Maataloustieteellinen A ikakauskirja Vol. 56: 245—254, 1984 Comparison of and correlation between the characteristics of agricultural topsoil and subsoil at the southern coast of Finland RAILI JOKINEN University of Helsinki, Department of Agricultural Chemistry, SF-00710 HELSINKI, Finland Abstract: Topsoil and subsoil samples were taken at 382 sites from the agricultural area of Viikki Experimental Farm, University of Helsinki. The samples were determinated for particle size distribution, pH(CaCI2), organic C %, at pH 7 exchangeable Ca, Mg and K, effective cation exchange capacity (ECEC), exchange acidity (AI + H) and plant available (Bray 1) P. The differences between topsoil and subsoil were studied taking into consideration the fertilization and liming during the past ten years before sampling. The correlations between soil characteristics were also studied. The clay (< 2 /un) and silt (2 —20 fim) contents, exchangeable Mg and exchange acidity were lower in the topsoil than in the subsoil; as for the remaining characteristics, the values for topsoil were higher than those for subsoil. The subsoil seemed to be more heterogenic than the topsoil. There was a closer correlation between exchangeableCa, Mg and K and the clay content in the subsoil than in the topsoil. In Litorina soils, there was a weak correlation between exchangeable cations and clay. It is more difficult to predict the cation contents on the basis of soil particle size distribution in soils cropped intensively, since fertilization and liming have changed the original contents. Vertical movement of applied Ca occurred slightly, possibly because the topsoils were rich in organic C. There was some correlation between organic C and exchangeable Mg or K, indicating a minor effect of organic matter on the leaching of these cations. The plant available P content of the subsoil was about 10 % of that of the topsoil irrespective of the amount of P applied. Clay and organic C contents were the main constituents of effective cation exchange capacity in the topsoil; in the subsoil the significance of clay was greatest. Introduction Lakanen and Hyvärinen (1971) and Urvas et al. (1978) observed close correlations in the subsoil between particle size distribution and some properties indicating soil fertility. An increase in the clay content seemed to increase the pH(H20) and acid ammonium acetate extractable Ca and K, and to de- crease the P content. According to the above studies, the requirement for supply of Ca, K Index words: topsoil, subsoil, clay, silt, organic C, exchangeable Ca, Mg, K, exchange acidity, effective CEO, Bray 1 P, fertilization, liming 245 JOURNAL OF AGRICULTURAL SCIENCE IN FINLAND https://www.c-info.fi/en/info/?token=cKhZofqkC5EeRBv-.vXE_XYZEFo8icqYWXxxhIw.zfoDcmywAsIPgc9NubWHF6Y3D8zf4P0RufcRwuBKN07K4y-gHUatRGidoQauOfFutiHH_eL0DiTArMij62V01xJmFftwzuZ2SfTvpwMGI41j-V3PIZB9BF5Qu5CFVM99Hj9Z6DOQA5Y4LF_OIZf8S5YCiFxDHeQANj_4 and P should be determined on the basis of the particle size distribution, at least in some degree. The subsoil is, however, only seldom analysed for soil fertility. The majority of plants cultivated in Fin- land have a relatively shallow root system (Salonen 1949, Kähäri and Elonen 1969). Also the acidity of subsoil may restrict the growth of roots'. The nutrients of the topsoil are therefore taken up by plants more in- tensively than those of the subsoil. In case of shortage of nutrients in the topsoil the resources of subsoil may be of importance to the plants. On farms where