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            <title>Building materials and construction &amp; materials engineering and nano sciences : selected peer-reviewed extended articles based on abstracts presented at the 2022 7th international conference on building materials and construction &amp; 2022 6th international conference on materials engineering and nano sciences.</title>
            <link>https://ndlsearch.ndl.go.jp/books/R100000002-I032574758</link>
            <description>Building materials and construction &amp; materials engineering and nano sciences : selected peer-reviewed extended articles based on abstracts presented at the 2022 7th international conference on building materials and construction &amp; 2022 6th international conference on materials engineering and nano sciences.. Trans Tech Publications Ltd, [2022], Scientific Books Collection ; 24. ISBN:9783036400143</description>
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            <pubDate>Mon, 01 Sep 2025 19:00:00 +0900</pubDate>
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            <title>Fundamental Study on Improvement of Salt Damage Resistance of Mortar with Various Blast Furnace Slag based on Chloride Ion Immobilization Capacity / Sabpa-asa, Prang</title>
            <link>https://ndlsearch.ndl.go.jp/books/R100000039-I12651880</link>
            <description>Sabpa-asa, Prang. Fundamental Study on Improvement of Salt Damage Resistance of Mortar with Various Blast Furnace Slag based on Chloride Ion Immobilization Capacity. &#x6771;&#x6d77;&#x5927;&#x5b66;, 2022-09-24</description>
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            <pubDate>Tue, 28 Oct 2025 00:44:43 +0900</pubDate>
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            <title>&#x9ad8;&#x7089;&#x30b9;&#x30e9;&#x30b0;&#x5fae;&#x7c89;&#x672b;&#x3092;&#x7528;&#x3044;&#x305f;&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x7cfb;&#x6750;&#x6599;&#x306e;&#x5f37;&#x5ea6;&#x6539;&#x5584;&#x304a;&#x3088;&#x3073;&#x5bd2;&#x51b7;&#x5730;&#x3067;&#x306e;&#x8010;&#x4e45;&#x6027;&#x306b;&#x95a2;&#x3059;&#x308b;&#x7814;&#x7a76; / &#x91d1;, &#x6e96;&#x93ac;</title>
            <link>https://ndlsearch.ndl.go.jp/books/R100000039-I11099676</link>
            <description>&#x91d1;, &#x6e96;&#x93ac;. &#x9ad8;&#x7089;&#x30b9;&#x30e9;&#x30b0;&#x5fae;&#x7c89;&#x672b;&#x3092;&#x7528;&#x3044;&#x305f;&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x7cfb;&#x6750;&#x6599;&#x306e;&#x5f37;&#x5ea6;&#x6539;&#x5584;&#x304a;&#x3088;&#x3073;&#x5bd2;&#x51b7;&#x5730;&#x3067;&#x306e;&#x8010;&#x4e45;&#x6027;&#x306b;&#x95a2;&#x3059;&#x308b;&#x7814;&#x7a76;. 