JOURNAL OF THE SCIENTIFIC AGRICULTURAL SOCIETY OF FINLAND 328 Maataloustieteellinen A ik_ak.ausk.irja Vo/. S 3 -.328—340, 1981 Genetic and management adaptation of field bean (Vicia faba L.) in Finland SEPPO PULLI Agricultural Research Centre, Dept, of Plant Husbandry, 51600 Jokioinen MAURITZ VESTBERG University of Helsinki, Dept, of Plant Pathology, 00710 Helsinki 71 Abstract. The investigation of field bean adaptation in Finnish climatic conditions was carried out at the University of Helsinki in 1976—77. The main objectives were to study the effects of seeding time and population density on the quantity and quality of the yield and the vegetative features in the development of two different types of field bean varieties. Field bean yielded 4061 kg/ha in 1976. In 1977 only 2042 kg/ha was harvested due to the lack of light during the grain filling period and the presensc of plant diseases. Delayed seeding lowered yields in both years. Maximum yield was obtained with the seed rate of 240 kg/ha. Two weeks delay in the seeding speeded up flowering by two days. Temperature sum in degree days from seeding to emergence was 140— 170°C, from seeding to flowering 618—637°C and from seeding to maturity 1670—1890°C. LAI was 5.7 for early variety and 4.3 for late variety at the time ofpod setting representing very effective situation for CGR. Number and distribution of internodes, pods and seeds were primarily influenced by population density and secondly by the differences between varieties. 1. Introduction The field bean was one of the most important crops for human nutrition in Europe until the early 17th century. Later it was replaced by potato and maize. In Finland field beans were cultivated since the early 16th century. Bean cultivation was concentrated in the western part of the country. Eastern type native cultivars have been maintained in Eastern Finland until today, although the rest of the Europe have long ago adopted breeded varieties (KIVI 1975). Field bean is a long day plant. Minimum temperature requirement for germination being +l°C. The plant can tolerate short periods of —4°C growing conditions. Optimum temperature for growth lies between 23—28°C according to varieties. Field bean is considered very sensitive to the stress conditions caused by either lack of light or water (OSVALD 1959). https://www.c-info.fi/en/info/?token=ckVwOP_Lt2of3Rs3.wdv88QjQ9h_Gy3ceoWwA3w.pD-wo1nWYwi9DlOhUSouK2DLU126Edg51KO8UAnIbaJOZWz_IOqHN0xdhVOcbc40EFNpIgknrVCpKc0gaxKrALN4andS1UGBsfo_fafB9ncRVnecGr89VsTCON2EE8vtQC_RffQs8qmdAfP93dFStPTX9fwrMa9WVA https://www.c-info.fi/en/info/?token=5pwMleUE3a7djPZn.xbsa-FGgMwrM9-lD1-keng.EwrhSqIVJeZl8xF-DLS_-Gsia3K8RzotI1FhvIAjV1WgVuDSeLVeVHXN92sVlDa_J7qdJALNYznrXiTbBU7lUVJt-vhkVipdmlOPdKdk7uH5AFDa-0egGQ1gUzawfzaPFxBb93mWO2cHZ8sGAvAOsbTnkCRTiXbHVrx3Atwur5ewn8aL-Ezs3OisiQ 329 As a plant, with a heavy seed weight field bean’s moisture requirements for germination are great. Deep tillage, good aeration of seed bed and relatively deep sowing ensure good emergence and favourable root development. Heavy soils are recommended for the cultivation of the crop (HULTKVIST & SVENSSON 1975). According to OSVALD (1959), a 2 000 kg/ha grain yield together with 4 000 kg/ha straw yield contain 113 kg N, 13 kg P, 54 kg K and 27 kg Ca. As other legumes also field bean’s K and Ca requirements are high. In Sweden and in Denmark N-fertilization is not recommended but inocculation in the soils without earlier field bean cultivation (SJODIN et al. 1972). In Finland a relatively cool spring together with minor bacterial activity give a good reason for the use of fertilizer nitrogen. HOVINEN (1977) recommends 40—60 kg N/ha for the start fertilization. As a crop with a relatively long growing season requirement field bean