the agricultural soils have been fertilized intensively over a long period, some nutrients applied may have a tendency to be enriched in the subsoil. The effects of fertilization on the nutrient content of the subsoil are difficult to study, because they require special arrangements. The results of leaching experiments carried out in fields and in laboratory indicate the movement of basic cations (Wiklander 1970, Harti- kainen 1978 a) to be greater than that of phosphorus (Hartikainen 1978 b). The aim of this study was to elucidate the differences between topsoil and subsoil in some characteristics indicating agricultural productivity of soil. The results were com- pared with the fertilization and liming done during the past ten years before sampling. The correlations between soil properties were studied both for topsoil and subsoil. Materials and methods The soil samples of this study were col- lected from the agricultural area of Viikki Experimental Farm, University of Helsinki. The method of systematic sampling has been reported previously by Jokinen (1983). The present material consisted of topsoil (0—25 cm) and subsoil (30 —50 cm) samples from 382 sampling sites. The methods of soil analyses for de- termination of particle size distribution, pH(Cad2), organic C%,at pH 7 exchange- able Ca, Mg and K, effective cation exchange capacity (ECEC), exchange acidity (A 1 + H) and plant available (Bray 1) P were the same as those applied in the first part of this study (Jokinen 1983). The data on fertilization and liming are listed on the basis of records made at Viikki Experimental Farm (Table 1). The area of field 54 is about 17 hectares. Two or three agricultural plants were grown in this field every year, and different types and amounts Table 1. Amounts of P, K and Mg (kg/ha) applied in fertilizers, manures and limestone during the past ten years before soil sampling. Field Area Sampling P K Mg number hectares year kg/ha 49 7.27 1979 285 735 60 54 17.18 1979 740 1540 840 86 7.37 1980 610 1040 110 88 5.22 1980 610 1040 110 89 5.28 1980 320 510 650 96 10.29 1980 340 605 155 97 3.60 1980 400 765 303.60 1980 400 765 30 98 5.82 1980 370 985 30 Table 2. Classification of topsoil and subsoil materials according to clay (< 2 ym) %, organic C % and pH(CaCl 2) (in both materials n = 382), Number of soil samples SubsoilsTopsoils Clay (< 2 nm), % <3O 181 105 30—60 197 197 >6O 4 80 Organic C, % £ 1.6 207 1.7 3.4 108 129 3.5 6.9 179 45 7.0—11.5 91 1 11.6—23.2 4 pHfCaCIJ £4.4 14 154 4.55.4 209 93 5.56.4 144 135 3 6.5 15 246 of fertilization were applied to each plant. The total amounts of nutrients applied per hectare during the past ten years are the sums of weighed means calculated yearly. The nutrient contents of cattle manure and liquid pig manure have not been analyzed, and the total amounts of P, K and Mg applied therein are estimated according to the mean contents presented by Keränen (1966) and Kähäri (1974). In 1975 (field 54) and 1979 (field 89), liming was performed with dolomitic lime- stone (7—10 ®7o Mg) and in 1971 (field 89 and 97) with calcitic limestone. Mean (x), standard deviation (sd) and co- efficient of variation (cv) were estimated for the topsoil and subsoil samples separately. The significances of the differences between topsoil and subsoil were analyzed by t-test. The linear correlation between soil charac- teristics were also calculated for these two soil layers (Steel and Torrie 1960). The subsoil material included 120 samples originating from the