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  1. Home
  2. Industrial Machinery
  3. エイチ・ティー・エル HTL(エイチティーエル)
  4. [Exhibition Information] Next Generation 3D Printer Exhibition (AM Japan) 2023 (June)
SEMINAR_EVENT
  • Mar 28, 2023
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Mar 28, 2023

[Exhibition Information] Next Generation 3D Printer Exhibition (AM Japan) 2023 (June)

エイチ・ティー・エル エイチ・ティー・エル HTL(エイチティーエル)
This year, H.T.L. Co., Ltd. will be exhibiting at the "Next Generation 3D Printer Exhibition (AM Japan) 2023 (June)"! We will update the information regarding our booth number and hall number as soon as it is announced by the organizers. *The Next Generation 3D Printer Exhibition is a trade show focused on additive manufacturing, 3D printers, materials, and contract manufacturing services, showcasing AM and 3D printing technologies. It attracts many visitors from the manufacturing industry, including those involved in production technology, prototyping, design, development, and purchasing, as well as professionals from construction, entertainment, and advertising industries, who engage in active business discussions with exhibiting companies. Venue: Tokyo Big Sight Hall Name: East Hall 1 Booth Number: 5-24
Next Generation 3D Printer Exhibition 2022 (Last Year)
Next Generation 3D Printer Exhibition 2022 (Last Year)
Next Generation 3D Printer Exhibition 2022 (Last Year)
Next Generation 3D Printer Exhibition 2022 (Last Year)
Date and time Wednesday, Jun 21, 2023 ~ Friday, Jun 23, 2023
10:00 AM ~ 06:00 PM
*The last day is until 17:00.
Capital Venue: Tokyo Big Sight Hall Name: East Hall 1 Booth Number: 5-24 Address: 3-11-1 Ariake, Koto-ku, Tokyo 135-0063 Nearest Stations: ■ Rinkai Line "Kokusai Tenjijo" Station, about a 7-minute walk ■ Yurikamome "Tokyo Big Sight" Station, about a 3-minute walk
Entry fee Free
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解説 電子ビーム方式 Wayland サムネイル1_製品ページ用.PNG

[Explanation] Electron Beam Powder Bed Melting Method Metal 3D Printer

What is the electron beam powder bed fusion method (powder bed fusion)? What is EB-PBF? Let me explain it briefly!

"What is Electron Beam Powder Bed Fusion (EB-PBF)?" "What is EB-PBF?" Let me explain briefly! We provide a schematic diagram explaining Electron Beam Powder Bed Fusion (EB-PBF) for those in charge who have started gathering information on metal 3D printers! The process involves powder supply by a powder dispenser, powder deposition by a recoater (forward motion), vertical movement of the build stage and the recoater's excess powder passage, melting and solidification of the powder by electron beam irradiation, and powder deposition by the recoater (return motion), repeating this series of actions for layered manufacturing. The vertical movement of the build stage and the recoater's excess powder passage help save powder and reduce waste. *The schematic diagram is based on equipment from Wayland Additive and may not necessarily apply to all electron beam powder bed fusion (EB-PBF) metal 3D printers currently sold by various manufacturers.

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解説 DED RPMI サムネイル1_製品ページ用.PNG

Directional Energy Deposition (DED) Metal 3D Printer

What is directional energy deposition method? What is DED? Let me explain it simply!

What is Directed Energy Deposition (DED)?" "We will provide an explanatory diagram of Directed Energy Deposition (DED) for those in charge who have started gathering information on metal 3D printers! Directed Energy Deposition is a process where metal powder is injected into a melt pool created by a laser heat source, and while moving the melt pool along with the laser head, it repeats melting and solidifying to build up layers. Unlike typical metal 3D printers that have a powder bed, it fixes the base plate or pipes on a table with tilting (90°) and rotating (360°) functions for fabrication. 1. Free-form fabrication 2. Free-form fabrication of curved shape parts 3. "Additive" fabrication to conventional machined parts 4. "Build-up" repair for worn-out parts (+ regrinding*) (*The diagram is based on the equipment from RPM Innovations and may not necessarily apply to all metal 3D printers using Directed Energy Deposition currently sold by various manufacturers. Please note.)

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解説 LPBF方式 Aconity3D サムネイル1_製品ページ用.PNG

[Explanation] Laser Powder Bed Fusion (LPBF) Metal 3D Printer

This is a schematic diagram explaining the laser powder bed fusion method (laser powder bed process) for metal 3D printers!!

