’s KUKA Group (KUKA), the world’s leading provider of intelligent automation solutions,
through MECCA InternaTIonal (BVI) Limited, has received approval from all relevant regulatory authorities.
At the annual meeting of Midea Group on January 12, 2017, Fang Hongbo, Chairman of Midea Group, emphasized the industrial significance of Midea’s acquisition
of KUKA: In the future, Midea will build a second industrial segment besides the home appliance industry, namely the robotics and industrial automation industry segment. This is The new growth point of beauty.
The annual meeting invited KUKA CEO TIll Reuter, who has just entered the Midea system, to give a speech. When explaining the core strategic goals for the future,
Reuter mentioned the two concepts of “intelligent machines” and “digital areas”, which are the two concepts that run through the Internet of Things technology in the company”s business:
Intelligent machines: Among the industrial robots manufactured by KUKA, they are equivalent to advanced robots with both autonomy and mobility. Soon a large number
of industrial robots will “step out of the work cage that is isolated from humans” and begin to work closely with humans, further improving their flexibility. Reuter said that as
industrial robots continue to develop, smart machines with better autonomy and mobility will emerge.
Digital area: It is a solution that combines the knowledge related to production processes of various industries that KUKA has cultivated in the past with the
most cutting-edge IT. Reuter said: “We are familiar with the production processes of products such as cars and aircraft. We want to connect our technical experience with IT to provide
customers with intelligent systems.” Reuter said that by optimizing intelligent systems, that is, complex systems based on big data analysis, reducing downtime
and predictive maintenance of various production systems, new business models can be created and a highly integrated value chain can be built.
According to IFR data, in the field of automobile manufacturing, KUKA robots have the largest market share in the world. We might as well start with the automotive industry
and show you how KUKA uses the “Internet of Things box” to construct the Jeep Wrangler”s body-in-white workshop into an IIoT (Industrial Internet of Things) factory.
XVC768106 ABB
XVC768102 Control system
XV C772 Frequency changer
ABB XVC770BE102 Programmable logic controller
XVC769-AE Analog-to-digital converter
XV C768 Control card module
XV C724 Mutual inductor
XV C723 Common power control board
XVC722AE101 ABB Control panel
VRDM564-50LHA Stepper motor
Vibro-Meter-IOCT16T 200-565-000-013 sensor
Vibro-Meter-CMC16 200-530-025-014
V7768-322001 GE
UNS4881BV1-3BHE009949R0001 ABB
UNS4881b V4-3BHE009949R0004 ABB
UNS2980c-ZV4
UNS2882A-3BHE003855R0001 ABB controller
UNS0874C-V.1-3BHB002651R1 ABB
UNS0874A ABB Servo driver
UNS0122A-P ABB Pulse encoder module
UNS0119A-P,V101
UNS0007A-P-V1 ABB controller
UNITROL1000 ABB Excitation system
UNITROL ABB High-end excitation system
“UFC921A102 Power module”
UFC921A101-3BHE024855R0101 Power controller
UFC762AE101-3BHE006412R0101 ABB driver
UFC762AE101-1 ABB Universal frequency converter
UFC760BE1142 ABB Digital input/output module
UFC760BE142 ABB Power communication module
UFC760BE42-3BHE004573R0042 ABB
UFC721BE101-3BHE021889R0101 ABB Programmable controller
UFC719AE01-3BHB003041R0101 ABB System controller
“UFC718AE101 ABB Control system”
UFC718AE01 ABB
UFC092A-V1-HIEE300686R1 ABB Distributed control
UFC911-B106 ABB Control system
TRICONEX-8312 Programmable controller
TRICONEX-4351B Communication interface module
SPNIS21 ABB Network interface module
SPFEC12 ABB AI module
SPFCS01 ABB Frequency counter module
SPBRC410 ABB Controller of the TCP interface
SPASO11 ABB CPU module
SNPM22 ABB Voltage transmitter
SDCS-UCM ABB COAT EXTENSION
SDCS-POW-1C ABB Power source module
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