Industrial Energy Transitions and the Dynamics of Innovation Systems: The Swedish Pulp and Paper Industry, 1970–2010
Abstract
:1. Introduction
2. Conceptual Points of the Departure and Analytical Framework
3. Material and Methods
4. Results
4.1. Historical Background
4.2. The Cooperative State–Industry Response to the Oil Crises, 1970–1985
The protective shelter of the institution, through its controlling of large quantitative and qualitative resources, has been essential for the particular learning in R&D that took place there—and this also attracted good researchers.(Marklund [40], p. 186)
4.3. Partial Dismantling of the Cooperative Approach, 1985–2000
4.4. In Search for New Cooperative Approaches and Value Chains, 2000–2010
Such an approach ensures that results from basic R&D are exposed, that they are assessed from the perspective of the industry and equipment suppliers, and that investment and operational economic analyses are conducted in a serious manner.(Wejding and Wendt [101], 21, authors’ translation)
The strategic competences of the [Swedish pulp and paper industry] in this regard are wood acquisition and wood processing while it does lack the knowledge, infrastructure and distribution channels related to chemicals and transportation fuels. Collaboration across industry sectors and with public agencies is therefore considered necessary for the development of biorefineries.(pp. 23–24)
5. Discussion
[…], regarding the new value chain relations, the analysis suggests that facilitation of contact to downstream actors is very important for the commercialization of biorefinery technologies, [...]. Thus, policy can potentially play an important role in facilitating network formation by creating arenas for interaction between pulp and paper firms and potential downstream actors.(p. 509)
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Bergquist, A.K.; Söderholm, K.; Kinneryd, H.; Lindmark, M.; Söderholm, P. Command-and-control revisited: Environmental compliance and technological change in Swedish industry. Ecol. Econ. 2013, 85, 6–19. [Google Scholar] [CrossRef]
- Sandén, B.A.; Azar, C. Near-term technology policy for long-term climate targets. Economy-wide versus technology specific approaches. Energy Policy 2005, 33, 1557–1576. [Google Scholar] [CrossRef]
- Söderholm, P.; Hellsmark, H.; Frishammar, J.; Hansson, J.; Mossberg, J.; Sandström, A. Technological development for sustainability: The role of network management in the innovation policy mix. Technol. Forecast. Soc. Chang. 2019, 138, 309–323. [Google Scholar] [CrossRef]
- Wesseling, J.H.; Lechtenböhmer, S.; Åhman, M.; Nilsson, L.J.; Worell, E.; Coenen, L. The transition of energy intensive processing industries towards deep decarbonization: Characteristics and implications for future research. Renew. Sustain. Energy Rev. 2017, 79, 1303–1313. [Google Scholar] [CrossRef]
- Bento, N.; Wilson, C. Measuring the duration of formative phases for energy technologies. Environ. Innov. Soc. Transit. 2016, 21, 95–112. [Google Scholar] [CrossRef]
- Thollander, P.; Ottosson, M. An energy efficient Swedish pulp and paper industry—Exploring barriers to and driving forces for cost-effective energy efficiency investments. Energy Effic. 2007, 1, 21–34. [Google Scholar] [CrossRef] [Green Version]
- Schleich, J. Barriers to energy efficiency: A comparison across the German commercial and services sector. Ecol. Econ. 2009, 68, 2150–2159. [Google Scholar] [CrossRef]
- Wolf, A.; Petersson, K. Industrial Symbiosis in the Swedish Forest Industry. Prog. Ind. Ecol. Int. J. 2007, 4, 348–362. [Google Scholar] [CrossRef] [Green Version]