2017-09-25. DOI:10.15118/00009625; 10.15118/00009625&lt;br&gt;Blast furnace slag (BFS) has been widely used as a mineral admixture in cement and concrete in the concrete industry in order to reduce CO2 emissions. In Japan, the replacement levels of BFS are categorized into type A (5~30 wt%), type B (30~60 wt%), and type C (60~70 wt%) according to Japanese Industrial Standard (JIS). However, only type B BFS blended cement is actually used in the construction industry, and is mainly used in foundations or underground structures, and not in main structural elements due to the low compressive strength at early age. In order to broaden the practical application of BFS blended cement in the construction industry, the mechanical property and hydration process need to be further discussed. Therefore, the purpose of this research is to investigate the BFS blended cement in cementitious composites affected by various replacement ratios, such as in compressive strength development methods, with combined deterioration of carbonation and frost damage. Moreover, the compressive strength development of BFS blended cement and the combined deterioration effects of accelerated carbonation and freeze?thaw resistance were investigated in this thesis. In Chapter 2, a calcium silicate hydrate (C-S-H) type accelerator that was developed to serve the purpose of increased production efficiency and streamlining of manufacturing secondary products of concrete shows an effect in all temperature ranges. Therefore, it is the purpose of this research to establish if a C-S-H type accelerator is able to be used as a BFS blended concrete strength development method. The C-S-H type accelerator was compared with the quality standard of the accelerator, and proved possible to be positioned not merely as a hardening accelerator. Moreover, the addition of C-S-H type accelerator to BFS cement type B did not see a close relationship between additive amounts of C-S-H type accelerator and strength development; thus, we tested the heat of hydration by conduction calorimeter and analyzed it by X-ray diffraction (XRD). This indicates the cement hydration of the promotion mechanism of the C-S-H type accelerator. In chapter 3, it was investigates the compressive strength development of blast furnace slag (BFS) blended mortar mixtures incorporating various mineral admixtures, namely BFS, limestone powder (LSP), and gypsum (CS). BFS replacement ratios of 15, 20, and 25 wt.%; LSP replacement ratios of 2, 3, 4, and 5 wt.%; and a CS ii replacement ratio of 2 wt.% are employed to improve the strength of BFS blended mortar mixtures. The hydration reaction and products resulting from the use of cement, BFS, and mineral admixtures are quantitatively examined with respect to the XRD/Rietveld method in order to investigate the relationship between the produced hydrates and the strength. In addition, the strength is found to be decreased as the BFS replacement ratio increases. At a BFS replacement ratio above 20 wt.