Compressed Stabilized Earth Blocks for Sustainable Building Construction: A PRISMA-Guided Systematic Review and TCCM Analysis
Abstract
1. Introduction
2. Materials and Methods
2.1. Identification
2.2. Screening
2.3. Eligibility
2.4. Analysis of the Selected Articles
2.4.1. Publication Trends of the Papers Reviewed
2.4.2. Year of Publication
2.4.3. Journal and Publisher
2.4.4. Geographic Location of Experimentation
2.5. TCCM Framework Analysis
3. Results and Discussion
3.1. Earthen Blocks: Classification and Production Methods
3.1.1. Type of Soil
3.1.2. Stabilization of the Soil
3.1.3. Optimum Moisture Content
3.1.4. Types of Press Used
3.1.5. Size of the Specimens
3.1.6. Curing
3.1.7. Standards
3.1.8. Stabilizers, Binders, and Fibers Used in the Manufacturing of CSEB
| Paper Id | Reference | Stabilizer/Binder | ||
|---|---|---|---|---|
| Cement | Lime | Others | ||
| 2 | [96] | √ | Sawdust | |
| 4 | [61] | √ | ||
| 6 | [30] | √ | √ | Asphalt |
| 7 | [62] | √ | Rice Husk Ash | |
| 10 | [51] | Coal-Ash | ||
| 11 | [56] | √ | √ | |
| 13 | [38] | √ | √ | |
| 15 | [97] | √ | √ | NaOH (Sodium Hydroxide) |
| 16 | [65] | √ | ||
| 17 | [10] | √ | √ | |
| 20 | [32] | √ | ||
| 21 | [19] | Alkaline Activated Fly Ash, NaOH | ||
| 22 | [48] | √ | ||
| 23 | [98] | √ | √ | Metakaolin, GGBS |
| 25 | [99] | √ | ||
| 26 | [100] | √ | √ | Metakaolin |
| 27 | [26] | √ | ||
| 28 | [27] | √ | √ | Alumino-Silicate |
| 29 | [101] | √ | √ | |
| 30 | [102] | √ | Natural Pozzolana | |
| 31 | [103] | √ | ||
| 32 | [53] | √ | Kaolin | |
| 33 | [67] | √ | ||
| 34 | [54] | √ | ||
| 36 | [34] | √ | ||
| 39 | [15] | √ | √ | Rice Husk Ash |
| 40 | [36] | √ | √ | |
| 41 | [86] | √ | √ | Sodium Silicate |
| 42 | [93] | √ | ||
| 44 | [104] | √ | √ | Metakaolin, Plasticure |
| 45 | [40] | √ | ||
| 47 | [105] | Alkali-Activated Fly Ash | ||
| 48 | [33] | √ | ||
| 49 | [106] | √ | Silica Fume (SF), Fly Ash (FA), Ground Granulated Blast Furnace Slag (GGBS), Brick Powder (BP) And Fine Recycled Concrete Aggregate (FRCA) | |
| 50 | [39] | √ | ||
| 52 | [16] | Alkali-Activated Fly Ash | ||
| 53 | [87] | √ | √ | Enzyme |
| 54 | [37] | √ | ||
| 55 | [28] | √ | ||
| 58 | [107] | √ | √ | |
| 59 | [108] | √ | ||
| 61 | [95] | √ | √ | |
| 62 | [12] | √ | ||
| 63 | [90] | √ | Geopolymer Binder Synthesized from a mixture of Metakaolin and Sodium Hydroxide solution. | |
| 65 | [109] | √ | ||
| 66 | [110] | √ | ||
| 67 | [111] | √ | Granulated Blast Furnace Slag | |
| 68 | [112] | √ | Sawdust Lignin | |
| 71 | [113] | √ | √ | White Resin named “MEDALATEX” |
| 72 | [68] | √ | √ | Marble Cutting Waste (MCW) |
| 73 | [24] | √ | ||
| 75 | [114] | √ | Industrial Lime, Artisanal Lime | |
| 76 | [69] | Geopolymer Binder, Fly Ash (FA), Ground Granulated Blast-Furnace Slag (GGBS) | ||
| 77 | [115] | √ | ||
| 79 | [116] | √ | ||
| 80 | [117] | √ | Geogrids | |
| 82 | [84] | √ | Powdered Green Mussel Shell (GMS) | |
| 84 | [118] | √ | ||
| 85 | [119] | √ | ||
| 86 | [120] | √ | ||
| 88 | [121] | √ | Geogrid | |
| 89 | [122] | √ | ||
| 90 | [123] | Calcium Carbide Residue, Rice Husk Ash | ||
| 91 | [59] | √ | ||
| 92 | [124] | √ | √ | Coal Combustion By-Products |
| 93 | [125] | √ | √ | Recycled Aggregates |
| 94 | [126] | √ | ||
| 95 | [127] | √ | Fly Ash | |
| 96 | [128] | Fly Ash, Alkali Activator | ||
| 97 | [129] | √ | Aloe Vera Mucilage | |