- Åhman, M.; Nilsson, L.J.; Johansson, B. Global climate policy and deep decarbonization of energy-intensive industries. Clim. Policy 2017, 17, 634–649. [Google Scholar] [CrossRef] [Green Version]
- Amjadi, G.; Lundgren, T.; Persson, L. The rebound effect in Swedish heavy industry. Energy Econ. 2018, 71, 140–148. [Google Scholar] [CrossRef] [Green Version]
- Henriksson, E.; Söderholm, P.; Wårell, L. Industrial electricity demand and energy efficiency policy: The role of price changes and private R&D in the Swedish pulp and paper industry. Energy Policy 2012, 47, 437–446. [Google Scholar] [CrossRef]
- Lindmark, M.; Bergquist, A.-K.; Andersson, L.-F. Energy transition, carbon dioxide reduction and output growth in the Swedish pulp and paper industry: 1973–2006. Energy Policy 2011, 39, 5449–5456. [Google Scholar] [CrossRef]
- Stenqvist, C. Trends in energy performance of the Swedish pulp and paper industry: 1984–2011. Energy Effic. 2015, 8, 1–17. [Google Scholar] [CrossRef]
- Zhang, S.; Lundgren, T.; Zhou, W. Energy efficiency in Swedish industry: A firm-level data envelopment analysis. Energy Econ. 2016, 55, 43–51. [Google Scholar] [CrossRef]
- Bergquist, A.K.; Söderholm, K. Sustainable energy transition: The case of the Swedish pulp and paper industry 1973–1990. Energy Effic. 2016, 9, 1179–1192. [Google Scholar] [CrossRef]
- Ottosson, M. Opposition and Adjustment to Industrial Greening—The Swedish Forest Industry’s (Re)actions Regarding Energy Transition 1989–2009. Ph.D. Thesis, Linköping Studies in Arts and Science No. 526. Linköping University, Linköping, Sweden, 2011. [Google Scholar]
- Royal Swedish Academy of Engineering Sciences. Energieffektivisering av Sveriges Industri. HINDER och möjlIgheter att nå en Halverad Energianvändning Till 2050; IVA: Stockholm, Sweden, 2013. [Google Scholar]
- Swedish Energy Agency. Effektiv Energianvändning. En Analys av Utvecklingen 1970–1998; Statens Energimyndighet: Eskilstuna, Sweden, 2000. [Google Scholar]
- Fracoro, G.; Vakkilainen, E.; Hamaguchi, M.; Nelson, S.; de Souza, M. Energy efficiency in the Brazilian pulp and paper industry. Energies 2012, 5, 3550–3572. [Google Scholar] [CrossRef]
- Flanagan, K.; Uyarra, E.; Laranja, M. Reconceptualising the ‘policy mix’ for innovation. Res. Policy 2011, 40, 702–713. [Google Scholar] [CrossRef]
- Musiolik, J.; Markard, J. Creating and shaping innovation systems: Formal networks in the innovation system for stationary fuel cells in Germany. Energy Policy 2011, 39, 1909–1922. [Google Scholar] [CrossRef]
- Hoppmann, J.; Huenteler, J.; Girod, B. Compulsive policy-making—The evolution of the German feed-in tariff system for solar photovoltaic power. Res. Policy 2014, 43, 1422–1441. [Google Scholar] [CrossRef]
- Malerba, F. Sectoral systems of innovation and production. Res. Policy 2002, 31, 247–264. [Google Scholar] [CrossRef]
- Nelson, R.; Winter, S. An Evolutionary Theory of Economic Change; Belknapp Press: Cambridge, MA, USA, 1982. [Google Scholar]
- Malerba, F. Sectoral systems of innovation: A framework for linking innovation to the knowledge base, structure and dynamics of sectors. Econ. Innov. New Technol. 2005, 14, 63–82. [Google Scholar] [CrossRef]
- Edquist, C. Systems of Innovation; Frances Pinter: London, UK, 1997. [Google Scholar]
- Nelson, R. National Innovation Systems: A Comparative Analysis; Oxford University Press: New York, NY, USA, 1993. [Google Scholar]
- Teubal, M.; Yinnon, T.; Zuscovitch, E. Networks and market creation. Res. Policy 1991, 20, 381–392. [Google Scholar] [CrossRef]
- Hellsmark, H.; Frishammar, J.; Söderholm, P.; Ylinenpää, H. The role of pilot and demonstration plants in technology development and innovation policy. Res. Policy 2016, 45, 1743–1761. [Google Scholar] [CrossRef]
