Huddart, D. & Glasser, N.F. 2007. Quaternary of Northern England. Geological Conservation Review Series No. 25, JNCC, Peterborough, ISBN 1 86107 490 5. The original source material for these web pages has been made available by the JNCC under the Open Government Licence 3.0. Full details in the JNCC Open Data Policy
Bolton Fell Moss and Walton Moss
Potential GCR site
D. Huddart
Introduction
There are many classic ombrotrophic bogs in Cumbria, known locally as 'mosses', or 'flows' if they are particularly wet. These sites have been an important source for our knowledge of Holocene vegetation, climatic change and the impact of humans on the vegetation record. Barber's (1981) research into the relationship between peat stratigraphy and climatic change as a formal palaeoecological test of the theory of cyclic bog regeneration was centred at Bolton Fell Moss. Here undisturbed stratigraphical sections were analysed for macrofossils to characterize the changing assemblages of bog plants, dated and correlated by means of a master profile that was subject to pollen analysis at close intervals and 14C dated. The close correlation between known climatic changes since the Middle Ages (Lamb, 1977) and the macrofossil and peat stratigraphy changes shown to have occurred across the bog as a whole, falsified the theory of autogenic cyclic regeneration (Barber, 1981). Barber thus demonstrated that the climatic signal was the overriding important factor. Work also has been undertaken on the human impact on the vegetation of the area using the pollen record (Dumayne, 1992) and detailed research has taken place into the sensitive, high-resolution record of Late Holocene climatic changes (Barber et al., 1994b).
Work at Walton Moss
Description
Walton Moss (altitude 95 m OD) is possibly the most intact ombrotrophic, raised mire in England and is 283 ha in extent. One kilometre to the south, and separated by a small valley, is Bolton Fell Moss, where peat resources have been worked extensively. It covers 365 ha at an altitude 110 m OD. The plant communities in both are dominated by Sphagnum magellanicum, which macrofossil analyses show as having only achieved dominance in the past 1000 years, replacing the former community dominated by S. imbricatum. The peat stratigraphy shows shallow lake muds succeeded by Phragmites reed, with varying amounts of woody material and moss remains. These deposits typically are only c. 1 m thick and are succeeded in turn by humified peats rich in cotton-grass and heather remains and then less humified Sphagnum peats, which often are very pure and contain thin, algal mud-rich bands. The pollen and macrofossil diagrams for these mosses are given in
Interpretation
The interpretation of the peat stratigraphy can be looked at in terms of the influence of climatic change, mire development and how much human impact there has been on the vegetation.
The proxy palaeoclimatic record
Bolton Fell Moss was used as a palaeoecological test site, whose evidence led to the rejection of the cyclic peat-bog regeneration model and established climatic phase theory (Barber, 1981). Barber conducted macrofossil and other analyses on seven peat faces. There are no lenticular structures that would be produced by cyclic regeneration and the dominant stratigraphy is layered, with only moderate relief. Relatively dry bog conditions, dominated by S. imbricatum, followed by an intermediate state (S. cuspidatum–S. papillosum phase) and then by very wet conditions, dominated by S. magellanicum, were found in 16 of the 21 monoliths analysed. These data were used to falsify the cyclic regeneration theory of Sernander (1908) and Osvald (1923) by relating the changes in stratigraphy and macrofossil assemblage to the known climatic variation of the last few centuries, and this was developed into the climatic phase theory, i.e. raised bog growth occurs in climatically forced phases. The curve of bog surface wetness derived from this work is related closely to Lamb's (1977) summer wetness index (see
Bolton Fell Moss also was used to characterize and date the main humification change in a transect of bogs across Europe. The quadrat and leaf count method (Haslam, 1987) was used to produce relative hydroclimatic curves. At Bolton Fell Moss the division between the upper and lower peats was characterized in many places by a horizontal layer of green pool muds indicative of widespread surface flooding, and it was one of several changes akin to recurrence surfaces and hence major humification changes. The summary macrofossil diagram and hydroclimatic curve derived from Dupont's method (1986) are shown in
Mire development
