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Achieves high collection efficiency through electrostatic methods. Offers a wide range of products from large to small sizes. Also compatible with water-soluble oil mist.

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  • air conditioning

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Available in wheel 50P mounting type and wheel conveyor type.

  • lift
  • Other conveying machines

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No internet required, monthly fee of 0 yen. Next-generation on-premise signage powered by Windows and web technology.

  • Other office supplies
  • others

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No internet required, monthly fee of 0 yen. Next-generation on-premise signage powered by Windows and web technology.

  • Other office supplies
  • others

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Zero initial implementation cost. A cloud-based digital signage that combines "ease of implementation" and "high performance."

  • Other office supplies
  • others

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The quality of the battery slurry is determined by the process. A dispersion design that can be reproduced from research to mass production.

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  • インライン固液混合パイロットプラント.jpg
  • IPROS29562848587318290804.png
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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One-stop service for filling, packaging, and delivery of lubricating oil!

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  • IMG_5975 - コピー.JPG
  • SnapCrab_NoName_2021-3-16_22-23-0_No-00.png
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  • Processing Contract
  • Binding/Packing Machine
  • Filling and bottling machines

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Thanks to our unique dispersion system, we can achieve the mixing and dispersion of fine powders in a short time without generating lumps! We can accommodate both continuous and batch processes.

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  • インライン固液混合パイロットプラント.jpg
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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Reproducibility of slurry dispersion is created from process design.

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  • インライン固液混合パイロットプラント.jpg
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  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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Why can't powders be supplied stably? - What causes supply irregularities in low bulk density powders?

In low bulk density powders and fine powders, issues such as "unstable supply," "pulsation," and "bridging without falling" frequently occur. Particularly with CNTs, carbon black, and flake powders, the particles tend to entangle easily and have low flowability, making stable quantitative supply difficult with conventional powder feeding methods. When powder supply becomes unstable, instantaneous concentration fluctuations occur, significantly affecting the dispersion quality, viscosity, and conductivity in subsequent processes. In practice, even problems that appear to be "poor dispersion" often have their causes on the powder supply side. Moreover, in low bulk density powders, bridging, rat-holing, and supply pulsations due to air entrapment are likely to occur within the hopper, and simply relying on feeder capacity may not resolve these issues. To achieve stable supply, it is crucial to design the entire process, including hopper design, supply methods, transport conditions, and feeding methods, according to the characteristics of the powder. Our company offers a solid-liquid mixing process that includes quantitative supply using loss-in-weight feeders and integration with inline dispersion devices. By designing the entire process from powder supply to dispersion as a cohesive unit, we support the establishment of stable manufacturing conditions even for high-performance materials.

The quality of the positive electrode slurry is determined by the process, not the equipment. A dispersed design that takes mass production into account.

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  • IKA+shibuya .png
  • インライン固液混合パイロットプラント.jpg
  • IPROS29562848587318290804.png
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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The strength is determined by the variance. Visualize quality variations through testing before mass production.

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  • ラボ画像?.png
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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What are the reasons for changes in results from the lab to mass production? Causes and countermeasures for the deterioration of distributed quality during scale-up.

Despite obtaining good dispersion results in the lab, the challenge of unstable quality upon mass production occurs in many settings. The main cause of this is that the dispersion conditions are not replicated due to differences in scale. In lab equipment, the smaller size leads to higher energy density, making shear and flow more uniform, while in mass production equipment, the larger scale often results in insufficient dispersion energy at the same rotational speed and processing time. Additionally, differences in equipment structure and flow patterns can cause variations in the shear history and residence time experienced by particles, leading to differences in the dispersion state. Furthermore, simple scale-up does not ensure that critical parameters such as flow rate, residence time, and shear intensity match, making it difficult to reproduce the same results as in the lab. To address these challenges, it is essential to focus on process design based on dispersion energy density and flow conditions rather than merely increasing equipment size. By designing the system so that particles pass through the processing area under consistent conditions, it is possible to achieve reproducible dispersion quality even when the scale changes, as seen in inline continuous processing.