- Rosenberg, N. Inside the Black Box: Technology and Economics; Cambridge University Press: New York, NY, USA, 1983. [Google Scholar]
- Belderbos, R.; Carree, M.; Lokshin, B. Cooperative R&D and firm performance. Res. Policy 2004, 33, 1477–1492. [Google Scholar] [CrossRef] [Green Version]
- Cohen, W.M.; Levinthal, D.A. Absorptive capacity: A new perspective on learning and innovation. Adm. Sci. Q. 1990, 35, 128–152. [Google Scholar] [CrossRef]
- Liu, Z.; Jongsma, M.A.; Huang, C.; Dons, J.J.M.; Omta, S.W.F. The sectoral innovation system of the Dutch vegetable breeding industry. NJAS Wagening. J. Life Sci. 2015, 74–75, 27–39. [Google Scholar] [CrossRef] [Green Version]
- Laestadius, S. Technology level, knowledge formation, and industrial competence in paper manufacturing. In Microfoundation of Economic Growth: A Schumpeterian Perspective; Eliasson, G., Green, C., McCann, C.R., Eds.; University of Michigan Press: Ann Arbor, MI, USA, 1998. [Google Scholar]
- Weber, K.M.; Rohracher, H. Legitimizing research, technology and innovation policies for transformative change: Combining insights from innovation systems and multi-level perspective in a comprehensive ‘failures’ framework. Res. Policy 2012, 41, 1037–1047. [Google Scholar] [CrossRef]
- Rogge, K.S.; Reichardt, K. Policy mixes for sustainability transitions: An extended concept and framework for analysis. Res. Policy 2016, 45, 1620–1635. [Google Scholar] [CrossRef]
- Meadowcroft, J. Engaging with the politics of sustainability transitions. Environ. Innov. Soc. Transit. 2011, 1, 70–75. [Google Scholar] [CrossRef]
- Nilsson, L.J.; Johansson, B.; Åstrand, K.; Ericsson, K.; Svenningsson, P.; Börjesson, P.; Neij, L. Seeing the wood for the trees: 25 years of renewable energy policy in Sweden. Energy Sustain. Dev. 2004, 8, 67–81. [Google Scholar] [CrossRef]
- Eriksson, L. STFIs Öden och Äventyr 1942–2010: Fakta-Minnen-Reflexioner; Spearhead Production: Stockholm, Sweden, 2010. [Google Scholar]
- Marklund, G. Institutions and Appropriation in Swedish Technology Policy; Graphic Systems: Stockholm, Sweden, 1994. [Google Scholar]
- Wittrock, B.; Lindström, S. De Stora Programmens Tid. Forskning och Energi i Svensk Politik; Akademilitteratur: Stockholm, Sweden, 1984. [Google Scholar]
- Swedish Steam Generator Association. Energy Conservation in the Chemical Process Industry: Examples from the Pulp and Paper Industry; Ångpanneföreningen (ÅF): Stockholm, Sweden, 1974. [Google Scholar]
- Bergquist, A.K.; Söderholm, K. Green innovation systems in Swedish industry 1960–1989. Bus. Hist. Rev. 2011, 85, 677–698. [Google Scholar] [CrossRef]
- New techniques in environmental protection and energy saving go hand in hand. Sven. Papp. 1985, 7.
- Pulp and Paper Research Foundation. Minutes from Board Meeting (Protocol no. 8, 23 January, 1973); The Stockholm Centre for Business History Archive: Stockholm, Sweden, 1973. [Google Scholar]
- Om FoU på energiområdet. Sven. Papp. 1975, 9.
- Wiberg, R. Energiförbrukning i Massa-Och Pappersindustrin 1973; Swedish Pulp and Paper Mill Association (SCPF): Stockholm, Sweden, 1974. [Google Scholar]
- Viktiga referensverk för energianalyser och energibalanser. Sven. Papp. 1984, 14.
- Jönsson, S.-E.; Nygaard, J.; Wiberg, R. Modeller för Energihushållning i Massa- och Papperstillverkning. Sulfatfabrik för Blekt Avsalumassa; Swedish Steam Generator Association (ÅF): Stockholm, Sweden, 1976. [Google Scholar]
- Jönsson, S.-E.; Nygaard, J.; Wiberg, R. Modeller för Energihushållning i Massa-Och Papperstillverkning. Kraftlinerbruk; Swedish Steam Generator Association (ÅF): Stockholm, Sweden, 1976. [Google Scholar]