period of the Litorina Sea, and the respective topsoil was also clas- sified in this group. Topsoil and subsoil anal- yses were applied both to Litorina and non- Litorina soils. Results Characteristics of soil layers The topsoil and subsoil materials were classified into three groups according to clay (< 2 /xm) content, into five groups according to organic C % and into four groups ac- cording to pH(Ca€l 2 ) (Table 2). Clay soils (30 —60 % clay) accounted equally commonly in the topsoil and subsoil materials. Heavy clays (> 60 °7o clay) existed mainly in the subsoil and the number of non-clay samples (< 30 % clay) was higher in the topsoil than in the subsoil. The subsoil material included more samples in the groups of lower organic C % and pH(Ca€l2) than did the topsoil material. The number of organic soils (org. C 11.6—23.2 %) was low, thereby both ma- terials consisted mainly of mineral soils. Comparison of the two soil layers showed that most parameters measured were higher in the topsoil than in the subsoil (Table 3). The exchangeable Mg and exchange acidity formed an exception with higher values in the subsoil. The difference between topsoil and subsoil was significant for each of the parameters studied. Table 3. Soil properties of topsoils and subsoils (mean, standard deviation, range, coefficient of variation). Soil properties Topsoils Subsoils Mean Sd Range CV, % Mean Sd Range CV, % Particle size, % <2 iim 30.5 13.3 6—65 44 41.9 20.5 2—87 49 2—20 pm 17.4 8.4 3—43 48 19.4 9.5 2—59 49 20—200 pm 48.0 18.2 17—90 38 37.0 23.9 4—93 65 Org. C, % 5.5 3.5 1.8—14.6 64 1.9 1.3 0.2—7.2 68 pH(CaCl 2) 5.3 0.6 4.2—6.8 11 4.9 0.8 3.5—6.3 16 Exchangeable (pH 7) Ca mg/kg soil 2374 817 750—5845 34 1320 697 202—3553 53 Mg » » 190 143 36—952 75 259 297 9—1526 115 K » » 291 139 53—1440 48 240 119 29—1154 50 Effective CEC me/kg soil 132.1 39.1 43—288 30 111.7 47.8 13—237 43 Exchange acidity (AI + H) me/kg soil 8.3 9.6 1.0—47.6 116 29.6 33.8 1.2—117.8 114 Plant available (Bray 1) P mg/kg 114 64 5—355 56 13 16 1—99 81 247 Table 4. Characteristics of topsoil (a) and subsoil (b) in individual fields (mean ± standard deviation). Field number 54 86 88 89 96 97 98 Particle size, % < 2 g m a 20 ± 10 21 ±ll 36 ± 15 28 ± 11 39 ± 8 42 ± 5 33 ± 10 33 ± 11 b 24 ± 22 36 ± 21 50 ±2l 44 ± 19 62 ± 8 53 ± 10 29 ±l2 39 ± 18 2-20 A m a 11 ± 5 12 ± 4 13 ± 4 13 ± 4 16 ± 3 27 ± 3 27 ± 9 27 ± 6 b 10 * 8 16 ± 8 18 ± 10 17 ± 7 21 ± 2 26 ± 5 26 ± 9 27 ± 8 20 200 /rm a 63 ± 11 63 ± 14 47 ± 16 56 ± 15 41 ± 9 28 ± 5 36 ± 16 36 ± 12 b 64 ± 25 47 ± 25 31 ± 19 37 ± 24 17 ± 9 20 ± 7 42 ± 16 32 ± 16 Org. C, % a 4.5 ± 2.8 4.6 ± 1.9 3.6 ± 0.6 4.5 ± 1.7 8.2 ± 1.8 7.0 ± 1.3 6.1 ± 2.0 4.1 ± 1.6 b 0.8 ± 0.9 0.9 ± 0.5 1.4 ± 0.6 1.9 ± 1.2 3.4 ± 0.6 3.4 ± 0.8 2.3 ± 1.4 2.0 ± 1.3 pH(CaCy a 6.0 ± 0.6 5.6 ± 0.5 5.6 ± 0.3 4.9 ± 0.4 5.0 ± 0.3 5.1 ± 0.5 4.6 ± 0.3 5.3 ± 0.5 b 5.4 ± 0.6 5.1 ± 0.7 5.8 ± 0.3 4.7 ± 0.8 4.0 ± 0.4 4.1 ± 0.4 4.3 ± 0.5 5.1 ± 0.7 Exchangeable (pH 7) Ca mg/kg a 2757 ± 862 2227 ± 557 2312 ± 658 1610 ± 337 2760 ± 439 3198 ± 779 1592 ± 285 1941 ± 436 b 1075 ± 818 1345 ± 631 2034 ± 712 1031 ± 441 1130 ± 529 1369 ± 621 744 ± 330 1405 ± 544 Mg mg/kg a 204 ± 119 199 ± 169 364 ± 211 124 ± 52 145 ± 36 144 ± 60 94 ± 50 172 ± 103 b 253 ± 304 312 ± 324 617 ± 336 239 ± 218 89 ± 47 96 ± 50 66 ± 80 268 ± 283 K m« /k 8 a 198 ± 127 304 ± 164 356 ± 109 234 ± 71 246 ± 158 276 ± 73 357 ± 139 355 ± 139 b 143 ± 110 241 ± 131 292 ± 108 226 ± 91 293 ± 168 249 ± 55 193 ± 91 259 ± 111 ECEC me/kg a 134.4 ± 40.9 116.8 ± 30.0 140.4 ± 