should be seeded early in the spring. However, only a noticeable delay in the seeding date (30 days) have lead to the reduced yield (HULTKVIST and SVENSSON 197 5), (CHRISTENSEN 1972). Similar results have been obtained by ROWLAND (1978) in Canada and BARRY and STOREY (1979) in Ireland. In Sweden, BENGTSSON and BINGEFORS (1975) have studied factors relating to the rate of seeding. They have concluded that the seeding rate is dependent primarily on the variety and secondarily on the row spacing. Narrow raw spacing (12 cm) yielded more than stands with row distance 50 cm. Narrow row spacing gives requirement for a higher seed rate. Higher population density can be used with the varieties with low seed weight, although seeding rates are lower. In Finland HOVINEN and KIVI (1975) have studied the growth behaviour of the most important Swedish varieties together with some Finnish native field bean cultivars. The variety with the highest production proved to be Primus from Svalöf, which matured in 1 30 days. Finnish native cultivar Mikko yielded 45 % less, but matured 20 days earlier. In this investigation the primary aim was to study the variety and management questions of field bean. Study objectives were native cultivar, early maturing (110 growing days) Mikko with 1 000 seed weight = 220 g and late maturing (130 growing days) Swedish variety Aria with 1 000 seed weight = 350 g. Other objectives were seeding date, seeding rate and the effects of the studied management to the productivity, yield quality and to the vegetative features in the development of the two varieties. 2. Materials and methods Field bean trials with different management and biological studies were carried out at the University farm in Helsinki in 1976—77. The research program consisted of the following type of experiments: 330 Field experiments: 1976 1977 Main plot: Seeding times Early seeding a. May 11 May 6 Midearly" b. May 17 May 16 Late c. May 24 May 23 Sub-plot: Varieties Early and small seed a. Mikko Mikko Late and large seed b. Arla Aria Sub-sub-plot: Seeding rates kg/ha seeds/m 2 kg/ha seeds/m 2 Mikko a. 160 78 160 76 b. 240 118 240 114 c. 320 157 320 150 d. 400 196 400 186 Aria a. 160 45 270 76 b. 240 60 405 114 c. 320 91 540 150 d. 400 113 675 186 Replications 4 4 Plot size m 2 10 10 Fertilization (15-20-15) kg/ha 670 670 Row spacing cm 12.5 12.5 Seeding depth cm 8 8 Field observations consisted of the dates of emergence, flowering and maturing and the existence of plant diseases. Stand density plants/m2 was determined by counting the plants in the rows 3xl m/plot. Plant height was measured once per week at three places of the plot. The scale for lodging was o—loo %. The plots were harvested with combine machine and dried to 1 3 % water content in DM. Laboratory studies: LAI was measured twice in 1976 by using a planimeter at the time of flowering and pod setting. Together with LAI measurements was determined the number of leaves per plant. At the time of maturity the number of internodes per plant, number of internodcs per plant carrying pods, number of pods per intemode, number of pods per plant, number of seeds per pod and per plant and the distance from soil surface to the first internode carrying pods was determined . Botanical study consisted of material from 2 X 1 m length of seeding row. Crude protein was determined by the Kjeldahl method. 3. Weather conditions The growing seasons 1976 and 1977 were both cooler than average (Table 1). Precipitation of both growing seasons was close to normal. Heavy rainfall in July of 1977 developed an extra stress factor causing Chocolate spot disease (Botrytis cinerea) to attack plants and destroy the normal development of the stand. Both the temperature sum in degree days and the cumulative radiation sum (Wh/cm 2 ) were higher in 1976 than those of 1977 (Fig. 1.). 