Sustainable Growing Media Blends with Woody Green Composts: Optimizing the N Release with Organic Fertilizers and Interaction with Microbial Biomass
Abstract
:1. Introduction
1.1. New Materials in Growing Media Blends
1.2. The Microbiome of Growing Media
1.3. Interaction between Growing Media and Organic Fertilizers
1.4. Aim
2. Materials and Methods
2.1. Characterization of Materials and Blends
2.2. Microbial Biomass and Activity and Net N Release of Composts versus Wood Fiber and Bark
2.3. Net N Release from Composts Blended with Blood Meal
2.4. Effect of Blend and Organic Fertilizer on N Release
3. Results
3.1. Step 1: Microbial Biomass and Activity and Net N Release of Composts versus Wood Fiber and Bark
3.2. Step 2: Net N Release from Composts Blended with Blood Meal
3.3. Step 3: Effect of Blend and Organic Fertilizer on N Release
3.3.1. Characteristics of the Materials and the Blends
3.3.2. Total Mineral N Concentrations and Microbial Biomass
3.3.3. Plant Trial with Cucumber: Seed Emergence
4. Discussion
- -
- What is the N release of composts selected for a better fit for use in growing media, both for the composts with or without added organic fertilizers?
- -
- Can the blend with woody compost be optimized with organic fertilizers to increase the mineral N availability? What is the interaction between N release and microbial biomass?
4.1. Compost: Role as Bulk Material vs. Role as Organic Fertilizer
4.2. Organic Fertilizers: N Release and Microbial Activity
4.3. N Release versus Blend Composition: How to Provide Sufficient N?
4.4. Total Microbial Biomass: Value as Indicator and Link with N Release
4.5. Implications for Use of the Growing Media Blends with Woody Composts
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Category | n | IC | pH-H2O | EC | Nmin | Nimmob | P-AmAc | K-AmAc | OM | Dry Bulk Density | OUR | C/N | Total Biomass |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
%/DM | - | µS/cm | mg N/L Compost | % | mg/L Compost | %/DM | g DM/L Compost | mmol O2/kg OM/hr | - | nmol/g OM | |||
VFG compost | 3 | 0.4 (c) | 8.4 (bc) | 2240 (b) | 560 (b) | −19 | 621 (b) | 3287 (b) | 39 (a) | 287 (c) | 5.0 (ab) | 9 (a) | 1461 (c) |
Green compost | 6 | 0.31 (bc) | 8.4 (c) | 1185 (b) | 128 (ab) | −4 | 367 (b) | 3304 (b) | 38 (a) | 285 (c) | 4.2 (ab) | 12 (a) | 992 (c) |
Woody compost | 5 | 0.24 (abc) | 8.4 (c) | 708 (b) | 37 (a) | 9 | 234 (b) | 1847 (b) | 42 (a) | 261 (c) | 4.9 (b) | 19 (a) | 898 (bc) |
Bark compost | 5 | 0.08 (a) | 6.4 (a) | 150 (a) | 13 (a) | 20 | 37 (a) | 457 (a) | 86 (b) | 143 (b) | 4.1 (ab) | 75 (b) | 341 (b) |
