| Literature DB >> 30213066 |
Xujin Pu1, Zhiping Song2, Guanghua Han3.
Abstract
Many manufacturers and retailers have cooperated for low-carbon production in various industries. This study examines the role of consumers' low-carbon preference in this cooperation. We construct four scenarios to investigate the effects of consumers' low-carbon preference on the market equilibrium of supply chains' product selection strategy. Based on the game theoretic models, optimal solutions for the two supply chains are derived with different consumers' preference for low-carbon products. Through the discussion, we uncovered the influence of consumers' preference on price and demand and the relationship between the influence coefficient of retailers' promotional effort on consumers' utility and retailer profits. In addition, given the increase of government's low-carbon production subsidy, two supply chains will both more likely choose low-carbon production. Interestingly, under the government subsidy, the profit of manufacturer will increase or decrease more than its retailer and the market structure will not change if the two supply chains have chosen low-carbon production.Entities:
Keywords: consumers’ preference; cooperation; low-carbon production; supply chain competition
Mesh:
Substances:
Year: 2018 PMID: 30213066 PMCID: PMC6164740 DOI: 10.3390/ijerph15091985
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 3.390
Figure 1Structure of the manufacturing supply chain under duopoly model.
Notations for the parameters and variables.
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| Consumers’ valuation for the regular product |
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| Consumers’ travelling cost |
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| Consumers’ preference for low-carbon products |
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| Cost of regular production |
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| Carbon emission reduction rate |
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| Per unit fare to take low-carbon production |
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| Promotional sensitivity coefficient |
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| Retailers’ low-carbon promotional efforts |
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| Consumer utility |
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| Profit of manufacturer/retailer |
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| Demand of products |
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| Unit price |
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| Unit wholesale price |
Strategy selection game matrix of the two supply chains.
| Scenarios | Supply Chain 1 | Supply Chain 1 |
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| Scenario NN | Scenario LN | |
| Scenario NL | Scenario LL |
Equilibrium outcomes under scenario NN.
| Scenario NN | Supply Chain 1 | Supply Chain 2 |
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Equilibrium outcomes under scenario NL.
| Scenario NL | Supply Chain 1 | Supply Chain 2 |
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Equilibrium outcomes under scenario LN.
| Scenario LN | Supply Chain 1 | Supply Chain 2 |
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Equilibrium outcomes under scenario LL.
| Scenario LL | Supply Chain 1 | Supply Chain 2 |
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Figure 2Division of the market structure.
Figure 3Trend of A(B) with k.
Figure 4Trend of A(B) with θ.
Figure 5Trend of A(B) with ξ.
Figure 6Trend of ΔD with τ.
Figure 7Trend of p with τ.
Figure 8Trend of D1 with τ.
Figure 9Trend of with ξ.
Figure 10Trend of with ξ.
Equilibrium outcomes with subsidy under scenario NL.
| Scenario NL | Supply Chain 1 | Supply Chain 2 |
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Equilibrium outcomes with subsidy under scenario LN.
| Scenario LN | Supply Chain 1 | Supply Chain 2 |
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Equilibrium outcomes with subsidy under scenario LL.
| Scenario LL | Supply Chain 1 | Supply Chain 2 |
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Figure 11Changes of the market structure (a) λ = 0 (b) λ = 0.3 (c) λ = 0.6 (d) λ = 0.9.
Equilibrium profit of the two manufacturers under the four scenarios.
| NN | NL | LN | LL | |
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| M1 |
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| M2 |
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Where M = C2 − C1 + 9t, N = C1 − C2 + 9t.