"What is the laser powder bed fusion method (laser powder bed process)?" "What is LPBF?" We provide an explanatory diagram of the laser powder bed fusion method (laser powder bed process) for those in charge who have started gathering information on metal 3D printers! A series of operations is repeated for layered manufacturing: the recoater deposits powder, the laser irradiates to melt and solidify the powder, the build stage descends, the powder reservoir rises, and again, the recoater deposits powder. Excess surrounding powder from the recoater's deposition operation falls into a collection tank through the overflow opening, is sifted, and recycled during the manufacturing process. *The diagram is based on Aconity3D's equipment and may not necessarily apply to all laser powder bed fusion (laser powder bed process) metal 3D printers currently sold by various manufacturers.

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AconityTWO.PNG

Metal 3D Printer [AconityTWO]

This is Aconity3D's latest solution for efficient industrial laser powder bed fusion (LPBF) manufacturing and production.

The AconityTWO device is Aconity3D's latest solution for efficient industrial laser powder bed fusion (LPBF) manufacturing and production. With a large build envelope of Ø 400 mm x H 400 mm and an easy-to-open machine cover, it allows for the production of large parts with minimal setup time, thereby reducing manufacturing costs. To maximize flexibility in the types of materials that can be processed and to enhance quality assurance, it can be equipped with optional high-temperature preheating up to 800°C and Aconity3D's entirely new process monitoring system (optional). The AconityTWO can also utilize up to four lasers in a quad-laser configuration, further increasing productivity. Like all Aconity3D devices, the AconityTWO is equipped with the AconitySTUDIO control software, allowing Aconity3D service engineers to remotely access all relevant process parameters and machine components, providing timely support to customers.

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AconityMIDI.PNG

Metal 3D Printer [AconityMIDI]

The second process chamber can have an optional preheating at 1200°C added.

AconityMIDI is a new approach by Aconity3D aimed at a flexible production system. This system, which can be equipped with a second process chamber as an option, allows for the preparation of the next setup to be carried out simultaneously while the main system is still in production, saving time. Additionally, this system can also have options for process monitoring or high-temperature preheating up to 1200°C. Like all Aconity3D devices, the AconityMIDI device is equipped with the control software AconitySTUDIO, which allows Aconity3D service engineers to remotely access all relevant process parameters and machine components, enabling timely support for customers.

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AconityMINI.PNG

Metal 3D Printer [AconityMINI]

Entry-level lab system. By utilizing the Φ55mm reduction component (optional), process development is possible even with small amounts of powder materials!

AconityMINI is an entry-level lab system from Aconity3D. The build space can be reduced from a standard diameter of 140mm to 55mm, and this system, which provides complete access to all relevant process parameters, is designed for efficient material research. Furthermore, this system allows for flexible configuration of the equipment by selecting optional features such as preheating, process monitoring, and laser output to best meet the customer's needs. Like all Aconity3D devices, the AconityMINI is equipped with the control software AconitySTUDIO, which allows Aconity3D service engineers to remotely access all relevant process parameters and machine components, providing timely support to customers.

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RPMI557XR with logo.PNG

Directed Energy Deposition (DED) Metal 3D Printer [RPMI]

Metal additive manufacturing with a maximum height of 2100 mm is possible! Directed Energy Deposition (DED) metal 3D printer from RPMI.

This is a directed energy deposition (DED) metal 3D printer from RPM Innovations (South Dakota, USA). It has a proven track record and high reliability across a wide range of industries, including aerospace, military, power generation, mining, gas and oil, and automotive. The "RPMI 557XR" model, which has the largest build size, can achieve metal additive manufacturing up to 2100 mm. It allows for free-form shaping with 5-axis control (X, Y, Z axes / tilt and rotation table), part repair through laser cladding, and additive manufacturing on existing metal products. 【Equipment Lineup】  ■RPMI 557XR  ■RPMI 222XR

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AconityTWO.PNG

Metal 3D Printer [Aconity3D] Laser Powder Bed

Maximum build space: Φ400 × H 400mm Maximum number of lasers: Up to 4 can be installed

Aconity3D (Germany) is a metal 3D printer using a laser powder bed fusion method. Metal powder (20 µm to 65 µm) is spread on the build platform, and a laser is directed at the build position to repeatedly melt and solidify, enabling layer-by-layer construction. It can import models and data that have been analyzed and modified using editing software from 3D CAD files, allowing for high-quality construction even with complex shapes. Options for adding multi-laser (up to four), preheating functions, and process monitoring capabilities are available.

  • Powder Molding Machine

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sample1 with logos.PNG

High hardness powder for metal 3D printers - Vibenite

High hardness and high wear-resistant alloy powder for metal 3D printing.