| 98 | [130] | Ground Granulated Blast Furnace Slag (GGBS), Fly Ash (FA) with Alkali Activator Solution. | ||
| 100 | [131] | Phosphoric Acid | ||
| 101 | [58] | √ | √ | |
| 102 | [47] | √ | √ | |
| 103 | [132] | √ | ||
| 104 | [133] | √ | Fly Ash | |
| 105 | [134] | √ | Sand | |
| 106 | [135] | √ | Saw Dust Ash | |
| 107 | [136] | √ | ||
| 108 | [137] | √ | Sand, Used Motor Oil | |
| 109 | [138] | CCR (Calcium Carbide Residue) | ||
| 110 | [139] | √ | Biopolymer Guar Gum | |
| 111 | [49] | Calcium Carbide Residue (CCR) | ||
| 112 | [140] | √ | ||
| 114 | [141] | √ | Calcium Carbide Residue (CCR) And Rice Husk Ash (RHA) | |
| 116 | [72] | √ | Crushed Brick Waste | |
| 117 | [142] | √ | Calcium Carbide Residue (CCR) And Rice Husk Ash (RHA) | |
| 118 | [143] | √ | √ | |
| 119 | [144] | √ | ||
| 120 | [5] | √ | √ | Nopal Mucilage Aqueous Solution |
| 121 | [145] | √ | Fly Ash | |
| 122 | [146] | √ | Gum Arabic | |
| 123 | [73] | √ | Cassava Wastewater | |
| 125 | [147] | √ | ||
| 126 | [148] | √ | ||
| 127 | [149] | √ | ||
| 129 | [74] | Glass Waste, Fly Ash | ||
| 130 | [150] | √ | √ | Sodium Silicate |
| 133 | [151] | √ | ||
| 135 | [152] | Geopolymer | ||
| 136 | [153] | √ | ||
| 137 | [75] | √ | Construction Waste | |
| 138 | [44] | √ | Fly Ash | |
| 139 | [154] | √ | ||
| 143 | [155] | √ | ||
| 145 | [156] | √ | Fly Ash | |
| 147 | [76] | √ | Municipal Solid Waste Incinerator Bottom Ash (MSWIBA) | |
| 148 | [157] | √ | √ | |
| 149 | [158] | √ | ||
| 150 | [159] | √ | ||
| 152 | [160] | √ | ||
| 154 | [161] | Alkali-Activated Byproducts | ||
| 157 | [162] | √ | ||
| 160 | [163] | √ | ||
| 161 | [164] | √ | ||
| 162 | [43] | Fly Ash Binder, Sodium Hydroxide (NaOH) | ||
| 164 | [50] | √ | ||
| 166 | [41] | √ | ||
| 168 | [165] | √ | ||
| 169 | [166] | √ | ||
| 170 | [42] | Combination Of Metakaolin-based Geopolymer (MKG) and Sugarcane Molasses (SM) | ||
| 171 | [55] | √ | Phosphogypsum (PG), Calcareous Material (CM) And Red Clay (RC) | |
| 172 | [66] | √ | ||
| 173 | [78] | Glass Waste, NaOH Solution | ||
| 174 | [167] | √ | ||
| 175 | [79] | √ | Rice Husk Ash (RHA) | |
| 176 | [168] | √ | ||
| 177 | [35] | √ | √ | |
| 178 | [17] | √ | Water Hyacinth Ash | |
| 179 | [89] | Water Hyacinth Ash (WHA) And Sugarcane Bagasse Ash (SBA) | ||
| 182 | [169] | Fly Ash-Based Geopolymer, Alkaline Activator Solution | ||
| 183 | [81] | √ | Phosphate Waste Rock, Red Marls | |
| 185 | [170] | √ | ||
| 186 | [171] | √ | ||
| 187 | [172] | Silica Fume | ||
| 188 | [173] | √ | Thermoactivated Recycled Cement | |
| 190 | [63] | √ | √ | Fly Ash |
| 192 | [31] | √ | √ | Oil Shale Ash |
| 193 | [174] | √ | ||
| 194 | [175] | √ | ||
| 196 | [176] | Wood Biomass Ash | ||
| 197 | [177] | √ | Fly Ash, PVA (Polyvinyl Alcohol), Polyester | |
| 198 | [13] | √ | Granite Dust | |
| 199 | [91] | Carob Gum (CG) | ||
| 200 | [178] | √ | ||
| 201 | [92] | √ | ||
| 205 | [88] | Geopolymer synthesized in acidic and alkaline conditions | ||
| 207 | [22] | √ | ||
| 208 | [45] | √ | Rice Husk Ash (RHA) | |
| 209 | [46] | √ | Crushed Mussel Shells (CMS) | |
| 210 | [82] | Waste Concrete Powder | ||
| 211 | [64] | Municipal Solid Waste Incinerator Bottom Ash (MSWIBA) | ||
| 214 | [179] | √ | ||
| 216 | [180] | √ | Recycled Cement Paste (RCP) and Concrete (RCC) Waste | |
| 217 | [181] | √ | √ | Fly Ash |
| 218 | [182] | Portland Composite Cement (CPJ) | ||
| 220 | [183] | √ | √ | Xanthan Gum and Animal Glue |