In Walton Moss a brief fen phase began shortly before c. 10 200 cal. years BP, with the transition to oligotrophic, Eriophorum-dominated bog occurring at c. 9900 cal. years BP. There also is a significant increase in the frequency of macroscopic charcoal in the pioneer raised-bog phases, which suggests that the dry hummocky surface was burnt periodically. This highly humified peat layer represents a phase when the pioneer raised mire lacked a stable water table. The almost universal occurrence of such a bed of highly degraded Eriophorum–Calluna peat lying above the fen levels and below fresher Sphagnum peats lends support to the hypothesis that one or more phases of peat surface desiccation and humification favour raised water-mound formation as a consequence of the production of a relatively impermeable, finely comminuted peat layer (Hughes et at., 2000). At Walton Moss the macrofossil remains suggest that 2000 years elapsed before the first near-surface water tables were established, as indicated by the arrival of Sphagnum subnitens at c. 7800 cal. years BP. This 2000 year interval may reflect either a prolonged phase of low effective precipitation in the early Holocene and a major switch to wetter climates at c. 7800 cal. years BP, or the time taken for sufficient well-humified ombrotrophic, catotelmic peat to develop to maintain a high water table. A third possibility is that the climatically insensitive phase naturally would be shorter than 2000 years but at the point at which the mire could potentially respond to wet shifts by forming pools, effective precipitation levels were low. It seems, however, that this first wet shift at Walton Moss was a dramatic response to increased effective precipitation. This very wet interval occurred between c. 7800 and c. 6800 cal. years BP. The marginal development of the mire was different and fen conditions lasted longer than in the main basin and dry, Eriophorum–Calluna mire developed here whereas the main mire centre had a Sphagnum-rich flora indicative of pool, lawn and hummock microforms. At c. 2800 cal. years BP the first appearance of Sphagnum imbricatum marked the point at which the water table stabilized at the marginal core site and correlates with a significant increase in surface wetness in the main mire basin.
Human impact on the vegetation
Pollen analysis by Barber (1981), Dumayne (1993) and Dumayne-Peaty and Barber (1998) indicate the human impact on the landscape. In zones a and b at Bolton Fell Moss
Bolton Fell Moss | Bolton Fell Moss | Bolton Fell Moss | Bolton Fell Moss |
(Barber, 1981) | (Stoneman, 1993) | (core BFMJ)(Barber et al., 1994b) | (core WLM11) |
c. 200 | c. 100 | ||
c. 500 | c. 350 | c. 300–350 | |
c. 1000 | c. 1300 | c. 1450 | |
c. 1650–1750 | |||
c. 2400 | c. 1900–2200 | c. 2100 to 2040–2320 | |
c. 3100 | c. 2650–2900 | c. 2600 to 2680–3170 | |
c. 3550 | c. 3300–3600 | c. 3500 | |
c. 4000–4350 | c. 3800 to 3990–4410 | ||
c. 4900–5300 | |||
c. 6800–7800 |
Work at Walton Moss by Dumayne (1992) and Dumayne-Peaty and Barber (1998) is summarized in
Conclusions
Bolton Fell Moss and Walton Moss are important sites in northern England, where a wealth of detailed palaeoecological and palaeoclimatic information has been obtained from a major programme of pollen, macrofossil and dating work. This has allowed the theory of cyclic peat bog regeneration to be disproven and established the climatic phase theory of bog development, controlled by climatic change. The impact of humans on the landscape also has been deduced in detail and the links with the archaeological and documentary records established. The conservation of Walton Moss is important because this raised mire habitat is extremely rare in England.
However, it would be a simplification to suggest that the Holocene proxy climate record is composed solely of a series of coherent, synchronous and far-reaching events. Distinct regional climatic gradients have been identified across Europe during the Holocene Epoch and the relationship between climate and peat stratigraphy may be more complex than was recognized previously. Future goals for peat-based palaeoclimatic research must be to identify the relative importance of the temperature and precipitation elements of the effective precipitation signal and to couple these records to improved tephra-based chronologies (Hughes et al., 2000). Further work also is required to confirm the millennial-scale cycle of wet shifts at Walton Moss and to verify the striking level of agreement with the occurrence of ice-rafted debris events found in ocean cores, which may represent evidence of ocean-driven forcing of the regional climate.