The dispersion quality of battery materials is determined by the process. A solid-liquid mixing dispersion system that suppresses agglomeration and aggregation.

  • IKA+shibuya .png
  • IPROS29562848587318290804.png
  • カタログ表紙.png
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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What are the causes and countermeasures for quality variation in dispersed engineering? An explanation of design points to prevent instability in particle size distribution and reduced reproducibility.

In dispersion processes, issues such as unstable particle size distribution and quality variation between batches occur in many settings. These quality variations are caused not only by equipment performance but also by variations in dispersion conditions, flow states, and process design. For example, when shear energy is uneven, differences arise in the disintegration state of particles, leading to a wider particle size distribution and residual agglomeration. Additionally, in batch processing, variations in mixing uniformity and residence time can cause fluctuations in dispersion state between batches, making it difficult to ensure reproducibility. Particularly in high-viscosity systems or high solid content slurries, even slight variations in conditions can significantly impact quality. To suppress quality variations, it is crucial to design processes that maintain consistent dispersion energy and flow conditions. By stabilizing conditions, as in inline continuous processing, it becomes possible to reduce inter-batch differences and achieve stable dispersion quality. Furthermore, in dispersion processes, not only the performance of the equipment itself but also operating conditions such as input order, residence time, and flow control greatly affect quality. Inline continuous processing makes it easier to maintain these conditions consistently, ensuring stable dispersion even in high-viscosity slurries. By designing the entire process, it is possible to fundamentally suppress quality variations.

Dispersion is not determined by the equipment. It is determined by the process design of the solid-liquid mixing dispersion system.

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  • インライン固液混合パイロットプラント.jpg
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  • IPROS29562848587318290804.png
  • Dispersion/emulsification equipment/homogenizer
  • Emulsifying and dispersing machine
  • Emulsifier/Disperser

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粒度分布比較図_v3.jpg

What are the causes and countermeasures for quality variation in dispersed engineering? An explanation of design points to prevent instability in particle size distribution and reduced reproducibility.

In dispersion processes, issues such as unstable particle size distribution and quality variation between batches occur in many settings. These quality variations are caused not only by equipment performance but also by variations in dispersion conditions, flow states, and process design. For example, when shear energy is uneven, differences arise in the disintegration state of particles, leading to a wider particle size distribution and residual agglomeration. Additionally, in batch processing, variations in mixing uniformity and residence time can cause fluctuations in dispersion state between batches, making it difficult to ensure reproducibility. Particularly in high-viscosity systems or high solid content slurries, even slight variations in conditions can significantly impact quality. To suppress quality variations, it is crucial to design processes that maintain consistent dispersion energy and flow conditions. By stabilizing conditions, as in inline continuous processing, it becomes possible to reduce inter-batch differences and achieve stable dispersion quality. Furthermore, in dispersion processes, not only the performance of the equipment itself but also operating conditions such as input order, residence time, and flow control greatly affect quality. Inline continuous processing makes it easier to maintain these conditions consistently, ensuring stable dispersion even in high-viscosity slurries. By designing the entire process, it is possible to fundamentally suppress quality variations.

Thanks to our unique dispersion system, mixing and dispersing fine powders can be achieved in a short time without causing clumping! We can accommodate both continuous and batch processes.

  • IKA+shibuya .png
  • インライン固液混合パイロットプラント.jpg
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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Supports CNT aggregation prevention and uniform dispersion. Assists in stabilizing the quality of conductive material slurry through continuous processing.

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  • IKA+shibuya .png
  • 4.PNG
  • 分散トラブル.png
  • Emulsifier/Disperser
  • Powder Supply Device
  • Dispersion/emulsification equipment/homogenizer

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What causes clumping when adding powder? Design points for preventing and addressing poor dispersion.