42.6 98.0 ± 22.2 151.8 ± 21.1 173.5 ± 30.5 105.7 ± 18.8 113.5 ± 22.8 b 79.8 ± 59.8 97.6 ± 49.9 145.1 ± 52.9 103.1 ± 35.0 129.1 ± 14.8 139.4 ± 18.6 83.4 ± 27.9 106.4 ± 43^4 (AI + H) me/kg a 2.9 ± 4.1 4.1 ± 2.8 3.0 ± 0.8 14.4 ± 10.9 9.9 ± 6.0 10.8 ± 7.6 25.1 ± 15.6 9.3 ± 10.7 b 5.6 ± 10.6 9.3 ± 10.3 3.1 ± 1.8 37.0 ± 36.0 71.6 ± 27.4 68.8 ± 27.1 44.9 ± 27.4 20.4 ± 25.7 P mg/kg a 82 ± 49 171 ± 66 131 ± 54 109 ±36 114 ± 33 55 ± 28 128 ± 45 100 ± 43 < Bra y b 9 ± 13 112 ± 80 21 ± 31 10 ± 8 10 ± 6 10 ± 8 19 ±l5 19 ± 22 248 The coefficients of variation were higher in the subsoil material than in the topsoil. Thus, the subsoil seemed to be somewhat more heterogenic. Also the ranges were the widest in the subsoil, with the exceptions of organic C %, exchangeable Ca and K. Considerably higher contents of exchange- able Ca were observed in the topsoil than in the subsoil in fields limed, but also in fields not limed during the past ten years before sampling (Table 4). The values of pH(CaCl 2 ) and exchange acidity were in accordance with the exchangeable Ca contents. The vertical movement of Ca seemed to be insignificant in these soils. Despite liming with dolomitic limestone the mean content of exchangeable Mg was lower in the topsoil than in the subsoil (Ta- ble 3). The highest total amount of Mg ap- plied in limestone and manures during the past ten years was 840 kg/ha (field 54) and the lowest amount 30 kg/ha (field 98). The exchangeable Mg contents of topsoil and subsoil in these fields were 199 ± 169 mg/kg and 312 ± 324 mg/kg (54), 172 ± 103 mg/kg and 268 ± 283 mg/kg (98) on average, re- spectively (Table 4). In Litorina soils, the exchangeable Mg content of the topsoil was somewhat higher than that of the subsoil (fields 89, 96, 97). In fields 89 and 96, the ex- changeable Mg contents of the topsoil were nearly the same, and also close to those of the subsoil. However, the amounts of ap- plied Mg were 650 kg/ha and 155 kg/ha in respective fields. The mean content of exchangeable K of the topsoil was higher than that of the subsoil in the whole material, as well as in individual fields, despite the increased clay content in the subsoil. Applied K may affect more the exchangeable K of the topsoil than that of the subsoil when annual crops are grown. In Table 5. Characteristics of topsoil and subsoil in Litorina and non-Litorina soils (mean, standard deviation, range). Topsoil Subsoil Mean Sd Range Mean Sd Range Litorina soils (n = 120) Particles <2 gm, % 39.4 7.5 13.5—49.9 50.5 14.5 7.3—75.0 Org. C, % 7.2 1.8 2.5—11.7 3.2 1.0 0.5—7.2 pH(CaCl 2 ) 5.0 0.4 4.2—6.5 4.1 0.4 3.6—5.8 Exchangeable (pH 7) Ca mg/kg 2777 874 1136—4780 1188 599 293—3414 Mg mg/kg 134 56 45—357 89 57 21—394 K mg/kg 284 119 114—970 249 107 69—1154 Effective CEC me/kg 154.9 36.7 69.5—250.4 126.0 29.0 19.8—184.2 Exchange acidity me/kg 13.3 11.0 2.3—47.6 65.0 28.8 3.3—117.8 Non-Litorina soils (n = 262) Particles <2 gm, % 26.5 13.4 5.6—65.1 38.1 21.7 1.9—87.2 Org. C, % 4.4 2.0 1.8—14.6 1.3 1.0 0.2—5.6 pH(CaCl 2 ) 5.5 0.6 4.2—6.8 5.2 0.7 3.5—6.3 Exchangeable (pH 7) Ca mg/kg 2222 692 1610—5845 1379 731 202—3553 Mg mg/kg 215 162 36—952 336 33 9—1333 K mg/kg 294 147 53—1440 234 121 29—795 Effective CEC me/kg 122.0 35.9 43.4—287.5 105.2 53.0 13.4—237.1 Exchange acidity me/kg 6.1 8.1 1.0—39.7 13.8 21.8 1.2—98.2 249 the topsoil of field 89, the organic C % was high, in the subsoil, the clay content was high. Perennial ley was grown in this field, and the uptake of K possibly exceeded the K supply, resulting in the