VBN Components' Vibenite series is a powder material made of high hardness and high wear-resistant alloys that enable metal 3D printing. There are five types of powder steel, allowing for the selection of powders with higher hardness, high-temperature hardness, corrosion resistance, and toughness according to specific applications. The Vibenite series contains a high amount of carbide but does not require the mixing, drying, pressing, and sintering processes typical of conventional carbide manufacturing. It is suitable for metal 3D printing. Contract manufacturing is also available using the metal 3D printing equipment owned by VBN Components (maximum build size: approximately 230 x 230 x 350 mm). It can be used for applications such as power skiving cutters, large gear cutting hobs, pressure die casting tools, plastic and metal molding tools, cutting knives, and wear protection.

  • Special Steel

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Wayland Calibur3 with HTL logo 550x550.PNG

Metal 3D Printer [Wayland Calibur3] Electron Beam

Stable processes using new "electron" beam technology. Free parameter open access. Capable of shaping diverse materials.

This is a metal 3D printer using neutral "electron" beam technology that enables large-scale fabrication free of residual stress. It offers high-speed manufacturing, simplification of post-processing steps, and provides a more stable platform compared to other technologies. Thanks to its unique charge neutralization, it allows for stable processes without smoke generation, enabling the fabrication of large parts without being affected by stress. It supports 3D printing with a variety of metals and alloys, including Ni alloys, Ti alloys, Cu alloys, CoCr alloys, pure copper, copper alloys, cemented carbide (Vibenite 280/290), and high melting point metal materials. With fewer required post-processing steps, it allows for short production times and energy savings. Advanced in-process monitoring and control promote the development of a wide range of applications.

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Large_Vibenite 150 TDS front.PNG

Powder for Metal 3D Printers Vibenite 150

High toughness and fatigue resistance powder metallurgy (PM) steel that can be manufactured using metal 3D printers.

This is a powder metallurgy (PM) steel with excellent toughness and fatigue resistance that can be shaped using a metal 3D printer. The 3D printed parts made from Vibenite150 have a high carbide content, providing the best wear resistance. This material offers the possibility to design complex shapes, combine multiple parts into one, and add cooling channels. The additive manufacturing (AM) process allows for weight reduction and the addition of special features. The time required for sample prototyping and trial production is very fast, enabling rapid development of new products. Furthermore, near-net-shape manufacturing eliminates the need for rough machining and reduces grinding.

  • alloy

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Large_Vibenite 280 TDS front.PNG

Powder for Metal 3D Printers Vibenite 280

A perfect balance of hardness and toughness. High-speed tool steel that can be manufactured with a metal 3D printer.

The 3D-printed Vibenite 280 improves existing high-speed steel (HSS) applications that require higher hardness or wear resistance. Due to its high carbide content, it offers the best wear resistance and hardness. The additive manufacturing (AM) process allows for the design of complex shapes, the integration of multiple parts into one, the addition of cooling channels, weight reduction, and the incorporation of other features. The time required for sample prototyping and trial production is very fast, enabling rapid development of new products. Furthermore, near-net-shape manufacturing eliminates the need for rough machining and reduces grinding.

  • alloy

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Large_Vibenite 290 TDS front.PNG

Powder for Metal 3D Printers Vibenite 290

High-speed tool steel, which is "world-class hard steel" that can be manufactured with a metal 3D printer.

It is high-speed tool steel, which is "world-class hard steel" that can be manufactured using metal 3D printers. It improves existing high-speed steel (HSS) applications that require higher high-temperature hardness or higher wear resistance. The 3D printed Vibenite 290 has a high carbide content, providing the best wear resistance and hardness. The additive manufacturing (AM) process offers the possibility to design complex shapes, combine multiple parts into one, add cooling channels, reduce weight, and incorporate other features. The time required for sample prototyping and trial production is very fast, enabling rapid development of new products. Furthermore, near-net-shape manufacturing eliminates the need for rough machining and reduces grinding.

  • alloy

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Large_Vibenite 350 TDS front.PNG

Powder for Metal 3D Printers Vibenite 350

Martensitic stainless steel with significantly improved wear resistance that can be manufactured using metal 3D printers.

Vibenite 350 is a martensitic stainless powder metallurgy (PM) metal powder for 3D printing that achieves high hardness and excellent corrosion resistance through high chromium (Cr) addition. It also boasts excellent wear resistance due to its high carbide (carbon) metal content. Advantages: - Martensitic high alloy that does not require heavy cutting - Excellent wear resistance - Corrosion resistance - High metal fatigue resistance - No porosity and uniform hardness - Uniform microstructure through the AM-HSS process - Capable of 3D printer layered manufacturing

  • alloy

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Large_Vibenite 480 TDS front.PNG

Metal 3D printer powder Vibenite 480

Can be manufactured with a metal 3D printer. Improved high-temperature hardness and wear resistance, enhancing high-speed steel (HSS) applications through complex shapes and lightweight design.

