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  1. fraunhofer institute for building physics (germany), "thermal performance of polyurethane insulation in underfloor heating systems", 2020.
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  2. bj?rk, r., et al., "energy efficiency in residential buildings using high-performance thermal insulation", energy and buildings, vol. 198, 2019, pp. 123¨C135.
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  3. zhang, y., et al., "application of polyurethane foam in floor heating systems: a comparative study", journal of building engineering, vol. 32, 2020, p. 101567.
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  4. international energy agency (iea), "energy efficiency in heating and cooling systems", 2021.
    iea±¨¸æÖÐÌáµ½£¬ÓÅ»¯½¨Öþ±£Î²ÄÁÏÊÇÌáÉý¹©Å¯ÏµÍ³ÄÜЧµÄ¹Ø¼ü´ëʩ֮һ£¬ÆäÖо۰±õ¥Àà²ÄÁÏÒòÆäÓÅÒìµÄÈȹ¤ÐÔÄܶøÊܵ½ÍƼö¡£

  5. wang, l., et al., "thermal insulation materials for sustainable building applications", materials today sustainability, vol. 14, 2021, p. 100076.
    ¸ÃÎÄ×ÛÊöÁ˸÷ÀౣβÄÁÏÔڿɳÖÐø½¨ÖþÖеÄÓ¦Óã¬ÖصãÌáµ½ÁËlupranate msÔÚ¼õÉÙ̼ÅÅ·Å·½ÃæµÄDZÁ¦¡£

  6. european chemical industry council (cefic), "sustainability assessment of polyurethane insulation materials", 2018.
    ´Ë±¨¸æÆÀ¹ÀÁ˾۰±õ¥²ÄÁϵĻ·¾³Ó°Ï죬²¢Ö¸³ölupranate msÔÚÉú²ú¹ý³ÌÖÐ̼×ã¼£½ÏµÍ£¬·ûºÏÅ·Ã˵Ļ·±£±ê×¼¡£

  7. li, j., et al., "comparative analysis of insulation materials for radiant floor heating in cold climates", renewable energy, vol. 179, 2021, pp. 1235¨C1246.
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  8. u.s. department of energy (doe), "advanced insulation materials for energy-efficient buildings", 2020.
    doeÔÚÆä±¨¸æÖÐÍÆ¼öÁ˶àÖÖ½ÚÄܽ¨²Ä£¬ÆäÖаüÀ¨¾Û°±õ¥ÅÝÄ­²ÄÁÏ£¬²¢Ö¸³öÆäÔÚ½µµÍ½¨ÖþÄܺķ½ÃæµÄ¾Þ´óDZÁ¦¡£

  9. chen, h., et al., "life cycle assessment of polyurethane insulation in building applications", building and environment, vol. 195, 2021, p. 107843.
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  10. japan society of civil engineers (jsce), "thermal management strategies in modern underfloor heating systems", technical report no. 1452, 2019.
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