low exchangeable K content of topsoil. The plant available (Bray 1) P of the sub- soil was about 10 o/o of that of the topsoil. Sugar beet was grown in field 54, and it was fertilized with high amounts of P. The dif- ference between the P content in the topsoil (171 ± 66 mg/kg) and subsoil (112 ± 80 mg/kg) was smaller in this field than in any other field. In fields 86 and 88, on the other hand, the amounts of plant available P of the soil layers deviated from the above, as was the case in other fields in spite of the high amount of P applied. In general, the ECEC was significantly higher in the topsoil than in the subsoil. The fields 86 and 88 were exceptional with almost equal ECEC’s in both soil layers. The 120 Litorina soil samples deviated from the rest. The high content of exchange acidity and low content of exchangeable Mg in the subsoil were characteristic features of the Litorina soils (Table 5). Both layers ex- hibited higher clay and organic C contents than those of non-Litorina soils; consequent- ly the ECEC, too, was higher. The propor- tion of (AI + H) in the ECEC was low in the non-Litorina soils (topsoil 5 %, subsoil 13 %) and in the top layer of Litorina soils (9 %). In the Litorina subsoil the respective value was very high (52 %). Correlation between soil characteristics The ECEC was less dependent on the clay content in the topsoil than in the subsoil (Table 6). Its dependence on organic C °7o seemed to be nearly the same in both layers. These two soil properties exerted the highest positive effects on the ECEC. Because of the low content of organic C in the subsoil, the significance of clay for the ECEC was great. With increasing amount of fine sand (20—60 /urn) the ECEC decreased, whereas the silt fraction (2—20 /tm) had a positive, but minor effect on the ECEC. The dependence between clay content and the exchangeable cations Ca and K seemed to be somewhat weaker in the topsoil than in the subsoil. Exchangeable Mg showed an equal correlation with clay in both soil layers. There was a positive correlation between the silt content and exchangeable Ca or K and a negative correlation between silt content and exchangeable Mg. All in all, the correlations were poor. The same applied to the effects of fine sand fraction on the exchangeable ca- tions. The increasing content of fine silt (2—6 nm) increased the exchangeable K slightly (topsoil r = 0.22**, subsoil r = Table 6. Correlation coefficients (r) between some properties in topsoil and subsoil. Clay, % Silt, % Organic C, % Exchangeable (pH 7) Topsoils Ca mg/kg 0.30** o.ll* 0.38** Mg mg/kg 0.46** —0.12* —o.26** K mg/kg 0.42** o.lB** —0.02 Effective CEC, me/kg 0.41** 0.27** 0.48** pH(CaCl2) —0.25»* —o.s7** Exchangeable (pH 7) Subsoils Ca mg/kg 0.60** 0.05 0.05 Mg mg/kg 0.48** —0.16* —o.3o** K mg/kg 0,72** 0.13* 0.30** Effective CEC, me/kg 0.86** 0.18*» 0.37** pH(CaCI2 ) —0.14* —0.63»* 250 0.40**), but gave no more evidence of the exchangeable Ca or Mg contents than did total silt fraction. When the material was classified into non- clay (< 30 % clay) and clay (g 30 % clay) soils, the dependence of exchangeable Ca, Mg or K (y) on the clay content (x) was as follows (r = correlation coefficient, b = regression coefficient): of exchangeable Ca, Mg or K in the soils deposited during the Litorina Sea period. There was a closer correlation between organic C and exchangeable Ca in the whole material of topsoils than in subsoils. The leaching of soil exchangeable Ca or applied Ca may be lower in soils rich