- Jönsson, S.-E.; Nygaard, J.; Wiberg, R. Modeller för Energihushållning i Massa-Och Papperstillverkning. Mjukpappersbruk; Swedish Steam Generator Association (ÅF): Stockholm, Sweden, 1977. [Google Scholar]
- Jönsson, S.-E.; Nygaard, J.; Wiberg, R. Modeller för Energihushållning i Massa-Och Papperstillverkning. Tidningspappersbruk; Swedish Steam Generator Association (ÅF): Stockholm, Sweden, 1977. [Google Scholar]
- Regestad, S. Skogsindustriella forsknings-och utvecklingsprojekt inom energiområdet. Sven. Papp. 1977, 14. [Google Scholar]
- Söderholm, K.; Bergquist, A.-K. Firm collaboration and environmental adaptation: The case of the Swedish pulp and paper industry, 1900–1990. Scand. Econ. Hist. Rev. 2012, 60, 183–211. [Google Scholar] [CrossRef]
- Sundblad, E. Skogsindustrin och energifrågorna. Sven. Papp. 1977, 9. [Google Scholar]
- Robertsson, O. Energibesparande åtgärder i sulfatfabriker. Sven. Papp. 1975, 1. [Google Scholar]
- Wohlfahrt, G. Energihushållningen i massa-och pappersindustrin. Om pågående utredningsverksamhet på branschnivå. Sven. Papp. 1977, 1. [Google Scholar]
- Lundqvist, L.J. Sweden and Ecological Governance: Straddling the Fence; Manchester University Press: Manchester, UK, 2004. [Google Scholar]
- Sörlin, S. En ny Institutssektor. En Analys av Industriforskningsinstitutens Villkor Och Framtid ur ett Närings-Och Innovationspolitiskt Perspektiv; Ministry of Enterprise, Energy and Communications: Stockholm, Sweden, 2006. [Google Scholar]
- Smith, M. The US Paper Industry and Sustainable Production. An Argument for Restructuring; MIT Press: Cambridge, MA, USA, 1997. [Google Scholar]
- Porter, M.E.; Sölvell, Ö.; Zander, I. Advantage Sweden, 2nd ed.; Palgrave Macmillan: London, UK, 1992. [Google Scholar]
- Government Bill 1975:30. Regeringens Proposition om Energihushållning m.m.; Swedish Government: Stockholm, Sweden, 1975. [Google Scholar]
- Haegermark, H. Priorities of energy research in Sweden. In Building Sustainable Energy Systems. Swedish Experiences; Silveira, S., Ed.; Swedish National Energy Administration: Eskilstuna, Sweden, 2001; pp. 163–195. [Google Scholar]
- Swedish Industry Agency (SIND). Statens Industriverk. Series of Publications 1983:2; Allmänna Förlaget: Stockholm, Sweden, 1978. [Google Scholar]
- International Energy Agency. RD&D Budget. IEA Energy Technology RD&D Statistics (Database); OECD: Paris, France, 2020. [Google Scholar]
- Rydin, B. Energianvändningen i industrin. Sven. Papp. 1980, 1. [Google Scholar]
- Slaget om energin avgör skogsindustrins framtid. Sven. Papp. 1982, 5.
- Swedish Industry Agency (SIND). PoD-Rapportering: Energi. Sammanställning av Slutrapporter Från Genomförda Prototyp-Och Demonstrationsanläggningar inom Energiområdet; Allmänna Förlaget: Stockholm, Sweden, 1986. [Google Scholar]
- Ekstedt, E. Humankapital i Brytningstid. Kunskapsuppbyggnad och Förnyelse för Företag; Allmänna Förlaget: Stockholm, 1988. [Google Scholar]
- Richter, J. The History of the Kamyr Continous Cooking; Industrihistorisk Skriftserie No. 7; Swedish Pulp and Paper Mill Association (SCPF): Stockholm, Sweden, 1981. [Google Scholar]
- Söderholm, K.; Bergquist, A.K. Growing green and competitive: A case study of a Swedish pulp mill. Sustainability 2013, 5, 1789–1805. [Google Scholar] [CrossRef] [Green Version]
- Nytt processtyrsystem för slipverk ger halverad energiförbrukning. Sven. Papp. 1988, 3.
- Stockman, L. Samarbete—En styrka i teknisk utveckling. Sven. Papp. 1985, 5. [Google Scholar]
- Sodapannan—Inte längre en flaskhals. Sven. Papp. 1986, 4.
- Processtyrning och mätteknik ger svensk skogsindustri konkurrensfördel. Sven. Papp. 1987, 9.
- ”Think small” mottot för ny informations-, mät-och styrteknik. Sven. Papp. 1996, 11.