In dispersion processes, the occurrence of agglomerates (clumps) during powder addition, which cannot be resolved in subsequent dispersion stages, is a common issue in many settings. The cause of this is that the powder does not wet uniformly in the liquid, leading to the formation of localized high-concentration areas. These agglomerates are also referred to as "fisheyes," and due to their internal unwetted structure, they are difficult to break apart. Once an agglomerate forms during powder addition, liquid has difficulty penetrating its interior, resulting in only the outer layer being wetted, which makes it hard for the internal particles to be disintegrated. Additionally, depending on the addition position and speed, the powder may float on the liquid surface or remain stagnant without following the flow within the equipment, promoting the formation of agglomerates. Particularly under conditions of high viscosity or high solid content, the low fluidity makes it challenging to achieve uniformity in the initial dispersion stage, leading to a higher likelihood of agglomerates remaining. Such agglomerates may not be completely resolved even with strong shear in subsequent processes, causing variations in the quality of the final product and introducing foreign substances. To prevent the formation of agglomerates, it is crucial to improve wettability during powder addition, ensure appropriate addition positions and flow design, and optimize the initial dispersion. By performing shear and mixing simultaneously right after addition, as in inline powder addition and simultaneous dispersion, it is possible to suppress the formation of agglomerates and achieve stable dispersion quality.

Easily agglomerated CNF, uniformly without clumping. The quality of dispersion is determined by process design.

  • IKA+shibuya .png
  • インライン固液混合パイロットプラント.jpg
  • IPROS29562848587318290804.png
  • Emulsifier/Disperser
  • Dispersion/emulsification equipment/homogenizer
  • Emulsifying and dispersing machine

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The negative electrode slurry's key is balancing viscosity and dispersion. Process design that can be reproduced up to mass production.

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  • IKA+shibuya .png
  • インライン固液混合パイロットプラント.jpg
  • IPROS29562848587318290804.png
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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Quality changes with dispersion. Pre-validation of the reproducibility of resin materials through testing.

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  • IPROS29562848587318290804.png
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  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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What are the reasons for changes in results from the lab to mass production? Causes and countermeasures for the deterioration of distributed quality during scale-up.

Despite obtaining good dispersion results in the lab, the challenge of unstable quality upon mass production occurs in many settings. The main cause of this is that the dispersion conditions are not replicated due to differences in scale. In lab equipment, the smaller size leads to higher energy density, making shear and flow more uniform, while in mass production equipment, the larger scale often results in insufficient dispersion energy at the same rotational speed and processing time. Additionally, differences in equipment structure and flow patterns can cause variations in the shear history and residence time experienced by particles, leading to differences in the dispersion state. Furthermore, simple scale-up does not ensure that critical parameters such as flow rate, residence time, and shear intensity match, making it difficult to reproduce the same results as in the lab. To address these challenges, it is essential to focus on process design based on dispersion energy density and flow conditions rather than merely increasing equipment size. By designing the system so that particles pass through the processing area under consistent conditions, it is possible to achieve reproducible dispersion quality even when the scale changes, as seen in inline continuous processing.

CNT dispersion is determined by the process. Control of aggregation stabilizes conductivity.

  • カタログ表紙.png
  • IKA+shibuya .png
  • インライン固液混合パイロットプラント.jpg
  • IPROS29562848587318290804.png
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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What are the reasons for the inability to disperse high solid content slurries? Causes of poor dispersion and design points for solutions.

In the dispersion process of high solid content slurries, problems such as "too high viscosity to mix" and "unable to break down agglomerates" occur. The main cause of these issues is the increased frequency of particle contact, which strengthens the cohesive forces. As the solid content concentration increases, the distance between particles decreases, leading to interference between particles that reduces fluidity and prevents sufficient dispersion energy from being transmitted. Additionally, the crowding of particles restricts flow and makes shear localized, resulting in the persistence of undispersed areas and agglomerates. Furthermore, in a high solid content state, the increase in viscosity also leads to poor circulation and stagnation, causing variability in the dispersion state within the process. Particularly in batch processing, mixing inconsistencies and differences in processing history directly translate into quality differences, making it difficult to ensure reproducibility. To achieve stable dispersion under high solid content conditions, it is important not only to increase shear force but also to consider dispersion design that takes into account inter-particle interactions, as well as process design that simultaneously controls flow and shear. By establishing a mechanism like inline continuous processing, where particles pass through the processing area under constant conditions, uniform and highly reproducible dispersion can be achieved even at high solid contents.

