Environmental Impact Assessment of Flexible Package Printing with the “LUNAJET®” Aqueous Inkjet Ink Using Nanodispersion Technology
Abstract
:1. Introduction
1.1. New Water-Based Ink LUNAJET® and Digital Inkjet Printing
1.2. Technology of the LUNAJET® Ink and the Inkjet Printer for Flexible Packages
1.2.1. Challenges in the Printing Process
1.2.2. Pigment Nanodispersion Technology
1.2.3. Precise Interfacial Control Technology
1.2.4. Summary of Ink Design Technologies for the Printing Process
2. Materials and Methods
2.1. Functional Units and System Boundaries
2.1.1. Targeted Products
2.1.2. Evaluation Scenario
2.1.3. Functional Unit
2.1.4. System Boundaries
2.2. Data Collection
2.2.1. Raw Material Procurement Stage
2.2.2. Printing Stage
2.2.3. Disposal Stage
2.3. Environmental Impact Assessment (Characterization) Method
2.3.1. Global Warming
2.3.2. Photochemical Oxidants
2.3.3. Fossil Fuel Consumption
3. Results
3.1. Results of Inventory Analysis
3.1.1. Life Cycle CO2 Emissions (LC-CO2)
3.1.2. Life cycle NMVOC Emissions (LC-NMVOC)
3.1.3. Life Cycle Crude Oil Consumption (LC-Oil)
3.1.4. Life Cycle Natural Gas Consumption (LC-NG)
3.2. Characterization Results
3.2.1. Global Warming
3.2.2. Photochemical Oxidants
3.2.3. Fossil Fuel Consumption
4. Discussion
4.1. Environmental Impact of Ink Composition and Printing Method
4.1.1. LC-CO2
4.1.2. LC-NMVOC
4.2. Sensitivity Analysis on Number of Ink Colors
4.2.1. LC-CO2 (2100 m2 Printing, per Film Package)
4.2.2. LC-NMVOC (2100 m2 Printing, per Film Package)
4.3. Impact Assessment
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
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No. | Name | Contents |
---|---|---|
Scenario 1 | Analog printing Oil-based ink/gravure printing system 21,000 m2 Print (Oil GR-L) | Inks: 6 colors (oil-based), printing plates: 6 Ink application: 5.4 g/m2 Film length: 20,000 m, film width: 1.05 m Power for printing: 270 kWh Film loss at startup: 210 m2 (200 m) Ink loss: 6 kg/color (CMYK), 10 kg/color (special color) Ink volatile component: atmospheric emission Film loss and ink loss: incineration (including heat recovery) |
Scenario 2 | Analog printing Oil-based ink/gravure printing system 2100 m2 Print (Oil GR-S) | Inks: 6 colors (oil-based), printing plates: 6 Ink application: 5.4 g/m2 Film length: 2000 m, film width: 1.05 m Power for printing: 29 kWh Film loss at startup: 210 m2 (200 m) Ink loss: 6 kg/color (CMYK), 10 kg/color (special color) Ink volatile component: atmospheric emission Film loss and ink loss: incineration (including heat recovery) |
Scenario 3 | Digital printing Water-based ink/inkjet printing system 21,000 m2 Print (Water IJ-L) | Inks: 6 colors (Water-based), no printing plate Ink application: 4.8 g/m2 Film length: 20,000 m, film width: 1.05 m Power for printing: 565 kWh Film loss at startup: 21 m2 (20 m) Ink loss: 1 kg/color (CMYK, special color) Ink volatile component: atmospheric emission Film loss and ink loss: incineration (including heat recovery) |
Scenario 4 | Digital printing Water-based ink/inkjet printing system 2100 m2 Print (Water IJ-S) | Inks: 6 colors (Water-based), no printing plate Ink application: 4.8 g/m2 Film length: 2000 m, film width: 1.05 m Power for printing: 57 kWh Film loss at startup: 21 m2 (20 m) Ink loss: 1 kg/color (CMYK, special color) Ink volatile component: atmospheric emission Film loss and ink loss: incineration (including heat recovery) |
Stage | Process/Flows | Database | Remarks | ||
---|---|---|---|---|---|
Raw material procurement | Ink | Pigments | IDEAv2 | Ring intermediates, synthetic dyes, organic pigments | |
VOC | IDEAv2 | Ethyl acetate | representative | ||
Water | IDEAv2 | Pure water, ion exchange membrane method | |||
Ink transportation | IDEAv2 | Trucking service, 10-ton vehicle, 75% load rate | 485 km | ||
Film | IDEAv2 | Plastic film production | |||
Printing | Power | IDEAv2 | Tokyo Electric Power, 2015 | ||
Printing plate | Cu | IDEAv2 | Crude copper production | ||
Ni | IDEAv2 | Metal nickel production | |||
Cr | IDEAv2 | Chromic acid production | |||
Disposal | Incineration | Ink | IDEAv2 | Incineration services, industrial waste, waste oil | |
Printed materials | IDEAv2 | Incineration services, industrial waste, waste plastics | |||
Landfill | Cu, Ni, Cr | IDEAv2 | Industrial waste treatment, scrap metal | ||
Recovered energy | Heavy oil | IDEAv2 | Production of heavy oil A |
No. | Name | Contents |
---|---|---|
Scenario 5 | Digital printing Oil-based ink/inkjet printing system 1100–55,000 m2 (Oil IJ) | Inks: 6 colors (oil-based), no printing plates Ink application: 5.4 g/m2 Film length: 1000–50,000 m, film width: 1.05 m Film loss at startup: 21 m2 (20 m) Ink loss: 1 kg/color (CMYK, special color) Ink volatile component: atmospheric emission Film loss Ink loss: incineration (including heat recovery) |
Area of Environmental Impact | Inventory Used |
---|---|
Climate change | CO2, CH4, N2O |
Air pollution (urban areas) | SO2, NOX, PM10 |
Photochemical oxidants | NOX, NMVOC |
Resource consumption | Oil, Coal, NG |
Water consumption | Water (groundwater) |
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Kozake, K.; Egawa, T.; Kunii, S.; Kawaguchi, H.; Okada, T.; Sakata, Y.; Shibata, M.; Itsubo, N. Environmental Impact Assessment of Flexible Package Printing with the “LUNAJET®” Aqueous Inkjet Ink Using Nanodispersion Technology. Sustainability 2021, 13, 9851. https://doi.org/10.3390/su13179851
Kozake K, Egawa T, Kunii S, Kawaguchi H, Okada T, Sakata Y, Shibata M, Itsubo N. Environmental Impact Assessment of Flexible Package Printing with the “LUNAJET®” Aqueous Inkjet Ink Using Nanodispersion Technology. Sustainability. 2021; 13(17):9851. https://doi.org/10.3390/su13179851
Chicago/Turabian StyleKozake, Katsuyuki, Tsuyoshi Egawa, Satoshi Kunii, Hiroki Kawaguchi, Toru Okada, Yushi Sakata, Manabu Shibata, and Norihiro Itsubo. 2021. "Environmental Impact Assessment of Flexible Package Printing with the “LUNAJET®” Aqueous Inkjet Ink Using Nanodispersion Technology" Sustainability 13, no. 17: 9851. https://doi.org/10.3390/su13179851
APA StyleKozake, K., Egawa, T., Kunii, S., Kawaguchi, H., Okada, T., Sakata, Y., Shibata, M., & Itsubo, N. (2021). Environmental Impact Assessment of Flexible Package Printing with the “LUNAJET®” Aqueous Inkjet Ink Using Nanodispersion Technology. Sustainability, 13(17), 9851. https://doi.org/10.3390/su13179851