- Croon, I. Samarbete—viktigt konkurrensmedel även för de nystora. Sven. Papp. 1987, 4. [Google Scholar]
- Pettersson, I. Handslaget—Svensk Industriell Forskningspolitik 1940–1980. Ph.D. Dissertation, Royal Institute of Technology, Stockholm, Sweden, 2012. [Google Scholar]
- Government Bill 1992/93:170. Forskning för Kunskap Och Framsteg; Swedish Government: Stockholm, Sweden, 1993. [Google Scholar]
- Lindvall, J.; Sebring, J. Policy reform and the decline of corporatism in Sweden. West Eur. Politics 2005, 28, 1057–1074. [Google Scholar] [CrossRef]
- Kronsell, A.; Khan, J.; Hildingsson, R. Actor relations in climate policy-making: Governing decarbonisation in a corporatist green state. Environ. Policy Gov. 2019, 29, 399–408. [Google Scholar] [CrossRef]
- Brunner, H. Industristyrd forskning är effektiv. Bergsmannen 1992, 1, 35. [Google Scholar]
- Järvinen, J.; Ojala, J.; Melander, A.; Lamberg, J.A. The evolution of the pulp and paper industries in Finland, Sweden and Norway 1800–2005. In The Evolution of Global Paper Industry, 1800–2050. A Comparative Analysis; Lamberg, J.A., Ojala, J., Peltoniemi, M., Särkkä, T., Eds.; Springer: Dordrecht, The Netherlands, 2012; pp. 19–48. [Google Scholar]
- Kretsloppsanpassa massafabrik—Nytt MISTRA-program. Sven. Papp. 1996, 12.
- KAM-programmet engagerar många aktörer. Sven. Papp. 1999, 2.
- Massaforskning ger energi. Sven. Papp. 2000, 4.
- Pumpa rätt, spara el. Sven. Papp. 1991, 5.
- Dags att generera mer mottryckskraft. Sven. Papp. 1993, 4.
- Ericsson, K.; Nilsson, L.J.; Nilsson, M. New energy strategies in the Swedish pulp and paper industry—The role of national and EU climate and energy policies. Energy Policy 2011, 39, 1439–1449. [Google Scholar] [CrossRef]
- Kretsloppsanpassning i massabruket—Var står man. Sven. Papp. 1998, 1.
- Svartlutsförgasning ny flexibel teknik som kan ersätta sodapannan. Sven. Papp. 1995, 10.
- Svartlutsförgasning och impulstorkning ska alstra och spara energi. Sven. Papp. 1997, 5.
- Karltorp, K.; Sandén, B.A. Explaining regime destabilization in the pulp and paper industry. Environ. Innov. Soc. Transit. 2012, 2, 66–81. [Google Scholar] [CrossRef]
- KAMs arbete kan snart förändra massaindustrin. Sven. Papp. 2003, 3.
- Nätverk lyfter lignin. Sven. Papp. 2004, 10.
- Kretsloppsanpassning i massabruket—Till viken nytta? Sven. Papp. 1998, 5.
- Forsström, A. Biomassaindustrin är framtiden. Sven. Papp. 1994, 5. [Google Scholar]
- Ericsson, K.; Nilsson, L.J. Climate Innovations in the Paper Industry: Prospects for Decarbonisation; IMES/EESS Report No. 110; Department of Technology and Society, Lund University: Lund, Sweden, 2019. [Google Scholar]
- Kivimaa, P.; Kautto, P.; Hildén, M.; Oksa, J. What Drives Environmental Innovations in the Nordic Pulp and Paper Industry? Green Markets and Cleaner Technologies (GMCT); Nordic Council of Ministers: Copenhagen, Denmark, 2008. [Google Scholar]
- Novotny, M.; Laestadius, S. Beyond papermaking: Technology and market shifts for wood-based biomass industries—Management implications for large-scale industries. Technol. Anal. Strateg. Manag. 2014, 26, 875–891. [Google Scholar] [CrossRef]
- Wejding, S.; Wendt, C.-H. Polymerkemi Och Polymerfysik (PKF): Utvärdering av Industriell Relevans Och Effekt 1990–1996; Report 1997:14; NUTEK: Stockholm, Sweden, 1997. [Google Scholar]
- Söderholm, P.; Lundmark, R. The development of forest-based biorefineries: Implications for market behavior and policy. For. Prod. J. 2009, 59, 6–16. [Google Scholar]
- Pandey, A. Biofuels: Alternative Feedstocks and Conversion Processes; Academic Press: Oxford, UK, 2011. [Google Scholar]
- Åström, T.; Swenning, A.-K.; Håkansson, A.; Jansson, T. Utvärdering av Värmeforsks Skogsindustriella Program; Technopolis Group: Stockholm, Sweden, 2012. [Google Scholar]
- Samarbete skall minska energiförbrukningen. Sven. Papp. 2000, 9.