Suppressing sedimentation and evenly dispersing the protein.

  • IKA+shibuya .png
  • インライン固液混合パイロットプラント.jpg
  • IPROS29562848587318290804.png
  • Dispersion/emulsification equipment/homogenizer
  • Powder Supply Device
  • Beverage Production Equipment

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【June 2, 2026 (Tuesday) - June 5, 2026 (Friday)】 Announcement of participation in 'FOOMA JAPAN 2026'

Shibuya Kogyo Co., Ltd. will exhibit at FOOMA JAPAN 2026, which will be held at Tokyo Big Sight from June 2 (Tuesday) to June 5 (Friday), 2026. We will introduce various devices that contribute to "quality improvement," "labor saving," and "cleaning efficiency" in food and beverage manufacturing. [Exhibition Details] ■ Two-stage superheated steam circulation baking machine (JESTOS Jr.) *Panel display and tasting available - Achieves fluffy, high-quality baking in a short time using superheated steam - Capable of low-temperature to high-temperature cooking (with a firm browning) with just one machine - Prevents oxidation by blocking outside air with a shielding nozzle (patented) ■ 3D nozzle type container cleaning machine (TSW4000 model) *Actual machine display - Achieves high cleaning power with low water usage and short time - Contributes to reduced cleaning time and utility costs ■ Continuous and batch continuous solid-liquid mixing system *Panel display - Stable inline processing of mixing and dispersing powders and liquids - Accommodates high-viscosity materials and high solid content such as proteins, achieving uniformity and reproducibility in quality - Capable of engineering proposals including process design On the day, you can experience solutions to on-site challenges through actual machines, panels, and tastings. Please be sure to stop by our booth.

From October 29 (Tuesday) to 31 (Thursday), 2024! We will be exhibiting small ultrasonic dispersion devices and ultrasonic generators!

  • IKA+shibuya .png
  • 1.PNG
  • 3.PNG
  • 4.PNG
  • Emulsifier/Disperser
  • Powder Supply Device
  • Dispersion/emulsification equipment/homogenizer

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【June 2, 2026 (Tuesday) - June 5, 2026 (Friday)】 Announcement of participation in 'FOOMA JAPAN 2026'

Shibuya Kogyo Co., Ltd. will exhibit at FOOMA JAPAN 2026, which will be held at Tokyo Big Sight from June 2 (Tuesday) to June 5 (Friday), 2026. We will introduce various devices that contribute to "quality improvement," "labor saving," and "cleaning efficiency" in food and beverage manufacturing. [Exhibition Details] ■ Two-stage superheated steam circulation baking machine (JESTOS Jr.) *Panel display and tasting available - Achieves fluffy, high-quality baking in a short time using superheated steam - Capable of low-temperature to high-temperature cooking (with a firm browning) with just one machine - Prevents oxidation by blocking outside air with a shielding nozzle (patented) ■ 3D nozzle type container cleaning machine (TSW4000 model) *Actual machine display - Achieves high cleaning power with low water usage and short time - Contributes to reduced cleaning time and utility costs ■ Continuous and batch continuous solid-liquid mixing system *Panel display - Stable inline processing of mixing and dispersing powders and liquids - Accommodates high-viscosity materials and high solid content such as proteins, achieving uniformity and reproducibility in quality - Capable of engineering proposals including process design On the day, you can experience solutions to on-site challenges through actual machines, panels, and tastings. Please be sure to stop by our booth.

Inline continuous process that stabilizes CNT dispersion without disrupting its state.

  • IKA+shibuya .png
  • インライン固液混合パイロットプラント.jpg
  • IPROS29562848587318290804.png
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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Why can't powders be supplied stably? - What causes supply irregularities in low bulk density powders?