in organic mat- ter. In Litorina soils this trend was apparent. The amount of organic C and exchangeable Non-clay soils Clay soils Exch. cation Topsoil (n = 181) r b Subsoil (n = 105) r b Topsoil (n = 201) r b Subsoil (n = 277) r b Ca mg/kg Mg mg/kg K mg/kg 0.19 2.11 0.58»» 0.59 0.39»» 0.73 0.71“ 3.83 0.63“ 0.69 0.69»» 0.50 0.29»* 3.19 0.43»* 1.14 0.10 0.22 0.21»» 1.06 0.37“ 0.97 0.40** 0.32 In non-clay soils, the significance of clay content for exchangeable Ca, Mg or K con- tents seemed to be greater in the subsoil than in the topsoil. In clay soils, the dependences on clay content were lower than in non-clay soils. The poor correlation between clay con- tent and exchangeable Mg in the lower layer of clay soils may be due to the Litorina soils being included in this group. According to the regression coefficients, the increase in the clay content of the topsoil caused in the ex- changeable K of non-clay soils about a 3-fold increase to that of clay soils. In Litorina soils, the correlations between clay content (x) and exchangeable cations (y) were lower than in non-Litorina soils as in- dicated by the following coefficients of linear correlation (r) and regression (b): Mg orK correlated poorly in both soil layers, indicating a minor effect of organic matter on the leaching of these cations. The pHfCaClj) of topsoil and subsoil seemed to decrease slightly with increasing clay content and more distinctly with in- creasing organic C content. The ECEC was almost independent of pH(CaCl 2) (topsoil r = 0.15, subsoil r = 0.06), although the positive correlation between ECEC and clay or organic C did exist. Also the exchange acidity and ECEC were poorly correlated in the topsoil (r = —0.07) and subsoil (r = 0.23**). In the top layer of Litorina soils, the ex- change sites were occupied mainly by Ca and Mg because of liming, and increasing amounts of (AI + H) caused a decrease in Litorina soils (n = 120) Non-Litorina soils (n = 262) Topsoil Subsoil Topsoil Subsoil rb rb rb rb Ca mg/kg 0.37** 4.32 0.21* 0.85 0.32** 1.67 0.76** 2.17 Mg mg/kg 0.09 0.07 0.13 0.05 0.73** 0.89 0.72»* 1.09 K mg/kg 0.15 0.23 0.42** 0.31 0.56** 0.62 0.83** 0.47 The increasing clay content do not give the ECEC (r = —o.43**). In the subsoil, clear evidence of the increasing amounts the ECEC was greatly due to the acidity 251 promoting cations, and the ECEC increased with increasing amount of (Al + H) (r = 0.44**). Discussion The samples of topsoil (0—25 cm) and subsoil (30—50 cm) were taken from the same sites and at the same time. Therefore the differences between the two soil layers are the same as they are in the nature. Mart- tila (1965), Kaila (1972, 1973) and Urvas et al. (1978) for example, collected topsoil and subsoil samples mostly from different sites, furthermore the soil samples of both materials differed in number. The results of above studies may show a trend to bias from natural conditions. Both the topsoil and subsoil material con- sisted of 382 samples. The mean clay content was 31 ± 13 % in the topsoil and 42 ± 21 % in the subsoil and organic C content 5.5 ± 3.5 % and 1.9 ± 1.3 *Vo, respectively. The soils were acid with pH(CaCl2) values of 5.3 ± 0.6 and 4.9 ± 0.8, respectively. The exchangeable Ca and K contents, ECEC and plant available (Bray 1) P decreased, where- as exchangeable Mg and exchange acidity (AI + H) increased towards the subsoil. The same trend has been observed by Marttila (1965) and Kaila (1972) for the exchangeable cations and by Kaila (1971) for the ECEC in