Wood fiber | 4 | 0.13 (ab) | 7.0 (ab) | 39 (a) | 10 (a) | −4 | 9 (a) | 35 (a) | 99 (b) | 50 (a) | 1.1 (a) | 436 (c) | 77 (a) |
Category | Score | Net N Release | Nmin | IC | pH-H2O | EC | Nimmob | P-AmAc | K-AmAc | OM | Dry Bulk Density | OUR | C/N | Total Biomass |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
mg N/L Compost | %/DM | - | µS/cm | % | mg/L Compost | %/DM | g DM/L | mmol O2/kg OM/hr | - | nmol/g OM | ||||
Composts | ||||||||||||||
VFG compost 1 | 5 | 229 | 1069 | 0.50 | 8.5 | 3030 | 36 | 708 | 3031 | 38 | 341 | 7.2 | 9.7 | 1527 |
VFG compost 2 | 6 | 124 | 364 | 0.35 | 8.5 | 2200 | −58 | 600 | 4017 | 33 | 297 | 2.4 | 8.6 | 1013 |
VFG compost 3 | 9 | 59 | 247 | 0.34 | 8.3 | 1490 | −34 | 554 | 2812 | 45 | 223 | 5.4 | 9.8 | 1843 |
Green compost 1 | 5 | 209 | 233 | 0.50 | 8.9 | 1558 | 44 | 538 | 5048 | 41 | 334 | 4.8 | 11 | 411 |
Green compost 2 | 7 | 12 | 204 | 0.44 | 7.9 | 1273 | −3 | 355 | 3618 | 31 | 381 | 3.1 | 11 | 616 |
Green compost 3 | 8 | <5 | <5 | 0.16 | 7.5 | 361 | 21 | 49 | 901 | 37 | 266 | 2.8 | 17 | 1525 |
Green compost 4 | 8 | 380 | 231 | 0.31 | 8.3 | 1721 | −28 | 339 | 4141 | 39 | 237 | 3.0 | 10 | 986 |
Green compost 5 | 9 | 37 | 85 | 0.29 | 8.1 | 894 | −38 | 586 | 2658 | 50 | 190 | 2.2 | 12 | 1194 |
Green compost 6 | 10 | −19 | <5 | <0.1 | 8.7 | 810 | −5 | 127 | 1861 | 40 | 236 | 5.9 | 15 | 1216 |
Woody compost 1 | 9 | <5 | <5 | <0.1 | 7.6 | 343 | 13 | 69 | 1138 | 46 | 261 | 6.8 | 29 | 214 |
Woody compost 2 | 9 | −20 | 31 | 0.24 | 8.4 | 697 | 12 | 268 | 2147 | 41 | 291 | 1.9 | 18 | 890 |
Woody compost 3 | 9 | 25 | 40 | 0.37 | 8.8 | 1051 | 8 | 318 | 1697 | 47 | 208 | 6.4 | 16 | 1123 |
Woody compost 4 | 10 | 17 | 20 | 0.35 | 8.6 | 939 | 13 | 259 | 2817 | 42 | 213 | 7.1 | 16 | 1248 |
Woody compost 5 | 10 | 50 | 83 | 0.16 | 8.6 | 511 | 0 | 259 | 1439 | 33 | 332 | 2.3 | 17 | 1015 |
Compost from SGM | 13 | 40 | 401 | < 0.1 | 6.9 | 1253 | 10 | 34 | 84 | 82 | 101 | 1.2 | 24 | 295 |
Other materials used in the growing media blends | ||||||||||||||
Bark compost | 14 | 3 | 23 | <0.1 | 6.3 | 94 | −27 | 19 | 373 | 87 | 145 | 2.5 | 56 | 238 |
Wood fiber | 9 | NA | <5 | <0.1 | 7.5 | 33 | −7 | <4 | <23 | 99 | 36 | 0.8 | 624 | 71 |
M1 | M2 | M3 | M4 | M5 | M0 | |
---|---|---|---|---|---|---|
Composition | ||||||
Woody compost 1 (vol%) | 40 | 40 | ||||
Woody compost 2 (vol%) | 40 | 40 | ||||
Black peat (vol%) | 15 | 15 | 15 | 50 | ||
White peat (vol%) | 15 | 15 | 15 | 50 | ||
Bark compost (vol%) | 30 | 30 | 30 | 30 | 30 | |
Wood Fiber (vol%) | 30 | 30 | 20 | |||
Coir fiber (vol%) | 20 | |||||
Lime (g/L) | 0 | 0 | 0 | 0 | 0 | 1.4 |
Elemental S (g/L) | 0 | 0 | 0.5 | 1.0 | 0 | 0 |
Initial mineral N | ||||||