In low bulk density powders and fine powders, issues such as "unstable supply," "pulsation," and "bridging without falling" frequently occur. Particularly with CNTs, carbon black, and flake powders, the particles tend to entangle easily and have low flowability, making stable quantitative supply difficult with conventional powder feeding methods. When powder supply becomes unstable, instantaneous concentration fluctuations occur, significantly affecting the dispersion quality, viscosity, and conductivity in subsequent processes. In practice, even problems that appear to be "poor dispersion" often have their causes on the powder supply side. Moreover, in low bulk density powders, bridging, rat-holing, and supply pulsations due to air entrapment are likely to occur within the hopper, and simply relying on feeder capacity may not resolve these issues. To achieve stable supply, it is crucial to design the entire process, including hopper design, supply methods, transport conditions, and feeding methods, according to the characteristics of the powder. Our company offers a solid-liquid mixing process that includes quantitative supply using loss-in-weight feeders and integration with inline dispersion devices. By designing the entire process from powder supply to dispersion as a cohesive unit, we support the establishment of stable manufacturing conditions even for high-performance materials.

Thanks to our unique dispersion system, we can achieve the mixing and dispersion of fine powders in a short time without generating clumps! We can accommodate both continuous and batch processes.

  • IKA+shibuya .png
  • インライン固液混合パイロットプラント.jpg
  • IPROS29562848587318290804.png
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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Resolve issues of not dissolving and clumping in advance. Test the dispersibility of the protein.

  • IKA+shibuya .png
  • IPROS29562848587318290804.png
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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FOOMA2026 2.jpg

【June 2, 2026 (Tuesday) - June 5, 2026 (Friday)】 Announcement of participation in 'FOOMA JAPAN 2026'

Shibuya Kogyo Co., Ltd. will exhibit at FOOMA JAPAN 2026, which will be held at Tokyo Big Sight from June 2 (Tuesday) to June 5 (Friday), 2026. We will introduce various devices that contribute to "quality improvement," "labor saving," and "cleaning efficiency" in food and beverage manufacturing. [Exhibition Details] ■ Two-stage superheated steam circulation baking machine (JESTOS Jr.) *Panel display and tasting available - Achieves fluffy, high-quality baking in a short time using superheated steam - Capable of low-temperature to high-temperature cooking (with a firm browning) with just one machine - Prevents oxidation by blocking outside air with a shielding nozzle (patented) ■ 3D nozzle type container cleaning machine (TSW4000 model) *Actual machine display - Achieves high cleaning power with low water usage and short time - Contributes to reduced cleaning time and utility costs ■ Continuous and batch continuous solid-liquid mixing system *Panel display - Stable inline processing of mixing and dispersing powders and liquids - Accommodates high-viscosity materials and high solid content such as proteins, achieving uniformity and reproducibility in quality - Capable of engineering proposals including process design On the day, you can experience solutions to on-site challenges through actual machines, panels, and tastings. Please be sure to stop by our booth.

Verify before failing in mass production. Confirm the reproducibility of slurry dispersion in advance.

  • カーボン混合液.jpg
  • IKA+shibuya .png
  • IPROS29562848587318290804.png
  • ラボ画像?.png
  • Emulsifier/Disperser
  • Vacuum degassing machine
  • Dispersion/emulsification equipment/homogenizer

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What are the reasons for changes in results from the lab to mass production? Causes and countermeasures for the deterioration of distributed quality during scale-up.

Despite obtaining good dispersion results in the lab, the challenge of unstable quality upon mass production occurs in many settings. The main cause of this is that the dispersion conditions are not replicated due to differences in scale. In lab equipment, the smaller size leads to higher energy density, making shear and flow more uniform, while in mass production equipment, the larger scale often results in insufficient dispersion energy at the same rotational speed and processing time. Additionally, differences in equipment structure and flow patterns can cause variations in the shear history and residence time experienced by particles, leading to differences in the dispersion state. Furthermore, simple scale-up does not ensure that critical parameters such as flow rate, residence time, and shear intensity match, making it difficult to reproduce the same results as in the lab. To address these challenges, it is essential to focus on process design based on dispersion energy density and flow conditions rather than merely increasing equipment size. By designing the system so that particles pass through the processing area under consistent conditions, it is possible to achieve reproducible dispersion quality even when the scale changes, as seen in inline continuous processing.