331 Table 1 Average temperatures and amount ofprecipitation (mm) during time period ofMay—Sept, in 1976 77 and average 1931—60 at Malmi Airport. Avg. temperature °C Precipitation mm Month 1976 i~977 1931-60 1976 1977 1931-60 May 10.7 9.4 8.4 46 22 41 June 13.0 14.4 14.1 42 36 47 July 15.9 14.7 172 52 122 68 Aug. 15.2 14.5 15.6 45 47 70 Sept. 8.1 8.3 10.5 48 73 66 1 Hu \TI m 233 300 292 Fig. 1. Temperature sum (2JC°>O) in degree days and total radiation sum (Z'Wh/cm 2 ) in 1976 and 1977 together with the developmental data of two field bean cultivars. 4. Results and discussion Growing time, temperature and radiation requirements: The time period between the date of seeding and the time of emergence varied from 11 to 17 days, primarily according to the spring temperature conditions (Table 2). Weather conditions were related to the seeding date. As a consequence, in early seeding, many temperature degrees are likely to be lost due to the warming of the seed bed, as can be seen in Table 3. During the time period of the stand emergence, around 12 % of the total radiation of the growing season was used for nonphotosynthetic purposes (Table 4). From seeding to flowering the field bean stand used a temperature sum of616 637°C in degree days (Table 3). Plant development seemed to be bound tightly to the temperature conditions around the plant. A one week delay in the seeding time speeded up the development by one day for both varieties (Table 2). The vegetative phase of variety Mikko was only two days shorter than that of variety Aria. The real variety differences were developing in the generative phase of plant development, and the variety Aria with a bigger seed size used more time for legume grain filling than the variety Mikko with 40—50 % less seed size (Tables 2 and 3). Since the development of the plant was primarily bound to the temperature sum, more light was lost in the early seedings than in the late ones (Table 4). Table 2. Average growing time requirements (days) of two field bean varieties during different phases of plant development in 1976—77. Growing days Variety Seeding Seeding Seeding Seeding time emergence flowering maturity Mikko Early 14 48 121 Midearly 13 47 120 Late 14 46 119 Aria Early 14 50 128 Midearly 13 49 127 Late 14 48 126 Table 3. Average temperature sum requirements in degree days of two field bean varieties during different phases of plant development in 1976—77. Temperature sum Cc Variety Seeding Seeding Seeding Seeding time emergence flowering maturity Mikko Early 170 621 1710 Midearly 144 616 1680 Late 140 618 1667 Aria Early 170 637 1789 Midearly 144 635 1751 Late 140 633 1705 332 3335 Maataloustieteellinen aikakauskirja 5 Table 4. Average radiation requirements (Wh/cm 2 ) of two field bean varieties during different phases ofplant development in 1976—77. Total radiation Wh/cm2 Variety Seeding Seeding Seeding Seeding time emergence flowering maturity Aria Early 7.20 27.11 56.00 Midearly 7.24 25.83 56.73 Late 6.84 24.76 54.39 Finnish growing conditions are very much of those described by NAIMARK (1977) in Russia with a temperature sum of 1877 1898°C and with an average temperature of growing season 1 3.7—14.6°C. Optimum temperature conditions for RGR are 24°C (EL NADI 1969) or from 23 to 30°C depending on varieties as described by EVANS (1957). Maturity observations in 1977 were disturbed by the strong appearance of Chocolate spot disease caused by Botrytis cincrea. However, important observation was that two weeks delay in the seeding date introduced only two days shorter growing time by both varieties. Results show the same trend as observed by CHRISTENSEN (1972). Yields: In Scandinavia and in Finland the yields of field