Without fertilizer | 11 | 59 | 10 | 18 | 25 | <5 |
Total mineral N after 50 day incubation at 15 °C (n = 3) | ||||||
Blood meal (3.5 g/L) | 11 (a) | 40 (b) | 10 (a) | 11 (a) | 15 (a) | 30 (b) |
Chitin (2 g/L) | 29 (B) | 92 (D) | 9 (A) | 64 (C) | 21 (B) | 26 (B) |
Total mineral N after 100 day incubation at 15 °C (n = 3) | ||||||
Blood meal (3.5 g/L) | 9 (a) | 57 (c) | 9 (a) | 10 (a) | 32 (b) | 95 (d) |
Chitin (2 g/L) | 27 (B) | 119 (D) | 8 (A) | 96 (C) | 26 (B) | 43 (B) |
Total mineral N after 250 day incubation at 15 °C (n = 1) | ||||||
Chitin (2 g/L) | 42 | 170 | 7 | 142 | 41 | 106 |
Microbial biomass (nmol/g OM) (n = 1) | ||||||
Without fertilizer | 265 | 346 | 457 | 574 | 228 | 150 |
Blood meal (3.5 g/L) | 452 | 457 | 639 | 907 | 357 | 149 |
Chitin (2 g/L) | 374 | 305 | 699 | 439 | 363 | 140 |
M1 | M2 | M3 | M4 | M5 | ||
---|---|---|---|---|---|---|
pH-H2O | - | 6.7 | 6.5 | 7.4 | 7.3 | 5.5 |
EC | µS/cm | 174 | 380 | 225 | 403 | 95 |
Mineral N | mg/L substrate | <10 | 25 | <10 | <10 | 20 |
P-AmAc | 35 | 126 | 47 | 156 | <14 | |
K-AmAc | 578 | 1064 | 701 | 1256 | 158 | |
Dry bulk density | g/L dry substrate | 227 | 237 | 203 | 226 | NA |
Total pore volume | volume% | 88 | 87 | 89 | 88 | NA |
Air volume −10 cm | 16 | 17 | 39 | 34 | NA | |
Air volume −50 cm | 44 | 47 | 57 | 55 | NA | |
Air volume −100 cm | 50 | 52 | 61 | 59 | NA | |
Water volume −10 cm | 71 | 70 | 50 | 54 | NA | |
Water volume −50 cm | 43 | 41 | 32 | 33 | NA | |
Water volume −100 cm | 38 | 35 | 28 | 30 | NA | |
Easily available water | 28 | 29 | 19 | 21 | NA | |
Organic matter | %/DM | 61 | 60 | 63 | 57 | 90 |
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Vandecasteele, B.; Van Loo, K.; Ommeslag, S.; Vierendeels, S.; Rooseleer, M.; Vandaele, E. Sustainable Growing Media Blends with Woody Green Composts: Optimizing the N Release with Organic Fertilizers and Interaction with Microbial Biomass. Agronomy 2022, 12, 422. https://doi.org/10.3390/agronomy12020422
Vandecasteele B, Van Loo K, Ommeslag S, Vierendeels S, Rooseleer M, Vandaele E. Sustainable Growing Media Blends with Woody Green Composts: Optimizing the N Release with Organic Fertilizers and Interaction with Microbial Biomass. Agronomy. 2022; 12(2):422. https://doi.org/10.3390/agronomy12020422
Chicago/Turabian StyleVandecasteele, Bart, Koen Van Loo, Sarah Ommeslag, Siebert Vierendeels, Maxim Rooseleer, and Elke Vandaele. 2022. "Sustainable Growing Media Blends with Woody Green Composts: Optimizing the N Release with Organic Fertilizers and Interaction with Microbial Biomass" Agronomy 12, no. 2: 422. https://doi.org/10.3390/agronomy12020422