Fundraising and Legal Affairs - Considering the Wholesale Electricity Market, Supply and Demand Adjustment Market, Capacity Market, and Long-Term Decarbonization Power Source Auction.

  • others

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AI inspection easily detects even the smallest defects! Desktop AI visual inspection device.

  • Visual Inspection Equipment

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Inspection device that achieves a dramatic reduction in over-detection through image processing and AI.

  • Defect Inspection Equipment

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Easy to introduce with quality product learning! AI visual inspection device that fits the field.

  • Visual Inspection Equipment

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Compatible with the entire Jetson series! AI for appearance inspection that can be implemented on the same day.

  • Image Processing Software

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Multi-purpose! RFID tags that can also be used for managing moisture, liquids, and metal items.

  • RFID/IC tags

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Realization of automation for issuing admission passes and alleviation of congestion during entry waiting.

  • Touch Panel
  • Entrance and exit control system

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8.9MP high-resolution color camera. Ideal for appearance and print inspection. Made in Japan with a reliable 3-year warranty.

  • Product-Image_Go-X-Series-45-degree-Rear-USB3-Vision-410x370px.png
  • Dimension-Image-GOX-USB-side.png
  • Color camera

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8.9MP high-resolution color camera. Ideal for appearance and print inspection. Made in Japan with a reliable 3-year warranty.

  • Product-Image_Go-X-Series-45-degree-Rear-GigE-Vision-410x370px.png
  • Dimension-Image-GOX-PGE-side.png
  • Color camera

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8.1MP high-resolution monochrome camera. Ideal for high-definition FA inspection. Made in Japan with a reliable 3-year warranty.

  • Product-Image_GOX-PGE-Rear45-410x370px.png
  • Dimension-Image-GOX-PGE-Gen4-side.png
  • Monochrome camera

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8.1MP high-resolution monochrome camera. Ideal for high-definition FA inspection. Made in Japan with a reliable 3-year warranty.

  • Product-Image_GOX-CXP-Rear45-410x370px.png
  • Dimension-Image-GOX-CXP-side.png
  • Monochrome camera

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8.1MP high-resolution monochrome camera. Ideal for high-definition FA inspection. Made in Japan with a reliable 3-year warranty.

  • Product-Image_GOX-5GE-Rear45-410x370px.png
  • Dimension-Image-GOX-5GE-side.png
  • Monochrome camera

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8.1MP high-resolution color camera. Ideal for appearance and print inspection. Made in Japan with a reliable 3-year warranty.

  • Product-Image_GOX-PGE-Rear45-410x370px.png
  • Dimension-Image-GOX-PGE-Gen4-side.png
  • Color camera

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8.1MP high-resolution color camera. Ideal for appearance and print inspection. Made in Japan with a reliable 3-year warranty.

  • Product-Image_GOX-CXP-Rear45-410x370px.png
  • Dimension-Image-GOX-CXP-side.png
  • Color camera

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8.1MP high-resolution color camera. Ideal for appearance and print inspection. Made in Japan with a reliable 3-year warranty.

  • Product-Image_GOX-5GE-Rear45-410x370px.png
  • Dimension-Image-GOX-5GE-side.png
  • Color camera

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6.3MP high-resolution monochrome camera. Ideal for high-definition FA inspection. Made in Japan with a reliable 3-year warranty.

  • Product-Image_Go-X-Series-45-degree-Rear-GigE-Vision-410x370px.png
  • Dimension-Image-GOX-PGE-side.png
  • Monochrome camera

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6.3MP high-resolution color camera. Ideal for appearance and print inspection. Made in Japan with a reliable 3-year warranty.

  • Product-Image_Go-X-Series-45-degree-Rear-GigE-Vision-410x370px.png
  • Dimension-Image-GOX-PGE-side.png
  • Color camera

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5.1MP high-resolution monochrome camera. Ideal for high-definition FA inspection. Made in Japan with a reliable 3-year warranty.

  • Product-Image_GOX-4th-gen-PGE-Rear45-410x370px.png
  • Dimension-Image-GOX-PGE-Gen4-side.png
  • Monochrome camera

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