Investigating Business Potential and Users’ Acceptance of Circular Economy: A Survey and an Evaluation Model
Abstract
:1. Introduction
“economic system restorative and regenerative by design, implemented by one or more supply chain actors through one or more levers and enablers (circular product design, servitized business models, supply chain management and digital 4.0 technologies) to replace the end of life concept with reduce, reuse, remanufacture or recycle materials, components and products in production, distribution and consumption processes for both technical and biological cycles, with the aim to accomplish sustainable development”
2. Materials and Methods
2.1. Literature Review: Users’ Interest and Involvement in CE Alternatives in the WM Industry
2.2. Research Motivation, Design and Conceptual Framework
- RQ1: Can pay-per-wash and refurbishment business models improve the economic and environmental performances, compared to the traditional linear model?
- RQ2: Are users interested in pay-per-wash and refurbishment business models, and what aspects mainly influence their acceptance?
2.3. Research Method
3. Evaluation Model Development
3.1. User’s Total Cost of Ownership
3.2. Product Life Cycle Assessment
3.3. Pay-Per-Wash Circular Economy Scenario
3.4. Washing Machine Refurbishment Circular Economy Scenario
4. Results
4.1. Users’ Survey Descriptive Analysis
4.2. Evaluation Model Results
4.3. Statistical Analysis
5. Discussion
5.1. RQ1: Can Pay-Per-Wash and Refurbishment Business Models Improve the Economic and Environmental Performances, Compared to the Traditional Linear Model?
5.2. RQ2: Are Users Interested in Pay-Per-Wash and Refurbishment Business Models, and What Aspects Mainly Influence Their Acceptance?
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Acronym | Description | Type | Unit of Measure |
---|---|---|---|
Age | Age of respondent | Independent variable | Year |
HS | Household Size, i.e., number of people living in a household | Independent variable | Persons |
EEC | Washing Machine Energy Efficiency Class | Independent variable | Dimensionless |
C | Washing Machine Capacity | Independent variable | kg |
P | Washing Machine Price | Independent variable | € |
Nwc | Number of washing cycles per year | Independent variable | Number/year |
LR | Washing Machine Loading Rate | Independent variable | % |
FT | Usage frequency per temperature level (Temperature = 30 °C; 40 °C; 60 °C; 90 °C) | Independent variable | % |
NFailure | Number of Washing Machine failures | Independent variable | Number |
PPWacc | Pay-per-wash acceptance | Dependent variable (Response) | Yes/No |
RFBacc | Refurbishment acceptance | Dependent variable (Response) | Yes/No |
WM Efficiency Class EEC | EFCEEC [kWh/Nwc] | EVCEEC [kWh/(Nwc·kg)] |
---|---|---|
A+++ | 0.180 | 0.100 |
A++ | 0.220 | 0.110 |
A+ | 0.190 | 0.140 |
A | 0.180 | 0.160 |
B | 0.000 | 0.188 |
C | 0.000 | 0.184 |
Washing Temperature T | KT (Dimensionless) |
---|---|
30 °C | 0.34 |
40 °C | 0.55 |
60 °C | 1.00 |
90 °C | 1.63 |
WM Class | Low-Price Segment (Price < 300 €) | Average-Price Segment (301 € < Price < 500 €) | High-Price Segment (Price > 501 €) |
---|---|---|---|
Average Price p [€] | 150 € | 400 € | 600 € |
LWM [cycle] | 1500 | 2500 | 4000 |
RMEWM [kg CO2-eq] | 235.5 | 300.6 | 581.5 |
M&AWM [kg CO2-eq] | 74.0 | 90.8 | 96.3 |
DWM [kg CO2-eq] | 8.4 | 8.4 | 8.4 |
Age of Respondents | Male | Female | Total |
---|---|---|---|
Younger than 29 years old | 27 | 69 | 96 |
Between 30 and 49 years old | 24 | 80 | 104 |
between 50 and 64 years old | 10 | 58 | 68 |
Older than 65 years old | 1 | 10 | 11 |
Total | 62 | 217 | 279 |
Coefficient | Std. Error | z-Statistic | p-Value | |
---|---|---|---|---|
(Intercept) | −2.714948 | 1.751889 | −1.550 | 0.1212 |
Age | −0.001852 | 0.008886 | −0.208 | 0.8349 |
HS | 0.072168 | 0.275820 | 0.262 | 0.7936 |
EEC | 0.179976 | 0.139400 | 1.291 | 0.1967 |
C | −0.037824 | 0.136705 | −0.277 | 0.7820 |
Nwc | −0.002336 | 0.002376 | −0.983 | 0.3255 |
LR | 2.073184 | 1.300762 | 1.594 | 0.1110 |
FT | 0.390613 | 1.002968 | 0.389 | 0.6969 |
NFailure | 0.293393 | 0.144540 | 2.030 | 0.0424 * |
TCO | 0.009645 | 0.024273 | 0.397 | 0.6911 |
GWP | −0.019977 | 0.032351 | −0.617 | 0.5369 |
Eco_Sav_Ppw | −0.006310 | 0.011066 | −0.570 | 0.5686 |
Env_Sav_Ppw | 0.051532 | 0.025608 | 2.012 | 0.0442 * |
Coefficient | Std. Error | z-Statistic | p-Value | |
---|---|---|---|---|
(Intercept) | 1.871623 | 1.224038 | 1.529 | 0.126250 |
Age | −0.030878 | 0.009067 | −3.405 | 0.000661 * |
HS | −0.098484 | 0.275390 | −0.358 | 0.720629 |
EEC | −0.074695 | 0.151650 | −0.493 | 0.622329 |
C | −0.076124 | 0.117111 | −0.650 | 0.515682 |
Nwc | 0.000833 | 0.002753 | 0.303 | 0.762239 |
LR | 2.001606 | 1.137450 | 1.760 | 0.078454 |
FT | −1.017652 | 1.286137 | −0.791 | 0.428800 |
NFailure | 0.002469 | 0.144964 | 0.017 | 0.986412 |
TCO | −0.049216 | 0.046809 | −1.051 | 0.293060 |
GWP | 0.050911 | 0.054041 | 0.942 | 0.346151 |
Eco_Sav_Ppw | 0.029690 | 0.058817 | 0.505 | 0.613711 |
Env_Sav_Ppw | −0.007086 | 0.063486 | −0.112 | 0.911126 |
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Bressanelli, G.; Saccani, N.; Perona, M. Investigating Business Potential and Users’ Acceptance of Circular Economy: A Survey and an Evaluation Model. Sustainability 2022, 14, 609. https://doi.org/10.3390/su14020609
Bressanelli G, Saccani N, Perona M. Investigating Business Potential and Users’ Acceptance of Circular Economy: A Survey and an Evaluation Model. Sustainability. 2022; 14(2):609. https://doi.org/10.3390/su14020609
Chicago/Turabian StyleBressanelli, Gianmarco, Nicola Saccani, and Marco Perona. 2022. "Investigating Business Potential and Users’ Acceptance of Circular Economy: A Survey and an Evaluation Model" Sustainability 14, no. 2: 609. https://doi.org/10.3390/su14020609
APA StyleBressanelli, G., Saccani, N., & Perona, M. (2022). Investigating Business Potential and Users’ Acceptance of Circular Economy: A Survey and an Evaluation Model. Sustainability, 14(2), 609. https://doi.org/10.3390/su14020609