bean have varied between 500 and 5 000 kg/ha (HOVINEN 1977). Yields in 1976 represented relatively high yield levels as results 4 240 kg/ha for Mikko and 3 880 kg/ha for Aria show. Better productivity of Mikko compaired to Aria was not earlier experienced (HOVINEN 1977). The growing season 1977 represents about 50 % of the yields observed in 1976. Mikko also showed better productivity in rather poor growing conditions in 1977 (Table 5). Statistically the seeding densities 118 plants/m2 for Mikko and 68 plants/m2 for Aria in 1976 and 114 plants/m2 for both varieties in 1977 produced highest yields although yields slightly increased when seeding rates were raised up to the highest level studied. Two year results show 200 kg/ha better average yields for the earliest seeding than the seeding two weeks later, although the yield difference was not significant. In Fig. 2. reduced net yields show distinct decrease in late seeding especially at high seed rates. Aria shows the same trend as pointed by BENGTSSON & BINGEFORS (1975) and THOMPSON and TAYLOR (1977) when the optimum seeding rate was 80 plants/m2 . According to the results obtained (Tables 5 and 7), the temperature sum had primary effect on the plant development. On the other hand, light was primarily responsible for the yield formation. The temperature sums in degree days are almost equal in 1976 and 1977 (Table 6). Poor light conditions representing 12 %-units less total radiation in 1977 during the grain filling period resulted in a diseased stand and 50 % less yield than in 1976. Tabic 5. Effect of seeding rate and time of sowing on the yield, crude protein and 1 000 seed weight of the field bean cultivars Mikko and Aria 1976 and 1977. Seeding rate kg/ha 1976 160 240 320 400 Rates Mikko Arla Mean Mikko Arla Mean Mikko Arla Mean Mikko Arla Mean Mean F-test Yield,kg/ha 3885 3649 3767a 4296 3837 4067b 4373 3966 4170b 4407 4075 4241 b 4061 xx Crude protein, % 30.3 31.9 31.1a 10.4 32.0 31.2 a 29.9 32.1 31.0a 30.0 31.9 31.0a 31.1 NS 1000 seed weight, g 221 324 273 a 218 337 278 a 212 272 242 b 207 330 269ab273 NS Seeding rate kg/ha 1977 Yield,kg/ha 1943 1833 1888a 2241 1846 2044 ab 2211 1964 2088 ab 2246 2047 2147b 2042 NS Crude protein, % 27.9 28.6 28.3 a 27.5 28.3 27.9b 28.2 28.3 28.3 ac 28.1 28.4 28.3 ac 28 2 NS 1000 seed weight, g 167 252 210a 162 243 203 ab 159 247 203 ab 154 241 198bc 203 x Time of sowing 1976 Early Medium Late Times Mikko Arla Mean Mikko Arla Mean Mikko Arla Mean Mean F-test Yield, kg/ha 4262 4093 4178 a 4097 3919 4008 a 4362 3634 3998 a 4061 NS. Crude protein, % 31.1 32.7 31.9a 30.2 32.4 31.3 a 29.2 30.9 30.1b 31.1 xxx 1000 seed weight, g 225 344 285 a 218 328 273 ab 201 320 261b 273 x Time of sowing 1977 Yield, kg/ha 2388 2342 2365 a 2040 1757 1899 a 2053 1669 1861a 2042 NS. Crude protein, % 27.9 27.4 27.7 a 27.5 29.2 28.4 a 28.3 28.7 28.5 a 28.2 N.S 1000 seed weight, g 154 250 202 a 151 238 195 a 176 249 213 a 203 N.S. 334 335 Table 6. Temperature sum (E C°>o) and total radiation (£Wh/cm 2 ) and relative number (RN) in 1976 and 1977 from the early seeding to the maturity of the last seeding. Year Temperature Radiation ZC°>o RN ZWh/cm 2 RN 1976 1918 100 66.15 100 1977 1862 97 58.54 88 Fig. 2. Gross yield, net yield and reduced net yield of two field bean cultivars in 1976 and 1977 seeded at three different dates and four population densities. Tabic 7. Effect of seeding rate and sowing time on some yield components of the field bean cultivars Mikko and Aria 1976. Seeding rate kg/ha 160 240 320 400 Rates Mikko Arla Mean Mikko Arla Mean Mikko Arla Mean Mikko Arla Mean Mean F-test No. of nodes/stem 14 3 16.7 15.5a 13.6 15.3 14.5 b 12.6 14.2 134 c 11.8 13.5 12.7 c 14.0 xxx No. of podding nodes/stem 5.2 6.3 5.8 a 4.6 5.0 4.8 b 3.7 4.1 3.9 c 3.2 