Finnish mineral soils. In an earlier study (Jokinen 1983), the number of soil samples needed for the accu- rate estimation of soil characteristics was cal- culated for the topsoil material on the basis of the coefficient of variation (w), Student’s t-value (t) and allowable error (p) according to the equation n = t 2w2/p2 . If this equa- tion were applied to subsoils, the number of samples needed would be greater than for topsoil because of the higher w-values in the subsoil. The subsoil seemed to be more heterogenic than the topsoil. The ECEC of the topsoil was equally de- pendent on the clay and organic C %, in the subsoil clay was of great significance. Kaila (1971) studied the ECEC of Finnish mineral soils and observed the dependence on clay to be in both soil layers very close and the de- pendence on organic C to be low. Her mate- rial consisted of both virgin and cultivated soils with a narrower range of organic C % and a wider range of clay than in this mate- rial. Drake and Motto (1982) studied the dependences of potential CEC of New Jersey soils on clay and organic matter contents. In the horizon A, the relative contributions of clay and organic matter were nearly equal, whereas in the horizons B and C, the con- tribution of clay was great. Increasing content of organic C in the top- soil seemed to protect the applied Ca against leaching. This effect was apparent in Litorina soils. The organic matter-metal complexes, including Ca complexes, are so strongly bound that they can be released at very acid pH only (Lewis and Brodbent 1961, StAl- berg 1984). Exchangeable Mg and K seemed not to have the same kind of protection by organic matter against leaching. It is easier on the basis of clay content to predict the exchangeable Ca, Mg or K con- tent of the soil in non-Litorina soils than in Litorina soils. The positive dependence of cations on clay was weaker in clay soils than in non-clay soils. Fertilization and liming of soils cropped over a long period may change the original contents. The effect of P fertilization on the content of plant available (Bray 1) P in the subsoil was not observed. In one field only where high amounts of P were applied, some of it may have reached the subsoil because of the high content of organic C in the topsoil. Ac- cording to Salonen et al. (1973), the water- soluble P applied in fertilizers have a tenden- cy to remain in this form in organic soils. The contamination of subsoil with topsoil was also possible because of some difficulties in subsoil sampling in 1979. The availability for plants of exchangeable cations may be equal in the topsoil and sub- soil. The availability is sooner dependent on the depth the roots reach. Salonen (1952) 252 stated that e.g. the K and P of subsoil were available for cereals in case N fertilization had been applied. In the Litorina soils in- cluded in this study, the nutrients of subsoil have a risk to remain out of use because of the acidity. Inversely in non-Litorina soils, the exchangeable Mg and K may be available for plants. There was a weak negative correlation be- tween clay percentage and pH(CaCl 2). As- suming pH is the best indicator of the liming requirement of the soil, an increase in the clay content would raise the amount of lime needed for the elevation in pH. In this respect similar (Ross et al. 1964) and opposite re- sults (Urvas et al. 1978) have been achieved. The negative dependence of pH(Ca€l2) on organic C content was closer than the neg- ative dependence of pH on clay content. Therefore also the requirement of lime should increase with increasing organic C %. References Drake, E.H. & Motto, H.L. 1982. An analysis of the effects of clay and organic matter content on the ca- tion exchange capacity of New Jersey soils. Soil Sci. 133: 281—288. Hartikainen, H. 1978 a. 