Vibenite 480 is a 3D printing alloy that significantly improves high-temperature hardness and wear resistance due to its high carbide content. Its metal structure is stable under temperature changes, making it ideal for metal parts that require high-temperature durability. The 3D printing process allows for the creation of free and complex shapes, enabling the combination of multiple alloy components into a single part, lightweight design, and the internal design of various refrigerant flow paths. By shortening the lead time for prototype and initial mass production, it becomes possible to release new products in a timely manner. A major feature is that near-net-shape manufacturing eliminates the need for rough machining using machining centers, resulting in less grinding.

  • alloy

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RPMI222XR with logo.PNG

Directional Energy Deposition Method Metal 3D Printer RPMI 222 XR

Shape size: X 600 mm × Y 600 mm × Z 600 mm + tilt & rotation table.

The Directional Energy Deposition (DED) metal 3D printer RPMI XR series includes the "smallest" model, the RPMI 222 XR, which ensures a build size of [X 600 mm × Y 600 mm × Z 600 mm]. With 5-axis control through X, Y, Z + tilt and a rotating table, it allows for free-form shaping, part repair, and cladding (build-up) with ease.

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Directional Energy Deposition Method Metal 3D Printer RPMI 557 XR

Shape size: [X 1500 mm × Y 1500 mm × Z 2100 mm] "Largest" size in the RPMI XR series.

Directed Energy Deposition (DED) Metal 3D Printer RPMI XR series, featuring the "largest" size RPMI 557 XR. Build size [X 1500 mm × Y 1500 mm × Z 2100 mm]. With 5-axis control through X, Y, Z + tilt and rotating table, it allows for free-form fabrication, part repair, and cladding (build-up).

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557XR & 222XR.PNG

Directional Energy Deposition Method Metal 3D Printer 557XR 222XR

Proven track record of implementation in Japan. 557XR maximum build size: [X 1500 mm × Y 1500 mm × Z 2100 mm]

Directed Energy Deposition (DED) Metal 3D Printer RPMI XR Series, RPMI 557XR and RPMI 222XR. RPMI 557 XR Build Size: [X 1500 mm × Y 1500 mm × Z 2100 mm] RPMI 222 XR Build Size: [X 600 mm × Y 600 mm × Z 600 mm] With 5-axis control using X, Y, Z + tilt and rotating table, free-form shaping, part repair, and cladding (build-up) are possible.

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Metal 3D Printer [AconityMIDI+] Laser Powder Bed

This is Aconity3D's latest machine concept for efficient industrial laser powder bed fusion manufacturing.

This is Aconity3D's latest machine concept for efficient industrial laser powder bed fusion manufacturing. With interchangeable process chambers, preparation, manufacturing, and post-processing cleaning can be conducted simultaneously, allowing for parallelization of time and reduction of part costs. To maximize flexibility in material types and quality assurance, it is possible to incorporate high-temperature preheating up to 1000°C and the latest process monitoring systems. The ACONITYMIDI+ features a QUATTRO-Laser configuration, allowing for the installation of up to four lasers, further enhancing productivity. Like all Aconity3D machines, the AconityMIDI+ is equipped with the AconitySTUDIO control software, enabling Aconity3D service engineers to remotely access all relevant process parameters and machine components, providing timely support to customers.

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AconityMidi Aconity3D Laser Powder Bed Metal 3D Printer

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AconityMidi+(PLUS) Aconity3D Laser Powder Bed Metal 3D Printer

AconityMidi+(PLUS) Aconity3D Laser Powder Bed Metal 3D Printer

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AconityTwo Aconity3D Laser Powder Bed Metal 3D Printer

AconityTwo Aconity3D Laser Powder Bed Metal 3D Printer

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Vibenite Series Material Selection Guide

Vibenite Series Material Selection Guide

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Material Data Sheet_Vibenite 480

Material Data Sheet_Vibenite 480

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Material Data Sheet_Vibenite 290

Material Data Sheet_Vibenite 290

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Material Data Sheet_Vibenite 280

Material Data Sheet_Vibenite 280

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Material Data Sheet_Vibenite 150

Material Data Sheet_Vibenite 150

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Material Data Sheet_Vibenite 350

Material Data Sheet_Vibenite 350

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RPM Innovations Directional Energy Deposition (DED) Metal 3D Printer