%, LSP affects the strength improvement of BFS cement and CS affects the initial strength improvement of BFS cement. The effect of high early strength Portland cement (HPC). The investigation of each concrete sample includes two curing cases, which are cured in air 5&#x2103; or 20&#x2103; at 30, 90, 210, 840 and 2730 Maturity. The result of experiments shows that, in the case of BFS A type, it has the same performance as the OPC. In the case of BFS B type, considering the advantage that largely reduced from the amount of CO2, the mixture BFS35% + LSP 3% + CS2% is judged appropriate. In chapter 4, the durability performance of cementitious material is traditionally based on assessing the effect of a single degradation process. However, this study investigates the mechanical and coupled deterioration properties of mortar incorporating industrial solid waste - ground granulated blast furnace slag (BFS) and different mineral admixtures, such as calcium sulfate (CS) and limestone powder (LSP). The combined deterioration properties caused by carbonation and frost damage in the mortar sample were experimentally investigated with respect to accelerated carbonation and freeze?thaw tests. Different degrees of deterioration, i.e., after subjected to 12, 30 and 60 freeze-thaw cycles were induced in the freeze-thaw tests. Mercury intrusion porosimetry (MIP) was used to measure the pore structure distribution in the mortar samples to quantify the influence of the mineral admixtures and the replacement ratio on the change in pore structure volume, providing reasonable guidance to assess the durability. The experimental investigation revealed that the compressive strength, frost resistance and carbonation resistance decrease as the BFS replacement ratio increases by weight from 0 to 45%. Moreover, to achieve the same strength as ordinary Portland cement, 2 wt. % CS and 4 wt. % LSP in the BFS mortar are required. However, the data shows that incorporating LSP into the BFS mortar produces a lower frost carbonation resistance. The combined damage tests revealed that different deterioration degrees resulting from 12, 30 and 60 freeze?thaw cycles slightly decreased the iii carbonation resistance, which is related to the decrease in the inkbottle pore volume due to its water retention characteristics. Simultaneously, the pre-carbonation deterioration could effectively decrease the surface mass scaling of the freeze?thaw, indicating In Chapter 5, the frost damage resistance of BFS cement has an effect on the carbonation. Hence, this study investigates the carbonation properties of pastes incorporating BFS and different replacement ratios, at 15%, 45%, and 65% of replacement ratio on weight percentage. The replacement ratio properties caused by the Ca/Si ratio of C-S-H in the paste samples were experimentally investigated with respect to mercury intrusion porosimetry (MIP), X-ray diffraction (XRD), and thermal analysis tests. Different degrees of curing age (2 week, 4weeks) were subjected to water curing. The experimental investigation of the pore structure indicated that the total porosity decreases after carbonation. Calcium carbonation (CC) is denser than calcium hydroxide (CH) due to the carbonation. We found vaterite through chemical composition analysis by XRD, which has a high expansion rate, and which influences the carbonation characteristic of BFS blended cement