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Ms received September 14, 1984 253 SELOSTUS Muokkauskerroksen ja pohjamaan ominaisuudet eteläisen Suomen rannikkoalueen viljelyksillä Raili Jokinen Helsingin yliopisto, maanviljelyskemian laitos Tutkimuksen aineisto koottiin Viikin opetus- ja koe- tilan pelloilta 382 pisteestä, joista jokaisesta otettiin muokkauskerrosta (0 —25 cm) ja pohjamaata (30 —50 cm) edustava näytepari. Kaikista näytteistä määritettiin raekoostumus %, orgaaninen C%, pH(CaCl2 ), vaihtu- vat (pH 7) kationit Ca, Mg ja K mg/kg, efektiivinen ka- tioninvaihtokapasiteetti me/kg, vaihtuva happamuus (AI + H) me/kg ja kasveille käyttökelpoinen (Bray 1) P mg/kg maata. Muokkauskerroksen ja pohjamaan ominaisuuksia verrattiin toisiinsa koko aineistossa sekä lisäksi kahdella eri perusteella luokitelluissa aineiston osissa. Kalkeissa, lannoitteissa ja karjanlannassa kym- menenä vuotena ennen näytteiden ottoaannetut P, K ja Mg määrät arvioitiin Viikin opetus- ja koetilalla tehty- jen muistiinpanojen mukaan. Karjanlannan ja lietelan- nan ravinnepitoisuuksista käytettiin Keräsen (1966) ja Kähärin (1974) esittämiä keskimääräisiä arvoja. Muokkauskerroksessa karkeat kivennäismaat olivat yleisempiä kuin pohjamaassa (Taulukko 2). Aitosavi puuttui lähes kokonaan muokkauskerroksen näytteistä. Keskimääräinen orgaanisen C pitoisuus ja pH(CaCI 2 ) olivat pohjamaassa alhaisemmat, saves- ja hiesupitoi- suus taas korkeammat kuin muokkauskerroksessa. Vaihtuvan kalsiumin ja kaliumin sekä kasveille käyt- tökelpoisen fosforin keskimääräinen pitoisuus oli muokkauskerroksessa korkeampi kuin pohjamaassa (Taulukko 3), osittain kalkituksen ja lannoituksen seu- rauksena. Kalsiumpitoisuuksien ero oli sama niilläkin lohkoilla, joita ei oltu kalkittu. Vaihtuvan magnesiumin pitoisuus sen sijaan oli pohjamaassa korkeampi kuin muokkauskerroksessa, ja Litorinamaat poikkesivat muista pohjamaan erittäin alhaisen magnesiumpitoisuu- den vuoksi (Taulukko 5). (AI + H) osuus efektiivisestä kationinvaihtokapasiteetista (Ca + Mg + AI + H) oli Litorinamaiden pohjamaissa oli 50 % ja ero vastaa- vaan muokkauskerrokseen (9 %) sekä ei-Litorinamaihin (muokkauskerros 5 %, pohjamaa 13 %) oli huomatta- van suuri. Pohjamaiden eri ominaisuuksien vaihtelu oli laaja, mikä viittaa tämän kerroksen muokkauskerrosta suurempaan epätasaisuuteen. Pohjamaissa vaihtuvan Ca tai K pitoisuuden positiivi- nen riippuvuus savespitoisuudesta oli kiinteämpi kuin muokkauskerroksessa, vaihtuvan Mg riippuvuus oli lä- hes sama kummassakin kerroksessa (Taulukko 6). Sa- vespitoisuuden perusteella ei siis voida arvioida muok- kauskerroksen vaihtuvien kationien pitoisuutta kovin suurella varmuudella. Lannoitus ja kalkitus heikentävät maassa luontaisesti vallitsevia riippuvuuksia. Litorina- maiden vaihtuvien kationien määrän arvioiminen sa- vespitoisuuden perusteella on muokkauskerroksessakin epävarmaa. Muokkauskerroksessa vallitsi positiivinen vuorosuh- de orgaanisen C ja vaihtuvan kalsiumin pitoisuuksien välillä (r = 0.38**). Pohjamaassa vastaava vuorosuhde oli lähes olematon. Tämä viittaa siihen, että orgaaninen aines vähentää kalsiumin liikkuvuutta maaprofiilissa alaspäin. Vaihtuvan magnesiumin ja kaliumin suhteen ei todettu vastaavaa. 254