3.8 3.5 c 4 5 xxx No. of pods/node 0.71 0.92 0.82 a 0.56 0.68 0.62 ab 0 44 0.58 0.51 ab 0.39 0.47 0.43 be 0.60 xxx No. of pods/stem 8.0 10.3 9.2 a 6.7 7.8 7.3 b 5.3 6 2 5.8 c 4.3 5.4 4.9 d 6 8 xxx No. of seeds/stem 26.2 29.7 28.0 a 21.7 22.2 22.0 b 16 1 17.2 16.7 c 13.3 14.8 14.1 d 20.2 xxx No. of seeds/pod 3.3 2.9 3.1a 3.2 2.8 3.0 b 3.1 2.7 2 9c 3.1 2.7 2.9 c 3.0 xxx Heightof lstpod, cm 21.4 24.1 22.8 a 24.0 28.9 26.5 b 28.4 33.7 31.1c 29.8 30.9 30.4 c 27.7 xxx LAI at flowering 2.13 193 2.03 a 2 15 2.24 2.20 ab 3.32 2.14 2.73 be 3.57 3 04 3 31c 2 57 xxx atpodsetting 4.49 3.92 4.21a 4.67 4.23 445 ab 6 44 4.11 5.28 be 7.34 4.86 6.10c 5.01 xxx Time of sowing Early Medium Late Times Mikko Arla Mean Mikko Arla Mean Mikko Arla Mean Mean F-test No. of nodes/stem 12.5 14.4 13.5 a 12.8 14.0 13.4a 13.9 16.3 15 1b 14.0 xx No. of podding nodes/st. 3 8 4 8 4 3a 4.0 4 3 4.2 a 4.7 5.3 5.0 b 4.5 x No. of pods/node 0.46 0.67 0.57 a 0.53 0.58 0.56 a 0.59 0.74 0.67 a 0.60 N.S. No. of pods/stem 5.4 7.6 6.5 a 6.0 6.4 6.2 a 6.9 8.2 7.6 b 6.8 xx No of seeds/stem 17.0 22.1 19.6 a 19.3 18.0 18.7 a 21.7 22.9 22.3 a 20.2 N.S. No. of seeds/pod 3.2 2.9 3.1a 3.2 2.7 3.0 a 3.2 2 6 2.9 a 3 9 N.S. Heightof Ist pod, cm 26.4 29.9 28.2 a 25.7 29.1 27.4 a 25.6 29.2 27 4 a 27.7 N.S. LAI atflowering 3.64 2.56 3.10 a 2.79 2.55 2.67 a 1.95 1.90 193 b 2.57 xx atpodsetting 5.95 4.14 5.05 a 5.20 4.39 4.80a 6.04 4.31 5.18 a 5 01 N.S 336 337 Yield quality: Field bean as a protein rich crop is valuable raw material in animal feeding. Its protein completes cereal grain protein by containing more lysin. Lack of sulphur containing amino acids restricts the use of field bean protein alone as a protein source for nonruminants. Also tannic acids and some glycosides of field bean grains are harmful in animal diet (NEHRING et al. 1972). Studies in 1976—77 showed that variety Mikko had lower protein content (30.2 % in 1976 and 27.9 % in 1977) than Aria (32.0 % in 1976 and 28.4 % in 1977). In 1977 the differences between varieties were smaller due to the less favourable growing conditions (Table 5). Delayed seeding date resulted in a lower protein content in field bean grains, as experienced by ROWLAND (1978) in Canada and CHRISTENSEN (1972) in Denmark. This trend was interfered by Chocolate spot disease in 1977 by infecting the early seedings and early variety more heavily than late seedings or late variety Aria. Seeding rate had no statistically significant effect on the raw protein content of both field bean varieties as shown also by BENGTSSON and BINGEFORS (197 5) in Sweden. Seed weights for Mikko and Aria in 1976 were 215 and 331, in 1977 160 g an 246 g respectively. A relatively cool growing season together with plant diseases in 1977 did not allow a complete grain filling, especially when lack of light was also a limiting factor. Normal seed weights for Mikko and Aria are 220 g and 360 g, respectively. Field bean seed weight decreased as seeding date was delayed or seeding rate increased (Table 5) as shown also by CHRISTENSEN (1972). Stand characteristics; The stand height of variety Aria was at the end of August in 1976 100—110 cm against Mikko with an average stem length of 80 cm (Fig. 3). Stands with low seed rates developed faster than the ones with a high population density. The trend was reversed at the end of the growing season. Results arc equal to those obtained by BARRY and STOREY (1979) or CHRISTENSEN (1972). Because of the greater height of the stand more lodging (24—41 %) could be found amongst the variety Aria, whereas the short variety Mikko stayed relatively upright. Leaf area index (LAI) was mostly influenced by variety and seed rate. Mikko had higher LAI at the beginning of pod setting; average 5.73 for Mikko against 4.28 for Aria. LAI increased