| 225 | [184] | √ | ||
| 226 | [185] | Thermoactivated Recycled Cement (RCP) | ||
| 227 | [186] | √ | Civic Garbage Torched Bottom Ash | |
| 228 | [187] | √ | ||
| 230 | [188] | Marble Dust (MD), Sugarcane Bagasse Ash (SBA) | ||
| 231 | [189] | √ | ||
| 234 | [190] | √ | √ | Metakaolin, Ground Granulated Blast-Furnace Slag |
| 235 | [191] | √ | ||
| 236 | [192] | √ | ||
| 237 | [193] | √ | Phosphate Waste Rock (PWR) and Phosphate Washing Sludge | |
| 238 | [194] | √ | Grewia Bicolor Bark Powder (GBBP) | |
| 239 | [195] | √ | ||
| 241 | [196] | √ | Cement Kiln Dust (CKD) activated with Ground Granulated Blast-Furnace Slag (GGBS) | |
| 244 | [197] | √ | ||
| 245 | [198] | √ | ||
| 247 | [199] | √ | ||
| 249 | [200] | √ | Recycled Cement Paste (RCP) | |
| 251 | [201] | √ | Low-Carbon thermoactivated Recycled Cement (RC) | |
| 252 | [202] | √ | √ | Asphalt Emulsion |
| 255 | [203] | Sugarcane Bagasse (SCB) and Molasses (SCM) | ||
| 256 | [204] | √ | ||
| Paper Id | Reference | Fiber |
|---|---|---|
| 10 | [51] | Cassava Peels |
| 16 | [65] | Date Palm Fibers |
| 25 | [99] | Cork Aggregates |
| 27 | [26] | Waste-Plastic Fibers |
| 42 | [93] | Polypropylene Fibers |
| 45 | [40] | Date Palm Fibers (Untreated And Alkali-Treated) |
| 66 | [110] | Coir, Abaca, Maguey Fibers |
| 69 | [94] | Polyethylene Terephthalate (PET) Fibers, Polypropylene (PP) Sack Fibers |
| 73 | [24] | Straw |
| 76 | [69] | Coir Fibers |
| 78 | [205] | Polypropylene (PP) Sack Fibers |
| 82 | [84] | Pig Hair Fibers |
| 87 | [70] | Shredded Waste Plastic |
| 97 | [129] | Coconut Fibers |
| 115 | [206] | Jute Fiber |
| 125 | [147] | Unchopped Barley Straw |
| 133 | [151] | Straw |
| 143 | [155] | Doum Palm Fibers |
| 152 | [160] | Bagasse Fibers |
| 157 | [162] | Doum Palm Fibers |
| 160 | [163] | Bamboo Fibers |
| 172 | [66] | Coir Fibre, Bamboo Splints, or Steel Bars |
| 186 | [171] | EPS Beads |
| 190 | [63] | Coconut, Straw, Synthetic |
| 197 | [177] | Kenaf |
| 198 | [13] | Quackgrass Straw |
| 201 | [93] | Coir Fiber |
| 207 | [22] | Date Palm Midribs (DPLM) |
| 215 | [179] | Rice Husk Fiber |
| 218 | [182] | Corn Straw |
| 225 | [184] | Juncus Fibers (JF) |
| 227 | [186] | Sisal Fiber |
| 228 | [187] | Palm and Glass Fibers |
| 230 | [188] | Paddy Straw Fiber (PSF) |
| 231 | [189] | Sisal and Barley Straw, and Cork Aggregates |
| 244 | [197] | Alfa Fibers |
| 256 | [204] | Coir |
3.2. Types of Tests Conducted
3.2.1. Physical and Thermal Characteristics of CSEBs
Bulk Density
Water Absorption
Thermal Conductivity
3.2.2. Mechanical Properties of CSEBs
Compressive Strength (CS) Test
Flexural Strength Test
Split Tensile Test
3.2.3. Durability and Seismic Properties of CSEBs
Seismic
Erosion Test
Cyclic Wetting and Drying Test
Freeze–Thaw Performance
3.3. TCCM Analysis
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| CSEB | Compressed Stabilized Earth Blocks/Bricks |
| C&D | Construction and Demolition |
| PRISMA | Preferred Reporting Items for Systematic Reviews and Meta-Analyses |
| TCCM | Theories, Contexts, Characteristics, and Methodologies |
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| Database | keywords Used | Included | Excluded |
|---|---|---|---|