paste.; &#x9ad8;&#x7089;&#x30b9;&#x30e9;&#x30b0;&#x5fae;&#x7c89;&#x672b;&#xff08;BFS&#xff09;&#x306f;&#xff0c;&#x4e8c;&#x9178;&#x5316;&#x70ad;&#x7d20;&#x306e;&#x6392;&#x51fa;&#x3092;&#x524a;&#x6e1b;&#x3059;&#x308b;&#x305f;&#x3081;&#x306b;&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x3084;&#x30b3;&#x30f3;&#x30af;&#x30ea;&#x30fc;&#x30c8;&#x306b;&#x6df7;&#x5408;&#x3057;&#x4f7f;&#x7528;&#x3059;&#x308b;&#x9271;&#x7269;&#x8cea;&#x6df7;&#x548c;&#x6750;&#x3068;&#x3057;&#x3066;&#x5e83;&#x304f;&#x4f7f;&#x7528;&#x3055;&#x308c;&#x3066;&#x3044;&#x308b;&#x3002;BFS&#x3092;&#x6df7;&#x5408;&#x3057;&#x305f;&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x306e;&#x4f7f;&#x7528;&#x91cf;&#x3092;&#x9ad8;&#x3081;&#x308b;&#x305f;&#x3081;&#x306b;&#xff0c;&#x9ad8;&#x7089;&#x30b9;&#x30e9;&#x30b0;&#x306e;&#x6b20;&#x70b9;&#x3067;&#x3042;&#x308b;&#x521d;&#x671f;&#x5f37;&#x5ea6;&#x4f4e;&#x4e0b;&#x306e;&#x6539;&#x5584;&#x3068;&#x51cd;&#x7d50;&#x878d;&#x89e3;&#x88ab;&#x5bb3;&#x3092;&#x53d7;&#x3051;&#x308b;&#x304a;&#x305d;&#x308c;&#x304c;&#x3042;&#x308b;&#x5bd2;&#x51b7;&#x5730;&#x3067;&#x306e;&#x4e2d;&#x6027;&#x5316;&#x3068;&#x51cd;&#x7d50;&#x878d;&#x89e3;&#x3092;&#x540c;&#x6642;&#x306b;&#x53d7;&#x3051;&#x308b;&#x8907;&#x5408;&#x52a3;&#x5316;&#x306b;&#x5bfe;&#x3059;&#x308b;&#x691c;&#x8a0e;&#x304c;&#x5fc5;&#x8981;&#x3067;&#x3042;&#x308b;&#x3002;&#x305d;&#x3053;&#x3067;&#xff0c;&#x672c;&#x7814;&#x7a76;&#x3067;&#x306f;BFS&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x306e;&#x5727;&#x7e2e;&#x5f37;&#x5ea6;&#x3092;&#x6539;&#x5584;&#x3059;&#x308b;&#x65b9;&#x6cd5;&#x3068;&#x4e2d;&#x6027;&#x5316;&#x3068;&#x51cd;&#x7d50;&#x878d;&#x89e3;&#x306b;&#x3088;&#x308b;&#x8907;&#x5408;&#x52a3;&#x5316;&#x6319;&#x52d5;&#x3092;&#x660e;&#x3089;&#x304b;&#x306b;&#x3059;&#x308b;&#x3053;&#x3068;&#x3092;&#x76ee;&#x7684;&#x3068;&#x3057;&#x305f;&#x5b9f;&#x9a13;&#x3068;&#x691c;&#x8a0e;&#x3092;&#x884c;&#x3044;&#xff0c;&#x4ee5;&#x4e0b;&#x306e;&#x7d50;&#x8ad6;&#x3092;&#x5f97;&#x305f;&#x3002;1. &#x30b3;&#x30f3;&#x30af;&#x30ea;&#x30fc;&#x30c8;2&#x6b21;&#x88fd;&#x54c1;&#x306e;&#x8fc5;&#x901f;&#x306a;&#x8131;&#x578b;&#x306e;&#x305f;&#x3081;&#x306b;&#x958b;&#x767a;&#x3055;&#x308c;&#x305f;C-S-H&#x65e9;&#x5f37;&#x5264;&#x306f;&#xff0c;&#x521d;&#x671f;&#x5f37;&#x5ea6;&#x306e;&#x6539;&#x5584;&#x5264;&#x3068;&#x3057;&#x3066;&#x306e;&#x6a5f;&#x80fd;&#x3092;&#x6709;&#x3059;&#x308b;&#x3053;&#x3068;&#x304b;&#x3089;&#xff0c;BFS&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x306e;&#x5f37;&#x5ea6;&#x767a;&#x73fe;&#x6027;&#x72b6;&#x3092;&#x6539;&#x5584;&#x3059;&#x308b;&#x305f;&#x3081;&#x306e;&#x4e00;&#x65b9;&#x6cd5;&#x3068;&#x3057;&#x3066;&#x306e;C-S-H&#x65e9;&#x5f37;&#x5264;&#x306e;&#x4f7f;&#x7528;&#x306e;&#x53ef;&#x80fd;&#x6027;&#x3092;&#x691c;&#x8a0e;&#x3057;&#x305f;&#x3002;&#x7d50;&#x679c;&#x7684;&#x306b;&#xff0c;BFS&#x6df7;&#x5165;&#x306b;&#x3088;&#x308a;C3S&#x91cf;&#x304c;&#x4f4e;&#x4e0b;&#x3057;&#x305f;&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x8907;&#x5408;&#x4f53;&#x3067;&#x306f;&#xff0c;C-S-H&#x65e9;&#x5f37;&#x5264;&#x306e;&#x52b9;&#x679c;&#x306f;&#x4f4e;&#x304