when the population density of both varieties increased (Table 7). LAI 3 was reached at the time of flowering only with early seeding and with high seed rates. According to BULL (1968) at the time of LAI = 3, daily temperature has the most important effect on plant growth. When LAI is raised beyond LAI 3, leaves and developing pods have increasing competition for light which can be considered the next limiting growth factor. In this study stands reached LAI 4 at the time of pod setting. LAI 4 is known to be the most effective leaf area for crop growth rate (CGR) of field bean. Number and distribution of internodes, pods and seeds were mostly influenced by population density based on seed rates. Dense population with high seed rate had less pod carrying internodes per plant, less pods per internode and fewer seeds per pod than the stands with a sparse population density (Table 7). Results agree with those obtained by BARRY and STOREY (1979) and THOMPSON and TAYLOR (1977). Also distinct differences between varieties could be found. The variety Aria had a greater number of internodes, more pod carrying internodes and pods per Fig. 3. Plant height development of two field bean cultivars in 1976 seeded at three different dates and four population densities. Fig. 4. Number of pods per internodc of two field bean cultivars seeded at three different dates and four population densities. 338 339 internode but less seeds per pod than the variety Mikko. Late sccdings showed a greater number of internodes and better production of pods as found by BARRY and STOREY (1979) in Ireland. The highest concentration of pods was located in the fourth and fifth internode (Fig. 4). Pods showed closely the normal distribution around those internodes. The distance from the soil surface to the first pod carrying internode was 25.9 cm for Mikko and 29.4 cm for Aria. Pod distance varied according to the population density. Variation among Mikko variety was from 24.1 cm at seed rate 160 kg/ha to 29.8 cm at the seed rate of 400 kg/ha. Pod distances were higher than those obtained by HOVINEN (1977) but a similar trend to that obtained by BENGTSSON and BINGEFORS (1975) in Sweden. 5. Summary and conclusions The investigation of field bean adaptation in Finnish climatic conditions was carried out at the University of Helsinki in 1976—77. The main objectives were to study the effects of seeding time and population density on the quantity and quality of the yield and the vegetative features in the development of two different types of field bean cultivars. The following results have been drawn: 1. Yielding ability and quality characteristics of field bean vary from year to year. Field bean still has certain primitive features such as long growing season requirements, and low drought and disease resistance. Regardless of the relatively cool summer field bean yielded in 1976 4 061 kg/ha. In 1977 the lack of light and attack of deseases resulted in an average yield of 2 042 kg/ha. Early seeding produced the highest yield. Seeding rate of 240 proved to be optimum for the maximum yield. 2. The time period from seeding to the stand emergence varied from 11 to 17 days representing temperature sums in degree days from 140 to 170°C. From seeding to flowering field bean used 46 to 50 days or from 618 to 6 3 7°C in degree days. Growing time from seeding to maturity varied from 119 to 135 days according to the variety and to the seeding time. High population density increased the growing time from 2 to 3 days. Temperature sum in degree days from seeding to maturity varied from 1670 to IB9O°C. 3. The delayed seeding date resulted lower protein content of the grain dry matter. Seeding rate had no significant effect on the protein content of both varieties studied. The seed weight decreased when the seeding date was delayed or the seeding rate increased. 