- Hannus, M. Växande marknad för energieffektiv teknik. Sven. Papp. 2007, 10. [Google Scholar]
- Hellsmark, H.; Mossberg, J.; Söderholm, P.; Frishammar, J. Innovation system strengths and weaknesses in progressing sustainable technology: The case of Swedish biorefinery development. J. Clean. Prod. 2016, 131, 702–715. [Google Scholar] [CrossRef]
- Peck, P.; Grönkvist, S.; Hansson, J.; Lönnqvist, T.; Voytenko, Y. Systemic Constraints and Drivers for Production of Forest-Derived Transport Biofuels in Sweden. Part A: Report and Part B: Case Studies; f3 reports 2016:9a and 2016:9b; The Swedish Knowledge Centre for Renewable Transportation Fuels: Gothenburg, Sweden, 2016. [Google Scholar]
- Bauer, F.; Hansen, T.; Hellsmark, H. Innovation in the bioeconomy—Dynamics of biorefinery innovation networks. Technol. Anal. Strateg. Manag. 2018, 30, 935–947. [Google Scholar] [CrossRef] [Green Version]
- Hansen, T.; Coenen, L. Unpacking resource mobilisation by incumbents for biorefineries: The role of micro-level factors for technological innovation system weaknesses. Technol. Anal. Strateg. Manag. 2017, 29, 500–513. [Google Scholar] [CrossRef] [Green Version]
- Frishammar, J.; Söderholm, P.; Hellsmark, H.; Mossberg, J. A knowledge-based perspective on system weaknesses in technological innovation systems. Sci. Public Policy 2019, 46, 55–70. [Google Scholar] [CrossRef]
- Reinstaller, A. Technological transition to chlorine free pulp bleaching technologies: Lessons for transition policies. J. Clean. Prod. 2008, 16, 133–147. [Google Scholar] [CrossRef]
- Söderholm, K.; Bergquist, A.-K.; Söderholm, P. The transition to chlorine free pulp revisited: Nordic heterogeneity in environmental regulation and R&D collaboration. J. Clean. Prod. 2017, 165, 1328–1339. [Google Scholar] [CrossRef]
- Guan, J.C.; Yam, R.C.M.; Mok, C.K. Collaboration between industry and research institutes/universities on industrial innovation in Beijing, China. Technol. Anal. Strateg. Manag. 2005, 17, 339–353. [Google Scholar] [CrossRef]
- Lehmann, P.; Söderholm, P. Can technology-specific deployment policies be cost-effective? The case of renewable energy support schemes. Environ. Resour. Econ. 2018, 71, 475–505. [Google Scholar] [CrossRef] [Green Version]
- Chiou, J.-R.; Hu, J.-L. Environmental research joint ventures under emission taxes. Environ. Resour. Econ. 2001, 20, 129–146. [Google Scholar] [CrossRef]
- Edler, J.; Cunningham, P.; Gök, A.; Shapira, P. Impacts of Innovation Policy: Synthesis and Conclusion; Nesta Working Paper 13/21; Nesta: London, UK, 2013. [Google Scholar]
- Arnold, T.; Brown, N.; Eriksson, A.; Jansson, T.; Muscio, A.; Nählinder, J.; Zaman, R. The Role of Industrial Research Institutes in the National Innovation System; VA 2007:12; Swedish Governmental Agency for Innovation Systems (Vinnova): Stockholm, Sweden, 2007. [Google Scholar]
- Borrás, S.; Edquist, C. The choice of innovation policy instruments. Technol. Forecast. Soc. Chang. 2013, 80, 1513–1522. [Google Scholar] [CrossRef] [Green Version]
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Söderholm, K.; Söderholm, P. Industrial Energy Transitions and the Dynamics of Innovation Systems: The Swedish Pulp and Paper Industry, 1970–2010. Environments 2020, 7, 70. https://doi.org/10.3390/environments7090070
Söderholm K, Söderholm P. Industrial Energy Transitions and the Dynamics of Innovation Systems: The Swedish Pulp and Paper Industry, 1970–2010. Environments. 2020; 7(9):70. https://doi.org/10.3390/environments7090070
Chicago/Turabian StyleSöderholm, Kristina, and Patrik Söderholm. 2020. "Industrial Energy Transitions and the Dynamics of Innovation Systems: The Swedish Pulp and Paper Industry, 1970–2010" Environments 7, no. 9: 70. https://doi.org/10.3390/environments7090070
APA StyleSöderholm, K., & Söderholm, P. (2020). Industrial Energy Transitions and the Dynamics of Innovation Systems: The Swedish Pulp and Paper Industry, 1970–2010. Environments, 7(9), 70. https://doi.org/10.3390/environments7090070