f;&#xff0c;BFS&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x3078;&#x306e;&#x9069;&#x7528;&#x306f;&#x56f0;&#x96e3;&#x3067;&#x3042;&#x308b;&#x3068;&#x5224;&#x65ad;&#x3055;&#x308c;&#x305f;&#x3002;2. BFS&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x306b;&#x77f3;&#x7070;&#x77f3;&#x7c89;&#x672b;&#xff08;LSP&#xff09;&#x3068;&#x77f3;&#x818f;&#xff08;CS&#xff09;&#x3092;&#x5c11;&#x91cf;&#x6df7;&#x5408;&#x6210;&#x5206;&#x3068;&#x3057;&#x3066;&#x6dfb;&#x52a0;&#x3057;&#x305f;&#x5834;&#x5408;&#x306e;&#x5727;&#x7e2e;&#x5f37;&#x5ea6;&#x306e;&#x6539;&#x5584;&#x306b;&#x3064;&#x3044;&#x3066;&#x691c;&#x8a0e;&#x3057;&#x305f;&#x3002;&#x751f;&#x6210;&#x3055;&#x308c;&#x308b;&#x6c34;&#x548c;&#x7269;&#x3068;&#x5f37;&#x5ea6;&#x3068;&#x306e;&#x95a2;&#x4fc2;&#x3092;&#x628a;&#x63e1;&#x3059;&#x308b;&#x305f;&#x3081;&#x306b;&#xff0c;&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x304a;&#x3088;&#x3073;BFS&#x3068;&#x5c11;&#x91cf;&#x6df7;&#x5408;&#x6210;&#x5206;&#x306b;&#x8d77;&#x56e0;&#x3059;&#x308b;&#x6c34;&#x548c;&#x53cd;&#x5fdc;&#x3068;&#x6c34;&#x548c;&#x751f;&#x6210;&#x7269;&#x3092;XRD / Rietveld&#x65b9;&#x6cd5;&#x306b;&#x3064;&#x3044;&#x3066;&#x5b9a;&#x91cf;&#x7684;&#x306b;&#x5206;&#x6790;&#x3057;&#x305f;&#x3002;&#x5b9a;&#x91cf;&#x5316;&#x3057;&#x305f;&#x6c34;&#x548c;&#x751f;&#x6210;&#x7269;&#x91cf;&#x3092;&#x57fa;&#x6e96;&#x306b;&#x7b97;&#x5b9a;&#x3057;&#x305f;&#x7a7a;&#x9699;&#x91cf;&#x3068;&#x5f37;&#x5ea6;&#x3068;&#x306e;&#x95a2;&#x4fc2;&#x304b;&#x3089;&#x5f37;&#x5ea6;&#x306e;&#x6539;&#x5584;&#x52b9;&#x679c;&#x3092;&#x691c;&#x8a3c;&#x3057;&#x305f;&#x3002;&#x305d;&#x306e;&#x7d50;&#x679c;&#xff0c;BFS 15&#xff05;&#xff0c;LSP 4&#xff05;&#x3068;CS 2&#xff05;&#x3092;&#x8abf;&#x5408;&#x3057;&#x305f;BFS&#x30e2;&#x30eb;&#x30bf;&#x30eb;&#x306f;&#xff0c;&#x666e;&#x901a;&#x30dd;&#x30eb;&#x30c8;&#x30e9;&#x30f3;&#x30c9;&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x3092;&#x7528;&#x3044;&#x305f;&#x30e2;&#x30eb;&#x30bf;&#x30eb;&#x3068;&#x540c;&#x7b49;&#x7a0b;&#x5ea6;&#x307e;&#x3067;&#x5f37;&#x5ea6;&#x767a;&#x73fe;&#x6027;&#x72b6;&#x304c;&#x6539;&#x5584;&#x3055;&#x308c;&#x308b;&#x3053;&#x3068;&#x3092;&#x793a;&#x3057;&#x305f;&#x3002;3. BFS&#x306e;&#x6df7;&#x5165;&#x306f;&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x786c;&#x5316;&#x4f53;&#x306b;&#x304a;&#x3044;&#x3066;&#x91cd;&#x8981;&#x306a;&#x6c34;&#x548c;&#x7269;&#x3067;&#x3042;&#x308b;C-S-H&#x306e;Ca / Si&#x6bd4;&#x306b;&#x5f71;&#x97ff;&#x3092;&#x53ca;&#x307c;&#x3059;&#x3002;&#x305d;&#x3053;&#x3067;&#xff0c;Ca / Si&#x6bd4;&#x304c;&#x4e2d;&#x6027;&#x5316;&#x306b;&#x53ca;&#x307c;&#x3059;&#x5f71;&#x97ff;&#x3092;&#x78ba;&#x8a8d;&#x3059;&#x308b;&#x305f;&#x3081;&#x306b;&#x4e2d;&#x6027;&#x5316;&#x524d;&#x5f8c;&#x306e;&#x6210;&#x5206;&#x3068;&#x7a7a;&#x9699;&#x69cb;&#x9020;&#x3092;&#x5b9f;&#x9a13;&#x7684;&#x306b;&#x691c;&#x8a0e;&#x3057;&#x305f;&#x3002;&#x305d;&#x306e;&#x7d50;&#x679c;&#xff0c;&#x4fc3;&#x9032;&#x4e2d;&#x6027;&#x5316;&#x3067;&#x751f;&#x6210;&#x3059;&#x308b;&#x70ad;&#x9178;&#x30ab;&#x30eb;&#x30b7;&#x30a6;&#x30e0;&#x306f;&#x6c34;&#x9178;&#x5316;&