4. LAI was most influenced by variety and seed rate. LAI at the beginning of pod setting was 5.73 and 4.28 for Mikko and Aria, respectively representing the most effective situation for CGR. 5. Number and distribution of internodes, pods and seeds were mostly influenced by population density. Also distinct differences between varieties could be found. The highest concentration of pods was located in the fourth and fifth internode. Pods showed closely the normal distribution around those intcrnodcs. The pod distance from soil surface to the first pod carrying internode varied according to the population density. 340 References BARRY, P. and STOREY, T. S. 1979. Influence of some cultural practices on the yield, development and quality of field beans (Vicia faba L.). Ir. J. agric. Res. 18: 77—88. BENGTSSON, A. & BINGEFORS, S. 1975. Odlingstekniska försök med äkerböna. Inverkan av sätid, radavständ och utsädesmängd. Lantbrukshögskolan meddclanden. Serie A. Nr 229. BULL, T. A. 1968. Expansion of leaf area per plant in field bean Vicia faba L. related to daily maximum tempareture, J. appi. Ecol. 5: 61—8. CHRISTENSEN, S. P. L. 1972. Sätider for til mogenhed. Tidskr. Planteavl 76: 400—407. EVANS, L. (1957). The broad bean. In The Experimental Control of Plant Growth (ed. F. Went), pp. 124 8. New York: Chronica Botanica Company. EL NADI, A. H. 1969. Water relations of beans. 1. Effects of water stress on growth and flowering. Experimental Agriculture 6: 195—207. HOVINEN, S. 1977. Härkäpapu Hja 70011. Kauppaanlaskuesitys 17.06. 1977. 12 s. & KIVI, E. 1975. Härkäpapu. Sicmenjulkaisu 1975: 64—66. HULTKVIST, L. & SVENSSON, A. 1975. Akerböna. Egenskaper, odlingskrav och odlingsteknik cn littcraturöversikt. Konsulcntavdelningens stencilserie. Mark-Växter 29; 1 30. Lantbrukshögskolan 1975. KIVI, E. 1975. Suomalainen härkäpapu. Pellervo 76 (1975): 6: B—ll. NAIMARK, L. 1977. Developmental phases and ontogenesis stages of legumes. Sef skokhozyaistvennaya Akademiya 15: 16—22. Bclorussia. (Ref. Field Crop Abstracts 31. 2574). NEHRING, K., BEYER, M. & HOFFMANN, B. 1972. Futtermitteltabellenwerk s. 342-345, 348-349. Berlin 1972. OSVALD, H. 1959. Bondböna, Vicia faba 1. Äkerns nyttöväxter. s. 174—181. Stockholm 1959. ROWLANDS, D. G. 1957. The problem of yield in field beans. Agric. Progr. 30: 137—147. SJÖDIN, L, LÖNQVIST, B„ MUNK, L. & HOLMBERG, E. 1972. Odlingstekniska försök med äkcrböna. Sveriges Utsädcsförcnings Tidskrift 1972: I—2: 37—47. THOMPSON, R. and TAYLOR, H. Yield components and cultivar, sowing date and density in field beans (Vicia faba), Ann. appi. Biol. 86: 313, 1977. Ms received December 10, 1981. SELOSTUS Härkäpavun geneettinen ja viljclyteknillinen sopeutuminen Suomen kasvukauteen Seppo Pulli MTTK/KVL, Jl6OO Jokioinen Mauritz Vestberg HY/Kasvipatologian laitos, 00710 Helsinki 71 Helsingin yliopiston Kasvinviljelytieteen laitoksella tutkittiin vuosina 1976—77 härkäpavun kylvöajan ja kylvötiheyden vaikutusta härkäpavun sadonmuodostukseen, sadon laatuun ja kasvin morfologiaan. Tutkittavina lajikkeina olivat pienisiemeninen, aikainen Mikko ja suurisiemeninen, myöhäinen ruotsalaislajike Arla. Tutkimuksista voidaan vetää seuraavat johtopäätökset: Härkäpavun riskialttiuden vähentäminen edellyttää pienisiemenisen ja aikaisen lajikkeen jalostamista, joka on nykyisiä lajikkeita taudin- ja kuivuudenkestävämpiä. Viljelytekniikassa tulee pyrkiä aikaisimpaan mahdolliseen kylvöajankohtaan. Kylvömäärällä 240 kg/ha (120 siementä/m2 ) saavutettiin maksimisato. Härkäpavun viljelyynotto edellyttää lisäksi, että sen sisältämät parkkihapot ja glukosinolaatit voidaan jalostusteitse poistaa, jotta sen täysipainoinen käyttö rehuseoksissa voitaisiin toteuttaa.