| Scopus | (ALL (compressed AND stabilised OR stabilized) AND ALL (earth OR soil AND blocks OR bricks)) AND (LIMIT-TO (PUBSTAGE, “final”)) AND (LIMIT-TO (DOCTYPE, “ar”)) AND (LIMIT-TO (SUBJAREA, “ENER”) OR LIMIT-TO (SUBJAREA, “ENGI”) OR LIMIT-TO (SUBJAREA, “MATE”) OR LIMIT-TO (SUBJAREA, “ENVI”)) AND (LIMIT-TO (LANGUAGE, “English”)) | Journal articles 2000–2024 Full-text Available English Language | Conference paper 66 Book chapter 24 Review 7 Conference review 3 Book 1 Erratum 1 Other language 2 Full-text unavailable |
| Code/Standard | Country/Scope | Minimum Compressive Strength Requirement | Water Absorption Requirement |
|---|---|---|---|
| IS 1725 (Stabilized Soil Blocks) | India | 3.5 MPa minimum average compressive strength | ≤18% (24 h immersion, by weight) |
| ABNT NBR 8491 (Soil–Cement Bricks) | Brazil | ≥2.0 MPa average (with individual minimum also specified in the same reference) | ≤20% average (with individual max also specified) |
| SLS 1382 Part 1 (CSEB specification) | Sri Lanka | Dry compressive strength (Grades): G1 ≥ 6.0 MPa, G2 ≥ 4.0 MPa, G3 ≥ 2.8 MPa | Total water absorption < 15% |
| NMAC 14.7.4 (Earthen Building Materials Code—CEB) | New Mexico (USA) | ≥300 psi (≈2.07 MPa) minimum compressive strength for cured units | Not specified as a % limit (code instead defines “wet strength” concept for stabilized vs. unstabilized and references ASTM D1633 wet strength approach in definitions) |
| NZS 4298:1998 (Materials And Workmanship For Earth Buildings) | New Zealand | Does not give a single “minimum MPa” like IS 1725; it sets testing + grading/quality control approaches | No “water absorption %” limit found; durability is assessed via wet/dry appraisal and erosion tests |
| UNE 41410 (Compressed Earth Blocks) | Spain | Strength is declared by the manufacturer by class; requirements are class-based | Water absorption is not typically set as a single 24 h % limit (often uses capillary/durability tests) |
| ASTM E2392M-10 (Guide) | USA | Guide (not a prescriptive product standard) | Not specified |
| Theoretical Lens ↓/TCCM Dimension → | Context | Characteristics | Methodological Orientation | Analysis |
|---|---|---|---|---|
| Sustainable Material Science |
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| Circular Economy Frameworks |
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| Soil Mechanics and Structural Engineering |
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| Life Cycle Assessment Models |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Sinha, S.; Sudarsan, J.S.; Abhyankar, A.A. Compressed Stabilized Earth Blocks for Sustainable Building Construction: A PRISMA-Guided Systematic Review and TCCM Analysis. Buildings 2026, 16, 1633. https://doi.org/10.3390/buildings16081633
Sinha S, Sudarsan JS, Abhyankar AA. Compressed Stabilized Earth Blocks for Sustainable Building Construction: A PRISMA-Guided Systematic Review and TCCM Analysis. Buildings. 2026; 16(8):1633. https://doi.org/10.3390/buildings16081633
Chicago/Turabian StyleSinha, Swati, Jayaraman Sethuraman Sudarsan, and Abhijat Arun Abhyankar. 2026. "Compressed Stabilized Earth Blocks for Sustainable Building Construction: A PRISMA-Guided Systematic Review and TCCM Analysis" Buildings 16, no. 8: 1633. https://doi.org/10.3390/buildings16081633
APA StyleSinha, S., Sudarsan, J. S., & Abhyankar, A. A. (2026). Compressed Stabilized Earth Blocks for Sustainable Building Construction: A PRISMA-Guided Systematic Review and TCCM Analysis. Buildings, 16(8), 1633. https://doi.org/10.3390/buildings16081633