#x30ab;&#x30eb;&#x30b7;&#x30a6;&#x30e0;&#x3088;&#x308a;&#x4f53;&#x7a4d;&#x304c;&#x5927;&#x304d;&#x3044;&#x3053;&#x3068;&#x304b;&#x3089;&#xff0c;&#x4e2d;&#x6027;&#x5316;&#x306b;&#x3088;&#x3063;&#x3066;&#x6c34;&#x548c;&#x7d44;&#x7e54;&#x304c;&#x7dfb;&#x5bc6;&#x306b;&#x306a;&#x308b;&#x3053;&#x3068;&#x3092;&#x78ba;&#x8a8d;&#x3057;&#x305f;&#x3002;&#x307e;&#x305f;&#xff0c;BFS&#x3092;&#x4f7f;&#x7528;&#x3057;&#x305f;&#x5834;&#x5408;&#x306b;&#x751f;&#x6210;&#x3059;&#x308b;&#x70ad;&#x9178;&#x30ab;&#x30eb;&#x30b7;&#x30a6;&#x30e0;&#x306b;&#x306f;&#x30d0;&#x30c6;&#x30e9;&#x30a4;&#x30c8;&#x304c;&#x9ad8;&#x6bd4;&#x7387;&#x3067;&#x542b;&#x307e;&#x308c;&#x3066;&#x304a;&#x308a;&#xff0c;&#x30ab;&#x30eb;&#x30b5;&#x30a4;&#x30c8;&#x3092;&#x591a;&#x304f;&#x542b;&#x3080;&#x666e;&#x901a;&#x30dd;&#x30eb;&#x30c8;&#x30e9;&#x30f3;&#x30c9;&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x306e;&#x5834;&#x5408;&#x3068;&#x306f;&#x7570;&#x306a;&#x308b;&#x50be;&#x5411;&#x3092;&#x793a;&#x3057;&#x305f;&#x3002;4. BFS&#x30bb;&#x30e1;&#x30f3;&#x30c8;&#x306b;&#x5c11;&#x91cf;&#x6df7;&#x5408;&#x6210;&#x5206;&#x3068;&#x3057;&#x3066;CS&#x3068;LSP&#x3092;&#x4f7f;&#x7528;&#x3057;&#x3066;&#x5f37;&#x5ea6;&#x5411;&#x4e0a;&#x304c;&#x78ba;&#x8a8d;&#x3055;&#x308c;&#x305f;&#x30e2;&#x30eb;&#x30bf;&#x30eb;&#x3092;&#x5bfe;&#x8c61;&#x3068;&#x3057;&#x3066;&#x8010;&#x4e45;&#x6027;&#x306e;&#x691c;&#x8a0e;&#x3092;&#x884c;&#x3063;&#x305f;&#x3002;&#x305d;&#x306e;&#x7d50;&#x679c;&#xff0c;&#x4e2d;&#x6027;&#x5316;&#x3068;&#x51cd;&#x7d50;&#x878d;&#x89e3;&#x306b;&#x3088;&#x308b;&#x8907;&#x5408;&#x52a3;&#x5316;&#x306e;&#x6027;&#x72b6;&#x306b;&#x3064;&#x3044;&#x3066;&#xff0c;&#x51cd;&#x5bb3;&#x52a3;&#x5316;&#x306e;&#x9032;&#x884c;&#x306b;&#x3088;&#x308a;&#x4e2d;&#x6027;&#x5316;&#x62b5;&#x6297;&#x6027;&#x304c;&#x308f;&#x305a;&#x304b;&#x306b;&#x4f4e;&#x4e0b;&#x3059;&#x308b;&#x3053;&#x3068;&#x3068;&#x4e2d;&#x6027;&#x5316;&#x306e;&#x9032;&#x884c;&#x304c;&#x51cd;&#x7d50;&#x878d;&#x89e3;&#x306e;&#x7e70;&#x308a;&#x8fd4;&#x3057;&#x306b;&#x3088;&#x308b;&#x8868;&#x9762;&#x306e;&#x30b9;&#x30b1;&#x30fc;&#x30ea;&#x30f3;&#x30b0;&#x91cf;&#x3092;&#x6e1b;&#x5c11;&#x3055;&#x305b;&#x3066;&#x51cd;&#x7d50;&#x878d;&#x89e3;&#x62b5;&#x6297;&#x6027;&#x304c;&#x5411;&#x4e0a;&#x3059;&#x308b;&#x3053;&#x3068;&#x304c;&#x660e;&#x3089;&#x304b;&#x3068;&#x306a;&#x3063;&#x305f;&#x3002;</description>
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            <pubDate>Thu, 30 Oct 2025 19:31:55 +0900</pubDate>
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            <title>Fundamental Study on Improvement of Salt Damage Resistance of Mortar with Various Blast Furnace Slag based on Chloride Ion Immobilization Capacity / Sabpa-asa, Prang</title>
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            <description>Sabpa-asa, Prang. Fundamental Study on Improvement of Salt Damage Resistance of Mortar with Various Blast Furnace Slag based on Chloride Ion Immobilization Capacity. &#x6771;&#x6d77;&#x5927;&#x5b66;</description>
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