RPM Innovations Directional Energy Deposition (DED) Metal 3D Printer

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RPMI 222XR (600 x 600 x 600 mm) Directional Energy Deposition (DED) Metal 3D Printer

RPMI 222XR (600 x 600 x 600 mm) Directional Energy Deposition (DED) Metal 3D Printer

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[Notice of Exhibition Participation by Fukuda Co., Ltd.] 27th Interphex Week Tokyo

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We would like to extend our heartfelt congratulations on the continued prosperity of your esteemed company. Our company will be exhibiting at the following trade show, where we will showcase a variety of products, including new ones. We sincerely apologize for the inconvenience during your busy schedule, but we would like to invite you to attend this event. 【 Exhibition Name 】 27th INTERPHEX Week Tokyo https://www.interphex.jp/tokyo/ja-jp.html 【 Dates 】 July 9 (Wednesday) - 11 (Friday), 2025 10:00 AM - 5:00 PM 【 Venue 】 Tokyo Big Sight (3-11-1 Ariake, Koto-ku, Tokyo 135-0063)

Mar 27, 2026

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[Notice of Exhibition Participation by Fukuda Co., Ltd.] 2025 YOKOHAMA Automotive Technology Exhibition

[Notice of Exhibition Participation by Fukuda Co., Ltd.] 2025 YOKOHAMA Automotive Technology Exhibition

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We would like to extend our heartfelt congratulations on the continued prosperity of your esteemed company. Our company will be exhibiting at the following trade show, where we will showcase a variety of products, including new ones. We sincerely invite you to visit us during this busy time. 【 Exhibition Name 】 Automotive Technology Exhibition 2025 YOKOHAMA https://aee.expo-info.jsae.or.jp/ja/yokohama/ (An "online exhibition" will also be held during and around the event period) 【 Dates 】 May 21 (Wednesday) - 23 (Friday), 2024 10:00 AM - 6:00 PM *On the final day, 9:00 AM - 4:00 PM (Online exhibition: May 14 (Wednesday) - June 4 (Wednesday)) 【 Venue 】 Pacifico Yokohama (1-1-1 Minatomirai, Nishi-ku, Yokohama, Kanagawa Prefecture) Our booth number: "Concourse 505"

Mar 27, 2026

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■Notice of Participation in "Data Center EXPO"■ 【October 23, 2024 (Wednesday) to October 25, 2024 (Friday)】

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Nitto Kohki will be exhibiting at the "Data Center EXPO" held at Makuhari Messe Hall 1 from Wednesday, October 23 to Friday, October 25. [Booth Number: A6-23] At this exhibition, we will showcase the "Compact Zero Spill Coupler," which is specifically designed for data centers, including supercomputers. We will also present the "Blind Mate Type," a fitting exclusively for server cooling piping, as a reference exhibit.

Mar 26, 2026

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[Seminar] Information Gathering and Utilization Know-How for Expanding Existing Areas and Developing New Applications

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[Speaker] Kenji Kikuchi, Executive Fellow, MDB Business Division, Japan Management Association Research Institute [Lecture Topics] 1. Important latest research trends to consider for the future 2. Latest business information gathering methods for future insights 3. Case studies on information gathering - perspectives on information collection and utilization 4. "Future insights" perspectives that leaders and personnel responsible for expanding existing businesses, new businesses, new product development, and exploring new applications should know 5. Introduction of the latest business information sources to pay attention to in the AI era for "future insights" 6. Q&A / Business card exchange

Mar 25, 2026

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[Seminar] Outlook on NTT East Japan's Smart Maintenance

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[Speaker] NTT ME Corporation Director of Social Infrastructure Design Department, Mr. Osamu Sasaki [Key Lecture Content] Starting from the challenges faced through the maintenance and operation of the vast communication infrastructure owned by NTT East Japan, such as aging equipment, a shortage of workforce, and the intensification of disasters, we will organize the structural issues that the entire social infrastructure sector, including roads and water supply and sewage systems, faces. Based on this, we will present ideas for realizing sustainable social infrastructure, including the transition to smart maintenance and preventive maintenance utilizing accumulated data. Furthermore, we will introduce the direction of initiatives considered by NTT East Japan, future prospects, and remaining challenges. [Lecture Items] 1. Past initiatives and challenges at NTT East Japan 2. Challenges faced by the social infrastructure sector 3. Towards the realization of sustainable social infrastructure 4. Direction of initiatives considered by NTT East Japan 5. Future initiatives and challenges 6. Q&A / Business card exchange

Mar 25, 2026

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